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<title>Endocrine Related Cancer</title>
<url>http://erc.endocrinology-journals.org/icons/banner/title.gif</url>
<link>http://erc.endocrinology-journals.org</link>
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<item rdf:about="http://erc.endocrinology-journals.org/cgi/content/short/24/8/L51?rss=1">
<title><![CDATA[SDHB mutation carriers with malignant pheochromocytoma respond better to CVD]]></title>
<link>http://erc.endocrinology-journals.org/cgi/content/short/24/8/L51?rss=1</link>
<description><![CDATA[]]></description>
<dc:creator><![CDATA[Fishbein, L., Ben-Maimon, S., Keefe, S., Cengel, K., Pryma, D. A., Loaiza-Bonilla, A., Fraker, D. L., Nathanson, K. L., Cohen, D. L.]]></dc:creator>
<dc:date>2017-07-06T03:40:53-07:00</dc:date>
<dc:identifier>info:doi/10.1530/ERC-17-0086</dc:identifier>
<dc:identifier>hwp:master-id:erc;ERC-17-0086</dc:identifier>
<dc:publisher>Society for Endocrinology</dc:publisher>
<dc:title><![CDATA[SDHB mutation carriers with malignant pheochromocytoma respond better to CVD]]></dc:title>
<prism:publicationDate>2017-07-06</prism:publicationDate>
<prism:section>Research Letter</prism:section>
<prism:volume>24</prism:volume>
<prism:number>8</prism:number>
<prism:startingPage>L51</prism:startingPage>
<prism:endingPage>L55</prism:endingPage>
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<item rdf:about="http://erc.endocrinology-journals.org/cgi/content/short/24/8/L57?rss=1">
<title><![CDATA[KIF1B and NF1 are the most frequently mutated genes in paraganglioma and pheochromocytoma tumors]]></title>
<link>http://erc.endocrinology-journals.org/cgi/content/short/24/8/L57?rss=1</link>
<description><![CDATA[]]></description>
<dc:creator><![CDATA[Evenepoel, L., Helaers, R., Vroonen, L., Aydin, S., Hamoir, M., Maiter, D., Vikkula, M., Persu, A.]]></dc:creator>
<dc:date>2017-07-06T03:40:53-07:00</dc:date>
<dc:identifier>info:doi/10.1530/ERC-17-0061</dc:identifier>
<dc:identifier>hwp:master-id:erc;ERC-17-0061</dc:identifier>
<dc:publisher>Society for Endocrinology</dc:publisher>
<dc:title><![CDATA[KIF1B and NF1 are the most frequently mutated genes in paraganglioma and pheochromocytoma tumors]]></dc:title>
<prism:publicationDate>2017-07-06</prism:publicationDate>
<prism:section>Research Letter</prism:section>
<prism:volume>24</prism:volume>
<prism:number>8</prism:number>
<prism:startingPage>L57</prism:startingPage>
<prism:endingPage>L61</prism:endingPage>
</item>
<item rdf:about="http://erc.endocrinology-journals.org/cgi/content/short/24/8/L63?rss=1">
<title><![CDATA[The penetrance of MEN2 pheochromocytoma is not only determined by RET mutations]]></title>
<link>http://erc.endocrinology-journals.org/cgi/content/short/24/8/L63?rss=1</link>
<description><![CDATA[]]></description>
<dc:creator><![CDATA[Castinetti, F., Maia, A. L., Peczkowska, M., Barontini, M., Hasse-Lazar, K., Links, T. P., Toledo, R. A., Dvorakova, S., Mian, C., Bugalho, M. J., Zovato, S., Alevizaki, M., Kvachenyuk, A., Bausch, B., Loli, P., Bergmann, S. R., Patocs, A., Pfeifer, M., Costa, J. B., von Dobschuetz, E., Letizia, C., Valk, G., Barczynski, M., Czetwertynska, M., Plukker, J. T. M., Sartorato, P., Zelinka, T., Vlcek, P., Yaremchuk, S., Weryha, G., Canu, L., Wohllk, N., Sebag, F., Walz, M. K., Eng, C., Neumann, H. P. H.]]></dc:creator>
<dc:date>2017-07-20T09:06:01-07:00</dc:date>
<dc:identifier>info:doi/10.1530/ERC-17-0189</dc:identifier>
<dc:identifier>hwp:master-id:erc;ERC-17-0189</dc:identifier>
<dc:publisher>Society for Endocrinology</dc:publisher>
<dc:title><![CDATA[The penetrance of MEN2 pheochromocytoma is not only determined by RET mutations]]></dc:title>
<prism:publicationDate>2017-07-20</prism:publicationDate>
<prism:section>Research Letter</prism:section>
<prism:volume>24</prism:volume>
<prism:number>8</prism:number>
<prism:startingPage>L63</prism:startingPage>
<prism:endingPage>L67</prism:endingPage>
</item>
<item rdf:about="http://erc.endocrinology-journals.org/cgi/content/short/24/8/L69?rss=1">
<title><![CDATA[A case of a metastatic SDHA mutated paraganglioma re-presenting twenty-three years after initial surgery]]></title>
<link>http://erc.endocrinology-journals.org/cgi/content/short/24/8/L69?rss=1</link>
<description><![CDATA[]]></description>
<dc:creator><![CDATA[Casey, R. T., Challis, B. G., Marker, A., Pitfield, D., Cheow, H. K., Shaw, A., Park, S.-M., Simpson, H. L., Maher, E. R.]]></dc:creator>
<dc:date>2017-07-20T09:06:01-07:00</dc:date>
<dc:identifier>info:doi/10.1530/ERC-17-0206</dc:identifier>
<dc:identifier>hwp:resource-id:erc;24/8/L69</dc:identifier>
<dc:publisher>Society for Endocrinology</dc:publisher>
<dc:title><![CDATA[A case of a metastatic SDHA mutated paraganglioma re-presenting twenty-three years after initial surgery]]></dc:title>
<prism:publicationDate>2017-07-20</prism:publicationDate>
<prism:section>Letter to the Editor</prism:section>
<prism:volume>24</prism:volume>
<prism:number>8</prism:number>
<prism:startingPage>L69</prism:startingPage>
<prism:endingPage>L71</prism:endingPage>
</item>
<item rdf:about="http://erc.endocrinology-journals.org/cgi/content/short/24/8/R275?rss=1">
<title><![CDATA[Rationale for the development of alternative forms of androgen deprivation therapy]]></title>
<link>http://erc.endocrinology-journals.org/cgi/content/short/24/8/R275?rss=1</link>
<description><![CDATA[
<p>With few exceptions, the almost 30,000 prostate cancer deaths annually in the United States are due to failure of androgen deprivation therapy. Androgen deprivation therapy prevents ligand-activation of the androgen receptor. Despite initial remission after androgen deprivation therapy, prostate cancer almost invariably progresses while continuing to rely on androgen receptor action. Androgen receptor&rsquo;s transcriptional output, which ultimately controls prostate cancer behavior, is an alternative therapeutic target, but its molecular regulation is poorly understood. Recent insights in the molecular mechanisms by which the androgen receptor controls transcription of its target genes are uncovering gene specificity as well as context-dependency. Heterogeneity in the androgen receptor&rsquo;s transcriptional output is reflected both in its recruitment to diverse cognate DNA binding motifs and in its preferential interaction with associated pioneering factors, other secondary transcription factors and coregulators at those sites. This variability suggests that multiple, distinct modes of androgen receptor action that regulate diverse aspects of prostate cancer biology and contribute differentially to prostate cancer&rsquo;s clinical progression are active simultaneously in prostate cancer cells. Recent progress in the development of peptidomimetics and small molecules, and application of Chem-Seq approaches indicate the feasibility for selective disruption of critical protein&ndash;protein and protein&ndash;DNA interactions in transcriptional complexes. Here, we review the recent literature on the different molecular mechanisms by which the androgen receptor transcriptionally controls prostate cancer progression, and we explore the potential to translate these insights into novel, more selective forms of therapies that may bypass prostate cancer&rsquo;s resistance to conventional androgen deprivation therapy.</p>
]]></description>
<dc:creator><![CDATA[Kumari, S., Senapati, D., Heemers, H. V.]]></dc:creator>
<dc:date>2017-07-17T08:01:37-07:00</dc:date>
<dc:identifier>info:doi/10.1530/ERC-17-0121</dc:identifier>
<dc:identifier>hwp:master-id:erc;ERC-17-0121</dc:identifier>
<dc:publisher>Society for Endocrinology</dc:publisher>
<dc:title><![CDATA[Rationale for the development of alternative forms of androgen deprivation therapy]]></dc:title>
<prism:publicationDate>2017-07-17</prism:publicationDate>
<prism:section>Review</prism:section>
<prism:volume>24</prism:volume>
<prism:number>8</prism:number>
<prism:startingPage>R275</prism:startingPage>
<prism:endingPage>R295</prism:endingPage>
</item>
<item rdf:about="http://erc.endocrinology-journals.org/cgi/content/short/24/8/379?rss=1">
<title><![CDATA[Loss-of-function mutations in the CABLES1 gene are a novel cause of Cushings disease]]></title>
<link>http://erc.endocrinology-journals.org/cgi/content/short/24/8/379?rss=1</link>
<description><![CDATA[
<p>The <I>CABLES1</I> cell cycle regulator participates in the adrenal&ndash;pituitary negative feedback, and its expression is reduced in corticotropinomas, pituitary tumors with a largely unexplained genetic basis. We investigated the presence of <I>CABLES1</I> mutations/copy number variations (CNVs) and their associated clinical, histopathological and molecular features in patients with Cushing&rsquo;s disease (CD). Samples from 146 pediatric (118 germline DNA only/28 germline and tumor DNA) and 35 adult (tumor DNA) CD patients were screened for <I>CABLES1</I> mutations. CNVs were assessed in 116 pediatric CD patients (87 germline DNA only/29 germline and tumor DNA). Four potentially pathogenic missense variants in <I>CABLES1</I> were identified, two in young adults (c.532G &gt; A, p.E178K and c.718C &gt; T, p.L240F) and two in children (c.935G &gt; A, p.G312D and c.1388A &gt; G, and p.D463G) with CD; no CNVs were found. The four variants affected residues within or close to the predicted cyclin-dependent kinase-3 (CDK3)-binding region of the <I>CABLES1</I> protein and impaired its ability to block cell growth in a mouse corticotropinoma cell line (AtT20/D16v-F2). The four patients had macroadenomas. We provide evidence for a role of <I>CABLES1</I> as a novel pituitary tumor-predisposing gene. Its function might link two of the main molecular mechanisms altered in corticotropinomas: the cyclin-dependent kinase/cyclin group of cell cycle regulators and the epidermal growth factor receptor signaling pathway. Further studies are needed to assess the prevalence of <I>CABLES1</I> mutations among patients with other types of pituitary adenomas and to elucidate the pituitary-specific functions of this gene.</p>
]]></description>
<dc:creator><![CDATA[Hernandez-Ramirez, L. C., Gam, R., Valdes, N., Lodish, M. B., Pankratz, N., Balsalobre, A., Gauthier, Y., Faucz, F. R., Trivellin, G., Chittiboina, P., Lane, J., Kay, D. M., Dimopoulos, A., Gaillard, S., Neou, M., Bertherat, J., Assie, G., Villa, C., Mills, J. L., Drouin, J., Stratakis, C. A.]]></dc:creator>
<dc:date>2017-07-06T03:40:53-07:00</dc:date>
<dc:identifier>info:doi/10.1530/ERC-17-0131</dc:identifier>
<dc:identifier>hwp:master-id:erc;ERC-17-0131</dc:identifier>
<dc:publisher>Society for Endocrinology</dc:publisher>
<dc:title><![CDATA[Loss-of-function mutations in the CABLES1 gene are a novel cause of Cushings disease]]></dc:title>
<prism:publicationDate>2017-07-06</prism:publicationDate>
<prism:section>Research</prism:section>
<prism:volume>24</prism:volume>
<prism:number>8</prism:number>
<prism:startingPage>379</prism:startingPage>
<prism:endingPage>392</prism:endingPage>
</item>
<item rdf:about="http://erc.endocrinology-journals.org/cgi/content/short/24/8/393?rss=1">
<title><![CDATA[Testicular vs adrenal sources of hydroxy-androgens in prostate cancer]]></title>
<link>http://erc.endocrinology-journals.org/cgi/content/short/24/8/393?rss=1</link>
<description><![CDATA[
<p>Neoadjuvant androgen deprivation therapy (NADT) is one strategy for the treatment of early-stage prostate cancer; however, the long-term outcomes of NADT with radical prostatectomy including biochemical failure-free survival are not promising. One proposed mechanism is incomplete androgen ablation. In this study, we aimed to evaluate the efficiency of serum hydroxy-androgen suppression in patients with localized high-risk prostate cancer under NADT (leuprolide acetate plus abiraterone acetate and prednisone) and interrogate the primary sources of circulating hydroxy-androgens using our recently described stable isotope dilution liquid chromatography mass spectrometric method. For the first time, three androgen diols including 5-androstene-3&beta;,17&beta;-diol (5-adiol), 5&alpha;-androstane-3&alpha;,17&beta;-diol (3&alpha;-adiol), 5&alpha;-androstane-3&beta;,17&beta;-diol (3&beta;-adiol), the glucuronide or sulfate conjugate of 5-adiol and 3&alpha;-adiol were measured and observed to be dramatically reduced after NADT. By comparing patients that took leuprolide acetate alone vs leuprolide acetate plus abiraterone acetate and prednisone, we were able to distinguish the primary sources of these androgens and their conjugates as being of either testicular or adrenal in origin. We find that testosterone, 5&alpha;-dihydrotestosterone (DHT), 3&alpha;-adiol and 3&beta;-adiol were predominately of testicular origin. By contrast, dehydroepiandrosterone (DHEA), epi-androsterone (epi-AST) and their conjugates, 5-adiol sulfate and glucuronide were predominately of adrenal origin. Our findings also show that NADT failed to completely suppress DHEA-sulfate levels and that two unappreciated sources of intratumoral androgens that were not suppressed by leuprolide acetate alone were 5-adiol-sulfate and epi-AST-sulfate of adrenal origin.</p>
]]></description>
<dc:creator><![CDATA[Zang, T., Taplin, M.-E., Tamae, D., Xie, W., Mesaros, C., Zhang, Z., Bubley, G., Montgomery, B., Balk, S. P., Mostaghel, E. A., Blair, I. A., Penning, T. M.]]></dc:creator>
<dc:date>2017-07-06T03:40:53-07:00</dc:date>
<dc:identifier>info:doi/10.1530/ERC-17-0107</dc:identifier>
<dc:identifier>hwp:master-id:erc;ERC-17-0107</dc:identifier>
<dc:publisher>Society for Endocrinology</dc:publisher>
<dc:title><![CDATA[Testicular vs adrenal sources of hydroxy-androgens in prostate cancer]]></dc:title>
<prism:publicationDate>2017-07-06</prism:publicationDate>
<prism:section>Research</prism:section>
<prism:volume>24</prism:volume>
<prism:number>8</prism:number>
<prism:startingPage>393</prism:startingPage>
<prism:endingPage>404</prism:endingPage>
</item>
<item rdf:about="http://erc.endocrinology-journals.org/cgi/content/short/24/8/405?rss=1">
<title><![CDATA[Risk and protective factors for the occurrence of sporadic pancreatic endocrine neoplasms]]></title>
<link>http://erc.endocrinology-journals.org/cgi/content/short/24/8/405?rss=1</link>
<description><![CDATA[
<p>Pancreatic neuroendocrine neoplasms (PNENs) represent 10% of all pancreatic tumors by prevalence. Their incidence has reportedly increased over recent decades in parallel with that of pancreatic adenocarcinoma. PNENs are relatively rare, and of the few institutions that have published potential risk factors, findings have been heterogeneous. Our objective was to investigate the association between potential risk and protective factors for the occurrence of sporadic PNENs across a European population from several institutions. A multinational European case&ndash;control study was conducted to examine the association of selected environmental, family and medical exposure factors using a standardized questionnaire in face-to-face interviews. A ratio of 1:3 cases to controls were sex and age matched at each study site. Adjusted univariate and multivariate logistic regression analysis were performed for statistically significant factors. The following results were obtained: In 201 cases and 603 controls, non-recent onset diabetes (OR 2.09, CI 1.27&ndash;3.46) was associated with an increased occurrence of PNENs. The prevalence of non-recent onset diabetes was higher both in cases with metastatic disease (TNM stage III&ndash;IV) or advanced grade (G3) at the time of diagnosis. The use of metformin in combination with insulin was also associated with a more aggressive phenotype. Drinking coffee was more frequent in cases with localized disease at diagnosis. Our study concluded that non-recent onset diabetes was associated with an increased occurrence of PNENs and the combination of metformin and insulin was consistent with a more aggressive PNEN phenotype. In contrast to previous studies, smoking, alcohol and first-degree family history of cancer were not associated with PNEN occurrence.</p>
]]></description>
<dc:creator><![CDATA[Valente, R., Hayes, A. J., Haugvik, S.-P., Hedenstrom, P., Siuka, D., Korsaeth, E., Kammerer, D., Robinson, S. M., Maisonneuve, P., Delle Fave, G., Lindkvist, B., Capurso, G.]]></dc:creator>
<dc:date>2017-07-17T08:01:37-07:00</dc:date>
<dc:identifier>info:doi/10.1530/ERC-17-0040</dc:identifier>
<dc:identifier>hwp:master-id:erc;ERC-17-0040</dc:identifier>
<dc:publisher>Society for Endocrinology</dc:publisher>
<dc:title><![CDATA[Risk and protective factors for the occurrence of sporadic pancreatic endocrine neoplasms]]></dc:title>
<prism:publicationDate>2017-07-17</prism:publicationDate>
<prism:section>Research</prism:section>
<prism:volume>24</prism:volume>
<prism:number>8</prism:number>
<prism:startingPage>405</prism:startingPage>
<prism:endingPage>414</prism:endingPage>
</item>
<item rdf:about="http://erc.endocrinology-journals.org/cgi/content/short/24/8/415?rss=1">
<title><![CDATA[STAT3 activation by leptin receptor is essential for TNBC stem cell maintenance]]></title>
<link>http://erc.endocrinology-journals.org/cgi/content/short/24/8/415?rss=1</link>
<description><![CDATA[
<p>Leptin (LEP) binds to the long form of the leptin receptor (LEPRb), leading to the activation of multiple signaling pathways that are potential targets for disrupting the obesity&ndash;breast cancer link. In triple-negative breast cancer (TNBC), LEP is hypothesized to predominantly mediate its tumorigenic effects via a subpopulation of LEPRb-positive tumor cells termed cancer stem cells (CSCs) that can initiate tumors and induce tumor progression. Previously, we showed that LEP promotes CSC survival <I>in vivo</I>. Moreover, silencing LEPRb in TNBC cells compromised the CSC state. The mechanisms by which LEPRb regulates TNBC CSC intracellular signaling are not clear. We hypothesized that activation of LEPRb signaling is sufficient to drive CSC maintenance in TNBC. Here, we show that activation of LEPRb in non-CSCs isolated using our CSC reporter system resulted in a transition to the stem cell state. In CSCs, LEP induced STAT3 phosphorylation, whereas LEP did not induce STAT3 phosphorylation in non-CSCs. Introduction of constitutively active STAT3 into LEPRb-transfected non-CSCs significantly induced NANOG, SOX2 and OCT4 expression compared with control non-CSCs. To determine the intracellular phospho-tyrosine residue of LEPRb that is necessary for the induction of the stem cell state in non-CSCs, we transfected the tyrosine residue point mutants L985, F1077 and S1138 into non-CSCs. Non-CSCs transfected with the L985 mutant exhibited increased STAT3 phosphorylation, increased SOCS3 expression and an induction of GFP expression compared with non-CSCs expressing the F1077 and S1138 mutants. Our data demonstrate that LEPRb-induced STAT3 activation is essential for the induction and maintenance of TNBC CSCs.</p>
]]></description>
<dc:creator><![CDATA[Thiagarajan, P. S., Zheng, Q., Bhagrath, M., Mulkearns-Hubert, E. E., Myers, M. G., Lathia, J. D., Reizes, O.]]></dc:creator>
<dc:date>2017-07-20T09:06:01-07:00</dc:date>
<dc:identifier>info:doi/10.1530/ERC-16-0349</dc:identifier>
<dc:identifier>hwp:resource-id:erc;24/8/415</dc:identifier>
<dc:publisher>Society for Endocrinology</dc:publisher>
<dc:title><![CDATA[STAT3 activation by leptin receptor is essential for TNBC stem cell maintenance]]></dc:title>
<prism:publicationDate>2017-07-20</prism:publicationDate>
<prism:section>Research</prism:section>
<prism:volume>24</prism:volume>
<prism:number>8</prism:number>
<prism:startingPage>415</prism:startingPage>
<prism:endingPage>426</prism:endingPage>
</item>
<item rdf:about="http://erc.endocrinology-journals.org/cgi/content/short/24/7/X1?rss=1">
<title><![CDATA[The innate and adaptive infiltrating immune systems as targets for breast cancer immunotherapy]]></title>
<link>http://erc.endocrinology-journals.org/cgi/content/short/24/7/X1?rss=1</link>
<description><![CDATA[]]></description>
<dc:creator><![CDATA[Law, A. M. K., Lim, E., Ormandy, C. J., Gallego-Ortega, D.]]></dc:creator>
<dc:date>2017-05-31T15:41:35-07:00</dc:date>
<dc:identifier>info:doi/10.1530/ERC-16-0404e</dc:identifier>
<dc:identifier>hwp:resource-id:erc;24/7/X1</dc:identifier>
<dc:publisher>Society for Endocrinology</dc:publisher>
<dc:title><![CDATA[The innate and adaptive infiltrating immune systems as targets for breast cancer immunotherapy]]></dc:title>
<prism:publicationDate>2017-05-31</prism:publicationDate>
<prism:section>Erratum</prism:section>
<prism:volume>24</prism:volume>
<prism:number>7</prism:number>
<prism:startingPage>X1</prism:startingPage>
<prism:endingPage>X1</prism:endingPage>
</item>
<item rdf:about="http://erc.endocrinology-journals.org/cgi/content/short/24/7/X2?rss=1">
<title><![CDATA[Genomic complexity and targeted genes in anaplastic thyroid cancer cell lines]]></title>
<link>http://erc.endocrinology-journals.org/cgi/content/short/24/7/X2?rss=1</link>
<description><![CDATA[]]></description>
<dc:creator><![CDATA[Woodward, E. L., Biloglav, A., Ravi, N., Yang, M., Ekblad, L., Wennerberg, J., Paulsson, K.]]></dc:creator>
<dc:date>2017-07-03T02:38:23-07:00</dc:date>
<dc:identifier>info:doi/10.1530/ERC-16-0522e</dc:identifier>
<dc:identifier>hwp:resource-id:erc;24/7/X2</dc:identifier>
<dc:publisher>Society for Endocrinology</dc:publisher>
<dc:title><![CDATA[Genomic complexity and targeted genes in anaplastic thyroid cancer cell lines]]></dc:title>
<prism:publicationDate>2017-07-03</prism:publicationDate>
<prism:section>Erratum</prism:section>
<prism:volume>24</prism:volume>
<prism:number>7</prism:number>
<prism:startingPage>X2</prism:startingPage>
<prism:endingPage>X2</prism:endingPage>
</item>
<item rdf:about="http://erc.endocrinology-journals.org/cgi/content/short/24/7/L39?rss=1">
<title><![CDATA[Incidence and prevalence of multiple endocrine neoplasia 2B in Denmark: a nationwide study]]></title>
<link>http://erc.endocrinology-journals.org/cgi/content/short/24/7/L39?rss=1</link>
<description><![CDATA[]]></description>
<dc:creator><![CDATA[Mathiesen, J. S., Kroustrup, J. P., Vestergaard, P., Madsen, M., Stochholm, K., Poulsen, P. L., Krogh Rasmussen, A., Feldt-Rasmussen, U., Schytte, S., Pedersen, H. B., Hahn, C. H., Bentzen, J., Gaustadnes, M., Orntoft, T. F., Hansen, T. v. O., Nielsen, F. C., Brixen, K., Frederiksen, A. L., Godballe, C.]]></dc:creator>
<dc:date>2017-06-22T06:51:54-07:00</dc:date>
<dc:identifier>info:doi/10.1530/ERC-17-0122</dc:identifier>
<dc:identifier>hwp:master-id:erc;ERC-17-0122</dc:identifier>
<dc:publisher>Society for Endocrinology</dc:publisher>
<dc:title><![CDATA[Incidence and prevalence of multiple endocrine neoplasia 2B in Denmark: a nationwide study]]></dc:title>
<prism:publicationDate>2017-06-22</prism:publicationDate>
<prism:section>Research Letter</prism:section>
<prism:volume>24</prism:volume>
<prism:number>7</prism:number>
<prism:startingPage>L39</prism:startingPage>
<prism:endingPage>L42</prism:endingPage>
</item>
<item rdf:about="http://erc.endocrinology-journals.org/cgi/content/short/24/7/L43?rss=1">
<title><![CDATA[SDHA mutated paragangliomas may be at high risk of metastasis]]></title>
<link>http://erc.endocrinology-journals.org/cgi/content/short/24/7/L43?rss=1</link>
<description><![CDATA[]]></description>
<dc:creator><![CDATA[Tufton, N., Ghelani, R., Srirangalingam, U., Kumar, A. V., Drake, W. M., Iacovazzo, D., Skordilis, K., Berney, D., Al-Mrayat, M., Khoo, B., Akker, S. A.]]></dc:creator>
<dc:date>2017-07-03T02:38:23-07:00</dc:date>
<dc:identifier>info:doi/10.1530/ERC-17-0030</dc:identifier>
<dc:identifier>hwp:master-id:erc;ERC-17-0030</dc:identifier>
<dc:publisher>Society for Endocrinology</dc:publisher>
<dc:title><![CDATA[SDHA mutated paragangliomas may be at high risk of metastasis]]></dc:title>
<prism:publicationDate>2017-07-03</prism:publicationDate>
<prism:section>Research Letter</prism:section>
<prism:volume>24</prism:volume>
<prism:number>7</prism:number>
<prism:startingPage>L43</prism:startingPage>
<prism:endingPage>L49</prism:endingPage>
</item>
<item rdf:about="http://erc.endocrinology-journals.org/cgi/content/short/24/7/R261?rss=1">
<title><![CDATA[Effect of hormone secretory syndromes on neuroendocrine tumor prognosis]]></title>
<link>http://erc.endocrinology-journals.org/cgi/content/short/24/7/R261?rss=1</link>
<description><![CDATA[
<p>The treatment of hormone hypersecretory syndromes caused by neuroendocrine tumors (NETs) can be a major challenge. NETs originating from the small intestine often secrete serotonin causing flushing, diarrhea and valve fibrosis, leading to dehydration or heart failure in severe cases. NETs from the pancreas can secrete a wider variety of hormones, like insulin, glucagon and gastrin leading to distinct clinical syndromes. Historically mortality in patients with functioning NETs was high due to the complications caused by the hypersecretion of hormones. This has been reduced with several drugs: proton-pump inhibitors decrease acid secretion caused by gastrinomas. Somatostatin analogs can inhibit the secretion of multiple hormones and these are now the cornerstone for treating patients with a gastroenteropancreatic NET. However, peptide receptor radionuclide therapy (PRRT) with radiolabeled somatostatin analogs and everolimus can also decrease symptoms of hypersecretion and increase progression-free survival. Several factors affect the survival in patients with a functioning NET. Complications of hypersecretion negatively impact survival; however, secretion of hormones is also often a sign of a well-differentiated NET and due to the symptoms, functioning NETs can be detected in an earlier stage suggesting a positive effect on prognosis. The effect on survival is also dependent on the type of hormone being secreted. This review aims to study the effect of hormone secretion on the prognosis of NETs with the contemporary treatments options available today.</p>
]]></description>
<dc:creator><![CDATA[Zandee, W. T., Kamp, K., van Adrichem, R. C., Feelders, R. A., de Herder, W. W.]]></dc:creator>
<dc:date>2017-07-04T06:55:16-07:00</dc:date>
<dc:identifier>info:doi/10.1530/ERC-16-0538</dc:identifier>
<dc:identifier>hwp:master-id:erc;ERC-16-0538</dc:identifier>
<dc:publisher>Society for Endocrinology</dc:publisher>
<dc:title><![CDATA[Effect of hormone secretory syndromes on neuroendocrine tumor prognosis]]></dc:title>
<prism:publicationDate>2017-07-04</prism:publicationDate>
<prism:section>Review</prism:section>
<prism:volume>24</prism:volume>
<prism:number>7</prism:number>
<prism:startingPage>R261</prism:startingPage>
<prism:endingPage>R274</prism:endingPage>
</item>
<item rdf:about="http://erc.endocrinology-journals.org/cgi/content/short/24/7/307?rss=1">
<title><![CDATA[Association of NF-{kappa}B polymorphisms with clinical outcome of non-medullary thyroid carcinoma]]></title>
<link>http://erc.endocrinology-journals.org/cgi/content/short/24/7/307?rss=1</link>
<description><![CDATA[
<p>The NF-B inflammatory pathway plays a major role in cancer development and clinical progression. Activation of NF-B signaling is promoted by NFKB1 and inhibited by NFKBIA. The present study aimed to determine the relevance of <I>NFKB1</I> rs4648068 and <I>NFKBIA</I> rs2233406 genetic variants for non-medullary thyroid cancer (NMTC) susceptibility, progression and clinical outcome. This case&ndash;control and cohort study consists of a Romanian discovery cohort (157 patients and 258 controls) and a Dutch validation cohort (138 patients and 188 controls). In addition, patient cohorts were analyzed further for the association of genetic variants with clinical parameters. Functional studies were performed on human peripheral blood mononuclear cells. No associations were observed between the studied genetic variants and TC susceptibility. Although no statistically significant associations with clinical parameters were observed for <I>NFKB1</I> rs4648068, the heterozygous genotype of <I>NFKBIA</I> rs2233406 was correlated with decreased radioactive iodide sensitivity requiring higher cumulative dosages to achieve clinical response. These findings were discovered in the Romanian cohort (<I>P</I> &lt; 0.001) and confirmed in the Dutch cohort (<I>P</I> = 0.01). Functional studies revealed that this <I>NFKBIA</I> rs2233406 genotype was associated with elevated TLR4-mediated IL-1&beta; production. In conclusion, genetic variation in <I>NFKBIA</I>, an inhibitor of NF-B signaling, is associated with clinical response to RAI therapy and with increased production of the pro-inflammatory cytokine IL-1&beta;, providing a potential mechanism for the observed clinical associations. These data suggest that NF-B signaling is involved in NMTC pathogenesis and that the inflammatory tumor microenvironment could contribute to RAI resistance.</p>
]]></description>
<dc:creator><![CDATA[Plantinga, T. S., Petrulea, M. S., Oosting, M., Joosten, L. A. B., Piciu, D., Smit, J. W., Netea-Maier, R. T., Georgescu, C. E.]]></dc:creator>
<dc:date>2017-07-03T02:38:23-07:00</dc:date>
<dc:identifier>info:doi/10.1530/ERC-17-0033</dc:identifier>
<dc:identifier>hwp:master-id:erc;ERC-17-0033</dc:identifier>
<dc:publisher>Society for Endocrinology</dc:publisher>
<dc:title><![CDATA[Association of NF-{kappa}B polymorphisms with clinical outcome of non-medullary thyroid carcinoma]]></dc:title>
<prism:publicationDate>2017-07-03</prism:publicationDate>
<prism:section>Research</prism:section>
<prism:volume>24</prism:volume>
<prism:number>7</prism:number>
<prism:startingPage>307</prism:startingPage>
<prism:endingPage>318</prism:endingPage>
</item>
<item rdf:about="http://erc.endocrinology-journals.org/cgi/content/short/24/7/319?rss=1">
<title><![CDATA[Topoisomerase 2{alpha} and thymidylate synthase expression in adrenocortical cancer]]></title>
<link>http://erc.endocrinology-journals.org/cgi/content/short/24/7/319?rss=1</link>
<description><![CDATA[
<p>Topoisomerase II alpha (TOP2A) and thymidylate synthase (TS) are known prognostic parameters in several tumors and also predictors of efficacy of anthracyclines, topoisomerase inhibitors and fluoropirimidines, respectively. Expression of <I>TOP2A</I> and <I>TS</I> mRNA was assessed in 98 patients with adrenocortical carcinoma (ACC) and protein expression was assessed by immunohistochemistry in a subset of 39 tumors. Ninety-two patients were radically resected for stage II&ndash;III disease and 38 of them received adjuvant mitotane. Twenty-six patients with metastatic disease received the EDP-M (etoposide, doxorubicin, Adriamycin, cisplatin plus mitotane). <I>TOP2A</I> and <I>TS</I> expression in ACC tissue was directly correlated with the clinical data. Both markers were not associated with either disease free survival (DFS) or overall survival (OS) in multivariate analyses and failed to be associated to mitotane efficacy. Disease response or stabilization to EDP-M treatment was observed in 12/17 (71%) and 1/9 (11%) patients with high and low TOP2A expressing tumors (<I>P</I> = 0.0039) and 9/13 (69%) and 4/13 (31%) patients with high and low TS expressing ACC, respectively (<I>P</I> = 0.049). High TOP2A expression was significantly associated with longer time to progression (TTP) after EDP-M. TOP2A and TS proteins assessed by immunohistochemistry significantly correlated with mRNA expression. Immunohistochemical TOP2A expression was associated with a non-significant better response and longer TTP after EDP-M. TOP2A and TS were neither prognostic nor predictive of mitotane efficacy in ACC patients. The predictive role of TOP2A expression of EDP-M activity suggests a significant contribution of Adriamycin and etoposide for the efficacy of the EDP scheme.</p>
]]></description>
<dc:creator><![CDATA[Roca, E., Berruti, A., Sbiera, S., Rapa, I., Oneda, E., Sperone, P., Ronchi, C. L., Ferrari, L., Grisanti, S., Germano, A., Zaggia, B., Scagliotti, G. V., Fassnacht, M., Volante, M., Terzolo, M., Papotti, M.]]></dc:creator>
<dc:date>2017-06-22T06:51:54-07:00</dc:date>
<dc:identifier>info:doi/10.1530/ERC-17-0095</dc:identifier>
<dc:identifier>hwp:master-id:erc;ERC-17-0095</dc:identifier>
<dc:publisher>Society for Endocrinology</dc:publisher>
<dc:title><![CDATA[Topoisomerase 2{alpha} and thymidylate synthase expression in adrenocortical cancer]]></dc:title>
<prism:publicationDate>2017-06-22</prism:publicationDate>
<prism:section>Research</prism:section>
<prism:volume>24</prism:volume>
<prism:number>7</prism:number>
<prism:startingPage>319</prism:startingPage>
<prism:endingPage>327</prism:endingPage>
</item>
<item rdf:about="http://erc.endocrinology-journals.org/cgi/content/short/24/7/329?rss=1">
<title><![CDATA[A role for TET2 in parathyroid carcinoma]]></title>
<link>http://erc.endocrinology-journals.org/cgi/content/short/24/7/329?rss=1</link>
<description><![CDATA[
<p>Primary hyperparathyroidism (pHPT) is rarely caused by parathyroid carcinoma (PC, &lt;1&ndash;5% of pHPT cases). The TET proteins oxidize the epigenetic mark 5-methylcytosine to 5-hydroxymethylcytosine (5hmC) and inactivation by mutation or epigenetic deregulation of <I>TET1</I> and <I>TET2</I> play important roles in various cancers. Recently, we found that 5hmC was severely reduced in all of the analyzed PCs and with deranged expression of TET1 for the majority of PCs. Here, we have examined the expression of the TET2 protein in 15 5hmC-negative PCs from patients who had local invasion or metastases. Cell growth and cell migratory roles for TET2 as well as epigenetic deregulated expression were addressed. Immunohistochemistry revealed very low/undetectable expression of TET2 in all PCs and verified for two PCs that were available for western blotting analysis. Knockdown of TET2 in the parathyroid cell line sHPT-1 resulted in increased cell growth and increased cell migration. DNA sequencing of <I>TET2</I> in PCs revealed two common variants and no obvious inactivating mutations. Quantitative bisulfite pyrosequencing analysis of the <I>TET2</I> promoter CpG island revealed higher CpG methylation level in the PCs compared to that in normal tissues and treatment of a PC primary cell culture with the DNA methylation inhibitor 5-aza-2'-deoxycytidine caused increased expression of the methylated <I>TET2</I> gene. Hence, the data suggest that deregulated expression of <I>TET2</I> by DNA hypermethylation may contribute to the aberrantly low level of 5hmC in PCs and further that TET2 plays a cell growth and cell migratory regulatory role and may constitute a parathyroid tumor suppressor gene.</p>
]]></description>
<dc:creator><![CDATA[Barazeghi, E., Gill, A. J., Sidhu, S., Norlen, O., Dina, R., Palazzo, F. F., Hellman, P., Stalberg, P., Westin, G.]]></dc:creator>
<dc:date>2017-07-03T02:38:23-07:00</dc:date>
<dc:identifier>info:doi/10.1530/ERC-17-0009</dc:identifier>
<dc:identifier>hwp:resource-id:erc;24/7/329</dc:identifier>
<dc:publisher>Society for Endocrinology</dc:publisher>
<dc:title><![CDATA[A role for TET2 in parathyroid carcinoma]]></dc:title>
<prism:publicationDate>2017-07-03</prism:publicationDate>
<prism:section>Research</prism:section>
<prism:volume>24</prism:volume>
<prism:number>7</prism:number>
<prism:startingPage>329</prism:startingPage>
<prism:endingPage>338</prism:endingPage>
</item>
<item rdf:about="http://erc.endocrinology-journals.org/cgi/content/short/24/7/339?rss=1">
<title><![CDATA[Impact of 27-hydroxylase (CYP27A1) and 27-hydroxycholesterol in breast cancer]]></title>
<link>http://erc.endocrinology-journals.org/cgi/content/short/24/7/339?rss=1</link>
<description><![CDATA[
<p>The impact of systemic 27-hydroxycholesterol (27HC) and intratumoral CYP27A1 expression on pathobiology and clinical response to statins in breast cancer needs clarification. 27HC is an oxysterol produced from cholesterol by the monooxygenase CYP27A1, which regulates intracellular cholesterol homeostasis. 27HC also acts as an endogenous selective estrogen receptor (ER) modulator capable of increasing breast cancer growth and metastasis. 27HC levels can be modulated by statins or direct inhibition of CYP27A1, thereby attenuating its pro-tumorigenic activities. Herein, the effect of statins on serum 27HC and tumor-specific CYP27A1 expression was evaluated in 42 breast cancer patients treated with atorvastatin within a phase II clinical trial. Further, the associations between CYP27A1 expression with other primary tumor pathological features and clinical outcomes were studied in two additional independent cohorts. Statin treatment effectively decreased serum 27HC and deregulated CYP27A1 expression in tumors. However, these changes were not associated with anti-proliferative responses to statin treatment. <I>CYP27A1</I> was heterogeneously expressed among primary tumors, with high expression significantly associated with high tumor grade, ER negativity and basal-like subtype. High <I>CYP27A1</I> expression was independently prognostic for longer recurrence-free and overall survival. Importantly, the beneficial effect of high <I>CYP27A1</I> in ER-positive breast cancer seemed limited to women aged &le;50 years. These results establish a link between CYP27A1 and breast cancer pathobiology and prognosis and propose that the efficacy of statins in reducing serum lipids does not directly translate to anti-proliferative effects in tumors. Changes in other undetermined serum or tumor factors suggestively mediate the anti-proliferative effects of statins in breast cancer.</p>
]]></description>
<dc:creator><![CDATA[Kimbung, S., Chang, C.-y., Bendahl, P.-O., Dubois, L., Thompson, J. W., McDonnell, D. P., Borgquist, S.]]></dc:creator>
<dc:date>2017-07-03T02:38:23-07:00</dc:date>
<dc:identifier>info:doi/10.1530/ERC-16-0533</dc:identifier>
<dc:identifier>hwp:master-id:erc;ERC-16-0533</dc:identifier>
<dc:publisher>Society for Endocrinology</dc:publisher>
<dc:title><![CDATA[Impact of 27-hydroxylase (CYP27A1) and 27-hydroxycholesterol in breast cancer]]></dc:title>
<prism:publicationDate>2017-07-03</prism:publicationDate>
<prism:section>Research</prism:section>
<prism:volume>24</prism:volume>
<prism:number>7</prism:number>
<prism:startingPage>339</prism:startingPage>
<prism:endingPage>349</prism:endingPage>
</item>
<item rdf:about="http://erc.endocrinology-journals.org/cgi/content/short/24/7/351?rss=1">
<title><![CDATA[Obesity and menopause modify the epigenomic profile of breast cancer]]></title>
<link>http://erc.endocrinology-journals.org/cgi/content/short/24/7/351?rss=1</link>
<description><![CDATA[
<p>Obesity is a high risk factor for breast cancer. This relationship could be marked by a specific methylome. The current work was aimed to explore the impact of obesity and menopausal status on variation in breast cancer methylomes. Data from Infinium 450K array-based methylomes of 64 breast tumors were coupled with information on BMI and menopausal status. Additionally, DNA methylation results were validated in 18 non-tumor and 81 tumor breast samples. Breast tumors arising in either pre- or postmenopausal women stratified by BMI or menopausal status alone were not associated with a specific DNA methylation pattern. Intriguingly, the DNA methylation pattern identified in association with the high-risk group (postmenopausal women with high BMI (&gt;25) and premenopausal women with normal or low BMI &lt; 25) exclusively characterized by hypermethylation of 1287 CpG sites as compared with the low-risk group. These CpG sites included the promoter region of fourteen protein-coding genes of which CpG methylation over the <I>ZNF577</I> promoter region represents the top scoring associated event. In an independent cohort, the <I>ZNF577</I> promoter methylation remained statistically significant in association with the high-risk group. Additionally, the impact of <I>ZNF577</I> promoter methylation on mRNA expression levels was demonstrated in breast cancer cell lines after treatment with a demethylating agent (5-azacytidine). In conclusion, the epigenome of breast tumors is affected by a complex interaction between BMI and menopausal status. The <I>ZNF577</I> methylation quantification is clearly relevant for the development of novel biomarkers of precision therapy in breast cancer.</p>
]]></description>
<dc:creator><![CDATA[Crujeiras, A. B., Diaz-Lagares, A., Stefansson, O. A., Macias-Gonzalez, M., Sandoval, J., Cueva, J., Lopez-Lopez, R., Moran, S., Jonasson, J. G., Tryggvadottir, L., Olafsdottir, E., Tinahones, F. J., Carreira, M. C., Casanueva, F. F., Esteller, M.]]></dc:creator>
<dc:date>2017-07-03T02:38:23-07:00</dc:date>
<dc:identifier>info:doi/10.1530/ERC-16-0565</dc:identifier>
<dc:identifier>hwp:master-id:erc;ERC-16-0565</dc:identifier>
<dc:publisher>Society for Endocrinology</dc:publisher>
<dc:title><![CDATA[Obesity and menopause modify the epigenomic profile of breast cancer]]></dc:title>
<prism:publicationDate>2017-07-03</prism:publicationDate>
<prism:section>Research</prism:section>
<prism:volume>24</prism:volume>
<prism:number>7</prism:number>
<prism:startingPage>351</prism:startingPage>
<prism:endingPage>363</prism:endingPage>
</item>
<item rdf:about="http://erc.endocrinology-journals.org/cgi/content/short/24/7/365?rss=1">
<title><![CDATA[Gestational high-fat diet and bisphenol A exposure heightens mammary cancer risk]]></title>
<link>http://erc.endocrinology-journals.org/cgi/content/short/24/7/365?rss=1</link>
<description><![CDATA[
<p><I>In utero</I> exposure to bisphenol A (BPA) increases mammary cancer susceptibility in offspring. High-fat diet is widely believed to be a risk factor of breast cancer. The objective of this study was to determine whether maternal exposure to BPA in addition to high-butterfat (HBF) intake during pregnancy further influences carcinogen-induced mammary cancer risk in offspring, and its dose&ndash;response curve. In this study, we found that gestational HBF intake in addition to a low-dose BPA (25 &micro;g/kg BW/day) exposure increased mammary tumor incidence in a 50-day-of-age chemical carcinogen administration model and altered mammary gland morphology in offspring in a non-monotonic manner, while shortening tumor-free survival time compared with the HBF-alone group. <I>In utero</I> HBF and BPA exposure elicited differential effects at the gene level in PND21 mammary glands through DNA methylation, compared with HBF intake in the absence of BPA. Top HBF + BPA-dysregulated genes (<I>ALDH1B1</I>, <I>ASTL</I>, <I>CA7</I>, <I>CPLX4</I>, <I>KCNV2</I>, <I>MAGEE2</I> and <I>TUBA3E</I>) are associated with poor overall survival in The Cancer Genomic Atlas (TCGA) human breast cancer cohort (<I>n</I> = 1082). Furthermore, the prognostic power of the identified genes was further enhanced in the survival analysis of Caucasian patients with estrogen receptor-positive tumors. In conclusion, concurrent HBF dietary and a low-dose BPA exposure during pregnancy increases mammary tumor incidence in offspring, accompanied by alterations in mammary gland development and gene expression, and possibly through epigenetic reprogramming.</p>
]]></description>
<dc:creator><![CDATA[Leung, Y.-K., Govindarajah, V., Cheong, A., Veevers, J., Song, D., Gear, R., Zhu, X., Ying, J., Kendler, A., Medvedovic, M., Belcher, S., Ho, S.-M.]]></dc:creator>
<dc:date>2017-07-03T02:38:23-07:00</dc:date>
<dc:identifier>info:doi/10.1530/ERC-17-0006</dc:identifier>
<dc:identifier>hwp:master-id:erc;ERC-17-0006</dc:identifier>
<dc:publisher>Society for Endocrinology</dc:publisher>
<dc:title><![CDATA[Gestational high-fat diet and bisphenol A exposure heightens mammary cancer risk]]></dc:title>
<prism:publicationDate>2017-07-03</prism:publicationDate>
<prism:section>Research</prism:section>
<prism:volume>24</prism:volume>
<prism:number>7</prism:number>
<prism:startingPage>365</prism:startingPage>
<prism:endingPage>378</prism:endingPage>
</item>
<item rdf:about="http://erc.endocrinology-journals.org/cgi/content/short/24/6/L35?rss=1">
<title><![CDATA[Very low expression of PD-L1 in medullary thyroid carcinoma]]></title>
<link>http://erc.endocrinology-journals.org/cgi/content/short/24/6/L35?rss=1</link>
<description><![CDATA[]]></description>
<dc:creator><![CDATA[Bongiovanni, M., Rebecchini, C., Saglietti, C., Bulliard, J.-L., Marino, L., de Leval, L., Sykiotis, G. P.]]></dc:creator>
<dc:date>2017-05-23T04:40:57-07:00</dc:date>
<dc:identifier>info:doi/10.1530/ERC-17-0104</dc:identifier>
<dc:identifier>hwp:master-id:erc;ERC-17-0104</dc:identifier>
<dc:publisher>Society for Endocrinology</dc:publisher>
<dc:title><![CDATA[Very low expression of PD-L1 in medullary thyroid carcinoma]]></dc:title>
<prism:publicationDate>2017-05-23</prism:publicationDate>
<prism:section>Research Letter</prism:section>
<prism:volume>24</prism:volume>
<prism:number>6</prism:number>
<prism:startingPage>L35</prism:startingPage>
<prism:endingPage>L38</prism:endingPage>
</item>
<item rdf:about="http://erc.endocrinology-journals.org/cgi/content/short/24/6/R173?rss=1">
<title><![CDATA[Paraneoplastic endocrine syndromes]]></title>
<link>http://erc.endocrinology-journals.org/cgi/content/short/24/6/R173?rss=1</link>
<description><![CDATA[
<p>The majority of neoplasms are responsible for symptoms caused by mass effects to surrounding tissues and/or through the development of metastases. However, occasionally neoplasms, with or without endocrine differentiation, acquire the ability to secrete a variety of bioactive substances or induce immune cross-reactivity with the normal tissues that can lead to the development of characteristic clinical syndromes. These syndromes are named endocrine paraneoplastic syndromes when the specific secretory components (hormones, peptides or cytokines) are unrelated to the anticipated tissue or organ of origin. Endocrine paraneoplastic syndromes can complicate the patient&rsquo;s clinical course, response to treatment, impact prognosis and even be confused as metastatic spread. These syndromes can precede, occur concomitantly or present at a later stage of tumour development, and along with the secreted substances constitute the biological &lsquo;fingerprint&rsquo; of the tumour. Their detection can facilitate early diagnosis of the underlying neoplasia, monitor response to treatment and/or detect early recurrences following successful initial management. Although when associated with tumours of low malignant potential they usually do not affect long-term outcome, in cases of highly malignant tumours, endocrine paraneoplastic syndromes are usually associated with poorer survival outcomes. Recent medical advances have not only improved our understanding of paraneoplastic syndrome pathogenesis in general but also enhanced their diagnosis and treatment. Yet, given the rarity of endocrine paraneoplastic syndromes, there is a paucity of prospective clinical trials to guide management. The development of well-designed prospective multicentre trials remains a priority in the field in order to fully characterise these syndromes and provide evidence-based diagnostic and therapeutic protocols.</p>
]]></description>
<dc:creator><![CDATA[Dimitriadis, G. K., Angelousi, A., Weickert, M. O., Randeva, H. S., Kaltsas, G., Grossman, A.]]></dc:creator>
<dc:date>2017-05-05T03:39:15-07:00</dc:date>
<dc:identifier>info:doi/10.1530/ERC-17-0036</dc:identifier>
<dc:identifier>hwp:master-id:erc;ERC-17-0036</dc:identifier>
<dc:publisher>Society for Endocrinology</dc:publisher>
<dc:title><![CDATA[Paraneoplastic endocrine syndromes]]></dc:title>
<prism:publicationDate>2017-05-05</prism:publicationDate>
<prism:section>Review</prism:section>
<prism:volume>24</prism:volume>
<prism:number>6</prism:number>
<prism:startingPage>R173</prism:startingPage>
<prism:endingPage>R190</prism:endingPage>
</item>
<item rdf:about="http://erc.endocrinology-journals.org/cgi/content/short/24/6/R191?rss=1">
<title><![CDATA[Targeting the TSH receptor in thyroid cancer]]></title>
<link>http://erc.endocrinology-journals.org/cgi/content/short/24/6/R191?rss=1</link>
<description><![CDATA[
<p>Recent advances in the arena of theranostics have necessitated a re-examining of previously established fields. The existing paradigm of therapeutic thyroid-stimulating hormone receptor (TSHR) targeting in the post-surgical management of differentiated thyroid cancer using levothyroxine and recombinant human thyroid-stimulating hormone (TSH) is well understood. However, in an era of personalized medicine, and with an increasing awareness of the risk profile of longstanding pharmacological hyperthyroidism, it is imperative clinicians understand the molecular basis and magnitude of benefit for individual patients. Furthermore, TSHR has been recently re-conceived as a selective target for residual metastatic thyroid cancer, with pilot data demonstrating effective targeting of nanoparticles to thyroid cancers using this receptor as a target. This review examines the evidence for TSHR signaling as an oncogenic pathway and assesses the evidence for ongoing TSHR expression in thyroid cancer metastases. Priorities for further research are highlighted.</p>
]]></description>
<dc:creator><![CDATA[Rowe, C. W., Paul, J. W., Gedye, C., Tolosa, J. M., Bendinelli, C., McGrath, S., Smith, R.]]></dc:creator>
<dc:date>2017-05-05T03:39:15-07:00</dc:date>
<dc:identifier>info:doi/10.1530/ERC-17-0010</dc:identifier>
<dc:identifier>hwp:master-id:erc;ERC-17-0010</dc:identifier>
<dc:publisher>Society for Endocrinology</dc:publisher>
<dc:title><![CDATA[Targeting the TSH receptor in thyroid cancer]]></dc:title>
<prism:publicationDate>2017-05-05</prism:publicationDate>
<prism:section>Review</prism:section>
<prism:volume>24</prism:volume>
<prism:number>6</prism:number>
<prism:startingPage>R191</prism:startingPage>
<prism:endingPage>R202</prism:endingPage>
</item>
<item rdf:about="http://erc.endocrinology-journals.org/cgi/content/short/24/6/R203?rss=1">
<title><![CDATA[Molecular imaging in the investigation of hypoglycaemic syndromes and their management]]></title>
<link>http://erc.endocrinology-journals.org/cgi/content/short/24/6/R203?rss=1</link>
<description><![CDATA[
<p>There has been recent progress in molecular imaging using a variety of cellular targets for the investigation of adult non-diabetic hypoglycaemic syndromes and its integration into patient management. These targets include peptide receptors (somatostatin receptors (SSTRs) and glucagon-like peptide-1 receptor (GLP-1R)) the amine precursor uptake and decarboxylation system utilising the diphydroxyphenylaline (DOPA) analogue 6-[<sup>18</sup>F]-<scp>l</scp>-fluoro-<scp>l</scp>-3,4-dihydroxyphenylalanine (<sup>18</sup>F-FDOPA), and glycolytic metabolism with 2-[<sup>18</sup>F]fluoro-2-deoxy-<scp>d</scp>-glucose (FDG). Accurate preoperative localisation and staging is critical to enable directed surgical excision or enucleation with minimal morbidity and preservation of residual pancreatic function. Benign insulinoma has near ubiquitous dense GLP-1R expression enabling accurate localisation with radiolabelled-exendin-4 compounds (e.g. <sup>68</sup>Ga-NOTA-exendin-4 PET/CT), whilst the rarer and more difficult to manage metastatic insulinoma typically express SSTR and is preferably imaged with radiolabelled-SSTR analogues such as <sup>68</sup>Ga-DOTA-octreotate (DOTATATE) PET/CT for staging and assessment of suitability for peptide receptor radionuclide therapy (PRRT). Similar to other metastatic neuroendocrine tumours, FDG PET/CT is used in the setting of higher-grade metastatic insulinoma to provide important prognostic information that can guide treatment and determine suitability for PRRT. Interestingly, these three tracers appear to represent a spectrum of differentiation, which we conceptually describe as the &lsquo;triple-flop&rsquo; phenomenon, with GLP-1R &gt; SSTR &gt; FDG in benign insulinoma and the opposite in higher-grade disease. This paper will review the clinical syndromes of adult hypoglycaemia (including a practical overview of the differential diagnoses to be considered), comparison of techniques for insulinoma localisation with emphasis on molecular imaging before discussing its implications for management of metastatic insulinoma.</p>
]]></description>
<dc:creator><![CDATA[Pattison, D. A., Hicks, R. J.]]></dc:creator>
<dc:date>2017-05-23T09:28:09-07:00</dc:date>
<dc:identifier>info:doi/10.1530/ERC-17-0005</dc:identifier>
<dc:identifier>hwp:master-id:erc;ERC-17-0005</dc:identifier>
<dc:publisher>Society for Endocrinology</dc:publisher>
<dc:title><![CDATA[Molecular imaging in the investigation of hypoglycaemic syndromes and their management]]></dc:title>
<prism:publicationDate>2017-05-23</prism:publicationDate>
<prism:section>Review</prism:section>
<prism:volume>24</prism:volume>
<prism:number>6</prism:number>
<prism:startingPage>R203</prism:startingPage>
<prism:endingPage>R221</prism:endingPage>
</item>
<item rdf:about="http://erc.endocrinology-journals.org/cgi/content/short/24/6/R223?rss=1">
<title><![CDATA[Circulating tumor cells and miRNAs as prognostic markers in neuroendocrine neoplasms]]></title>
<link>http://erc.endocrinology-journals.org/cgi/content/short/24/6/R223?rss=1</link>
<description><![CDATA[
<p>The prognosis of neuroendocrine neoplasms (NENs) is widely variable and has been shown to associate with several tissue- and blood-based biomarkers in different settings. The identification of prognostic factors predicting NEN outcome is of paramount importance to select the best clinical management for these patients. Prognostic markers have been intensively investigated, also taking advantage of the most modern techniques, in the perspective of personalized medicine and appropriate resource utilization. This review summarizes the available data on the possible role of circulating tumor cells and microRNAs as prognostic markers in NENs.</p>
]]></description>
<dc:creator><![CDATA[Zatelli, M. C., Grossrubatscher, E. M., Guadagno, E., Sciammarella, C., Faggiano, A., Colao, A.]]></dc:creator>
<dc:date>2017-05-23T04:40:57-07:00</dc:date>
<dc:identifier>info:doi/10.1530/ERC-17-0091</dc:identifier>
<dc:identifier>hwp:master-id:erc;ERC-17-0091</dc:identifier>
<dc:publisher>Society for Endocrinology</dc:publisher>
<dc:title><![CDATA[Circulating tumor cells and miRNAs as prognostic markers in neuroendocrine neoplasms]]></dc:title>
<prism:publicationDate>2017-05-23</prism:publicationDate>
<prism:section>Review</prism:section>
<prism:volume>24</prism:volume>
<prism:number>6</prism:number>
<prism:startingPage>R223</prism:startingPage>
<prism:endingPage>R237</prism:endingPage>
</item>
<item rdf:about="http://erc.endocrinology-journals.org/cgi/content/short/24/6/R239?rss=1">
<title><![CDATA[Molecular targeted therapies in adrenal, pituitary and parathyroid malignancies]]></title>
<link>http://erc.endocrinology-journals.org/cgi/content/short/24/6/R239?rss=1</link>
<description><![CDATA[
<p>Tumourigenesis is a relatively common event in endocrine tissues. Currently, specific guidelines have been developed for common malignant endocrine tumours, which also incorporate advances in molecular targeted therapies (MTT), as in thyroid cancer and in gastrointestinal neuroendocrine malignancies. However, there is little information regarding the role and efficacy of MTT in the relatively rare malignant endocrine tumours mainly involving the adrenal medulla, adrenal cortex, pituitary, and parathyroid glands. Due to the rarity of these tumours and the lack of prospective studies, current guidelines are mostly based on retrospective data derived from surgical, locoregional and ablative therapies, and studies with systemic chemotherapy. In addition, in many of these malignancies the prognosis remains poor with individual patients responding differently to currently available treatments, necessitating the development of new personalised therapeutic strategies. Recently, major advances in the molecular understanding of endocrine tumours based on genomic, epigenomic, and transcriptome analysis have emerged, resulting in new insights into their pathogenesis and molecular pathology. This in turn has led to the use of novel MTTs in increasing numbers of patients. In this review, we aim to present currently existing and evolving data using MTT in the treatment of adrenal, pituitary and malignant parathyroid tumours, and explore the current utility and effectiveness of such therapies and their future evolution.</p>
]]></description>
<dc:creator><![CDATA[Angelousi, A., Dimitriadis, G. K., Zografos, G., Nolting, S., Kaltsas, G., Grossman, A.]]></dc:creator>
<dc:date>2017-05-23T04:40:57-07:00</dc:date>
<dc:identifier>info:doi/10.1530/ERC-16-0542</dc:identifier>
<dc:identifier>hwp:master-id:erc;ERC-16-0542</dc:identifier>
<dc:publisher>Society for Endocrinology</dc:publisher>
<dc:title><![CDATA[Molecular targeted therapies in adrenal, pituitary and parathyroid malignancies]]></dc:title>
<prism:publicationDate>2017-05-23</prism:publicationDate>
<prism:section>Review</prism:section>
<prism:volume>24</prism:volume>
<prism:number>6</prism:number>
<prism:startingPage>R239</prism:startingPage>
<prism:endingPage>R259</prism:endingPage>
</item>
<item rdf:about="http://erc.endocrinology-journals.org/cgi/content/short/24/6/253?rss=1">
<title><![CDATA[Apc inactivation, but not obesity, synergizes with Pten deficiency to drive intestinal stem cell-derived tumorigenesis]]></title>
<link>http://erc.endocrinology-journals.org/cgi/content/short/24/6/253?rss=1</link>
<description><![CDATA[
<p>Obesity is a major risk factor for colorectal cancer and can accelerate Lgr5+ intestinal stem cell (ISC)-derived tumorigenesis after the inactivation of <I>Apc</I>. However, whether non-canonical pathways involving PI3K-Akt signaling in ISCs can lead to tumor formation, and if this can be further exacerbated by obesity is unknown. Despite the synergy between <I>Pten</I> and <I>Apc</I> inactivation in epithelial cells on intestinal tumor formation, their combined role in Lgr5+-ISCs, which are the most rapidly dividing ISC population in the intestine, is unknown. Lgr5+-GFP mice were provided low-fat diet (LFD) or high-fat diet (HFD) for 8 months, and the transcriptome was evaluated in Lgr5+-ISCs. For tumor studies, Lgr5+-GFP and Lgr5+-GFP&ndash;<I>Pten</I>  <sup>flox/flox</sup> mice were tamoxifen treated to inactivate <I>Pten</I> in ISCs and provided LFD or HFD until 14&ndash;15 months of age. Finally, various combinations of Lgr5+-ISC-specific, <I>Apc-</I> and <I>Pten</I>-deleted mice were generated and evaluated for histopathology and survival. HFD did not overtly alter Akt signaling in ISCs, but did increase other metabolic pathways. <I>Pten</I> deficiency, but not HFD, increased BrdU-positive cells in the small intestine (<I>P</I> &lt; 0.05). However, combining <I>Pten</I> and <I>Apc</I> deficiency synergistically increased proliferative markers, tumor pathology and mortality, in a dose-dependent fashion (<I>P</I> &lt; 0.05). In summary, we show that HFD alone fails to drive Akt signaling in ISCs and that <I>Pten</I> deficiency is dispensable as a tumor suppressor in Lgr5+-ISCs. However, combining <I>Pten</I> and <I>Apc</I> deficiency in ISCs synergistically increases proliferation, tumor formation and mortality. Thus, aberrant Wnt/&beta;-catenin, rather than PI3K-Akt signaling, is requisite for obesity to drive Lgr5+ ISC-derived tumorigenesis.</p>
]]></description>
<dc:creator><![CDATA[Tabrizian, T., Wang, D., Guan, F., Hu, Z., Beck, A. P., Delahaye, F., Huffman, D. M.]]></dc:creator>
<dc:date>2017-05-05T03:39:15-07:00</dc:date>
<dc:identifier>info:doi/10.1530/ERC-16-0536</dc:identifier>
<dc:identifier>hwp:master-id:erc;ERC-16-0536</dc:identifier>
<dc:publisher>Society for Endocrinology</dc:publisher>
<dc:title><![CDATA[Apc inactivation, but not obesity, synergizes with Pten deficiency to drive intestinal stem cell-derived tumorigenesis]]></dc:title>
<prism:publicationDate>2017-05-05</prism:publicationDate>
<prism:section>Research</prism:section>
<prism:volume>24</prism:volume>
<prism:number>6</prism:number>
<prism:startingPage>253</prism:startingPage>
<prism:endingPage>265</prism:endingPage>
</item>
<item rdf:about="http://erc.endocrinology-journals.org/cgi/content/short/24/6/267?rss=1">
<title><![CDATA[Risk factors for venous thromboembolism in patients treated for differentiated thyroid carcinoma]]></title>
<link>http://erc.endocrinology-journals.org/cgi/content/short/24/6/267?rss=1</link>
<description><![CDATA[
<p>Although cancer in general is a strong risk factor for developing venous thromboembolism (VTE), the risk factors for venous thromboembolic events in patients with differentiated thyroid carcinoma (DTC) have never been assessed. This is remarkable, as several parts of the treatment comprise a hypercoagulable state that could in subgroups of DTC patients lead to an increased risk of VTE. The aim of this study was to assess which risk factors could cause DTC patients to develop VTE. We performed a nested case&ndash;control study, involving cases of DTC patients treated between 1980 and 2014 with confirmed VTE after diagnosis of DTC. Controls were defined as DTC patients without VTE. In all subjects, we collected information about thyroid cancer characteristics, treatment characteristics, traditional risk factors for VTE and additional clinical data, and we performed univariable and multivariable regression analyses. We included 28 cases and 56 controls matched for age at DTC diagnosis, sex and date of DTC diagnosis. In the univariable regression analysis, histology, distant metastases, DTC risk classification, recent surgery and other active malignancy were associated with VTE. In the multivariable analysis, distant metastases (odds ratio 7.9) and recent surgery (odds ratio 6.1) were independently associated with VTE. In conclusion, surgery and presence of distant metastases are independent risk factors for developing VTE in DTC patients. The risk factors identified in this study could be considered when making decisions regarding thromboprophylaxis for patients with thyroid cancer.</p>
]]></description>
<dc:creator><![CDATA[van der Boom, T., Klein Hesselink, E. N., Kooistra, H. A. M., Meijer, K., van der Horst-Schrivers, A. N. A., Lefrandt, J. D., Links, T. P.]]></dc:creator>
<dc:date>2017-05-05T03:39:15-07:00</dc:date>
<dc:identifier>info:doi/10.1530/ERC-17-0013</dc:identifier>
<dc:identifier>hwp:resource-id:erc;24/6/267</dc:identifier>
<dc:publisher>Society for Endocrinology</dc:publisher>
<dc:title><![CDATA[Risk factors for venous thromboembolism in patients treated for differentiated thyroid carcinoma]]></dc:title>
<prism:publicationDate>2017-05-05</prism:publicationDate>
<prism:section>Research</prism:section>
<prism:volume>24</prism:volume>
<prism:number>6</prism:number>
<prism:startingPage>267</prism:startingPage>
<prism:endingPage>273</prism:endingPage>
</item>
<item rdf:about="http://erc.endocrinology-journals.org/cgi/content/short/24/6/275?rss=1">
<title><![CDATA[Combining doxorubicin-nanobubbles and shockwaves for anaplastic thyroid cancer treatment: preclinical study in a xenograft mouse model]]></title>
<link>http://erc.endocrinology-journals.org/cgi/content/short/24/6/275?rss=1</link>
<description><![CDATA[
<p>Anaplastic thyroid cancer is one of the most lethal diseases, and a curative therapy does not exist. Doxorubicin, the only drug approved for anaplastic thyroid cancer treatment, has a very low response rate and causes numerous side effects among which cardiotoxicity is the most prominent. Thus, doxorubicin delivery to the tumor site could be an import goal aimed to improve the drug efficacy and to reduce its systemic side effects. We recently reported that, in human anaplastic thyroid cancer cell lines, combining doxorubicin-loaded nanobubbles with extracorporeal shock waves, acoustic waves used in lithotripsy and orthopedics without side effects, increased the intracellular drug content and <I>in vitro</I> cytotoxicity. In the present study, we tested the efficacy of this treatment on a human anaplastic thyroid cancer xenograft mouse model. After 21 days, the combined treatment determined the greatest drug accumulation in tumors with consequent reduction of tumor volume and weight, and an extension of the tumor doubling time. Mechanistically, the treatment induced tumor apoptosis and decreased cell proliferation. Finally, although doxorubicin caused the increase of fibrosis markers and oxidative stress in animal hearts, loading doxorubicin into nanobubbles avoided these effects preventing heart damage. The improvement of doxorubicin anti-tumor effects together with the prevention of heart damage suggests that the combination of doxorubicin-loaded nanobubbles with extracorporeal shock waves might be a promising drug delivery system for anaplastic thyroid cancer treatment.</p>
]]></description>
<dc:creator><![CDATA[Marano, F., Frairia, R., Rinella, L., Argenziano, M., Bussolati, B., Grange, C., Mastrocola, R., Castellano, I., Berta, L., Cavalli, R., Catalano, M. G.]]></dc:creator>
<dc:date>2017-05-15T04:35:56-07:00</dc:date>
<dc:identifier>info:doi/10.1530/ERC-17-0045</dc:identifier>
<dc:identifier>hwp:master-id:erc;ERC-17-0045</dc:identifier>
<dc:publisher>Society for Endocrinology</dc:publisher>
<dc:title><![CDATA[Combining doxorubicin-nanobubbles and shockwaves for anaplastic thyroid cancer treatment: preclinical study in a xenograft mouse model]]></dc:title>
<prism:publicationDate>2017-05-15</prism:publicationDate>
<prism:section>Research</prism:section>
<prism:volume>24</prism:volume>
<prism:number>6</prism:number>
<prism:startingPage>275</prism:startingPage>
<prism:endingPage>286</prism:endingPage>
</item>
<item rdf:about="http://erc.endocrinology-journals.org/cgi/content/short/24/6/287?rss=1">
<title><![CDATA[The purine receptor P2X7R regulates the release of pro-inflammatory cytokines in human craniopharyngioma]]></title>
<link>http://erc.endocrinology-journals.org/cgi/content/short/24/6/287?rss=1</link>
<description><![CDATA[
<p>Craniopharyngiomas (CPs) are usually benign, non-metastasizing embryonic malformations originating from the sellar area. They are, however, locally invasive and generate adherent interfaces with the surrounding brain parenchyma. Previous studies have shown the tumor microenvironment is characterized by a local abundance of adenosine triphosphate (ATP), infiltration of leukocytes and elevated levels of pro-inflammatory cytokines that are thought to be responsible, at least in part, for the local invasion. Here, we examine whether ATP, via the P2X7R, participates in the regulation of cytokine expression in CPs. The expression of P2X7R and pro-inflammatory cytokines were measured at the RNA and protein levels both in tumor samples and in primary cultured tumor cells. Furthermore, cytokine modulation was measured after manipulating P2X7R in cultured tumor cells by siRNA-mediated knockdown, as well as pharmacologically by using selective agonists and antagonists. The following results were observed. A number of cytokines, in particular IL-6, IL-8 and MCP-1, were elevated in patient plasma, tumor tissue and cultured tumor cells. P2X7R was expressed in tumor tissue as well as in cultured tumor cells. RNA expression as measured in 48 resected tumors was positively correlated with the RNA levels of IL-6, IL-8 and MCP-1 in tumors. Furthermore, knockdown of P2X7R in primary tumor cultures reduced, and stimulation of P2XR7 by a specific agonist enhanced the expression of these cytokines. This latter stimulation involved a Ca<sup>2+</sup>-dependent mechanism and could be counteracted by the addition of an antagonist. In conclusion, the results suggest that P2X7R may promote IL-6, IL-8 and MCP-1 production and secretion and contribute to the invasion and adhesion of CPs to the surrounding tissue.</p>
]]></description>
<dc:creator><![CDATA[Nie, J., Huang, G.-l., Deng, S.-Z., Bao, Y., Liu, Y.-W., Feng, Z.-P., Wang, C.-H., Chen, M., Qi, S.-T., Pan, J.]]></dc:creator>
<dc:date>2017-05-15T04:35:56-07:00</dc:date>
<dc:identifier>info:doi/10.1530/ERC-16-0338</dc:identifier>
<dc:identifier>hwp:master-id:erc;ERC-16-0338</dc:identifier>
<dc:publisher>Society for Endocrinology</dc:publisher>
<dc:title><![CDATA[The purine receptor P2X7R regulates the release of pro-inflammatory cytokines in human craniopharyngioma]]></dc:title>
<prism:publicationDate>2017-05-15</prism:publicationDate>
<prism:section>Research</prism:section>
<prism:volume>24</prism:volume>
<prism:number>6</prism:number>
<prism:startingPage>287</prism:startingPage>
<prism:endingPage>296</prism:endingPage>
</item>
<item rdf:about="http://erc.endocrinology-journals.org/cgi/content/short/24/6/297?rss=1">
<title><![CDATA[Association between changes in fat distribution and biomarkers for breast cancer]]></title>
<link>http://erc.endocrinology-journals.org/cgi/content/short/24/6/297?rss=1</link>
<description><![CDATA[
<p>We assessed the associations between changes in total and abdominal fat and changes in biomarkers for breast cancer risk using data of the SHAPE-2 trial. In the SHAPE-2 trial, 243 postmenopausal overweight women were included. The intervention in this trial consisted of 5-6 kg weight loss either by diet only or exercise plus diet. After 16 weeks, we measured serum sex hormones, inflammatory markers, total body fat (measured by DEXA scan) and intra and subcutaneous abdominal fat (measured by MRI). Associations between changes in different body fat depots and biomarkers were analysed by linear regression using the study cohort irrespective of randomisation to make maximal use of the distribution of changes in fat measures. We found that a loss in total body fat was associated with favourable changes in free oestradiol, free testosterone, leptin and sex hormone binding globulin (SHBG). The loss of intra-abdominal fat was associated with a decrease in free testosterone, hsCRP and leptin, and an increase in SHBG. In the multivariable analysis, the best fitted models for the biomarkers free oestradiol, SHBG leptin and adiponectin included only total body fat. For free testosterone, this was subcutaneous abdominal fat, and for hsCRP and IL-6, only intra-abdominal fat change was important. For IL-6 and adiponectin, however, associations were weak and not significant. We conclude that, in our population of healthy overweight postmenopausal women, loss of fat at different body locations was associated with changes in different types of biomarkers, known to be related to risk of breast cancer.</p>
]]></description>
<dc:creator><![CDATA[van Gemert, W. A., Monninkhof, E. M., May, A. M., Elias, S. G., van der Palen, J., Veldhuis, W., Stapper, M., Stellato, R. K., Schuit, J. A., Peeters, P. H.]]></dc:creator>
<dc:date>2017-05-23T04:40:57-07:00</dc:date>
<dc:identifier>info:doi/10.1530/ERC-16-0490</dc:identifier>
<dc:identifier>hwp:master-id:erc;ERC-16-0490</dc:identifier>
<dc:publisher>Society for Endocrinology</dc:publisher>
<dc:title><![CDATA[Association between changes in fat distribution and biomarkers for breast cancer]]></dc:title>
<prism:publicationDate>2017-05-23</prism:publicationDate>
<prism:section>Research</prism:section>
<prism:volume>24</prism:volume>
<prism:number>6</prism:number>
<prism:startingPage>297</prism:startingPage>
<prism:endingPage>305</prism:endingPage>
</item>
<item rdf:about="http://erc.endocrinology-journals.org/cgi/content/short/24/5/E1?rss=1">
<title><![CDATA[In memoriam: Dirk J Kwekkeboom (1958-2017)]]></title>
<link>http://erc.endocrinology-journals.org/cgi/content/short/24/5/E1?rss=1</link>
<description><![CDATA[]]></description>
<dc:creator><![CDATA[de Herder, W. W., Krenning, E. P., Krestin, G. P.]]></dc:creator>
<dc:date>2017-04-18T04:03:24-07:00</dc:date>
<dc:identifier>info:doi/10.1530/ERC-17-0087</dc:identifier>
<dc:identifier>hwp:resource-id:erc;24/5/E1</dc:identifier>
<dc:publisher>Society for Endocrinology</dc:publisher>
<dc:title><![CDATA[In memoriam: Dirk J Kwekkeboom (1958-2017)]]></dc:title>
<prism:publicationDate>2017-04-18</prism:publicationDate>
<prism:section>Editorials</prism:section>
<prism:volume>24</prism:volume>
<prism:number>5</prism:number>
<prism:startingPage>E1</prism:startingPage>
<prism:endingPage>E2</prism:endingPage>
</item>
<item rdf:about="http://erc.endocrinology-journals.org/cgi/content/short/24/5/L27?rss=1">
<title><![CDATA[miR-16 is highly expressed in Pagets associated osteosarcoma]]></title>
<link>http://erc.endocrinology-journals.org/cgi/content/short/24/5/L27?rss=1</link>
<description><![CDATA[]]></description>
<dc:creator><![CDATA[Green, D., Mohorianu, I., McNamara, I., Dalmay, T., Fraser, W. D.]]></dc:creator>
<dc:date>2017-04-04T02:56:32-07:00</dc:date>
<dc:identifier>info:doi/10.1530/ERC-16-0487</dc:identifier>
<dc:identifier>hwp:resource-id:erc;24/5/L27</dc:identifier>
<dc:publisher>Society for Endocrinology</dc:publisher>
<dc:title><![CDATA[miR-16 is highly expressed in Pagets associated osteosarcoma]]></dc:title>
<prism:publicationDate>2017-04-04</prism:publicationDate>
<prism:section>Research Letter</prism:section>
<prism:volume>24</prism:volume>
<prism:number>5</prism:number>
<prism:startingPage>L27</prism:startingPage>
<prism:endingPage>L31</prism:endingPage>
</item>
<item rdf:about="http://erc.endocrinology-journals.org/cgi/content/short/24/5/L33?rss=1">
<title><![CDATA[Local optometrists are a major source of referrals to a pituitary tumour clinic]]></title>
<link>http://erc.endocrinology-journals.org/cgi/content/short/24/5/L33?rss=1</link>
<description><![CDATA[]]></description>
<dc:creator><![CDATA[Surchi, H., Jafar-Mohammadi, B., Pal, A., Cudlip, S., Grossman, A. B.]]></dc:creator>
<dc:date>2017-04-18T04:03:24-07:00</dc:date>
<dc:identifier>info:doi/10.1530/ERC-17-0034</dc:identifier>
<dc:identifier>hwp:master-id:erc;ERC-17-0034</dc:identifier>
<dc:publisher>Society for Endocrinology</dc:publisher>
<dc:title><![CDATA[Local optometrists are a major source of referrals to a pituitary tumour clinic]]></dc:title>
<prism:publicationDate>2017-04-18</prism:publicationDate>
<prism:section>Letter to the Editor</prism:section>
<prism:volume>24</prism:volume>
<prism:number>5</prism:number>
<prism:startingPage>L33</prism:startingPage>
<prism:endingPage>L34</prism:endingPage>
</item>
<item rdf:about="http://erc.endocrinology-journals.org/cgi/content/short/24/5/R157?rss=1">
<title><![CDATA[MicroRNA applications for prostate, ovarian and breast cancer in the era of precision medicine]]></title>
<link>http://erc.endocrinology-journals.org/cgi/content/short/24/5/R157?rss=1</link>
<description><![CDATA[
<p>The high degree of conservation in microRNA from <I>Caenorhabditis</I> <I>elegans</I> to humans has enabled relatively rapid implementation of findings in model systems to the clinic. The convergence of the capacity for genomic screening being implemented in the prevailing precision medicine initiative and the capabilities of microRNA to address these changes holds significant promise. However, prostate, ovarian and breast cancers are heterogeneous and face issues of evolving therapeutic resistance. The transforming growth factor-beta (<I>TGF&beta;</I>) signaling axis plays an important role in the progression of these cancers by regulating microRNAs. Reciprocally, microRNAs regulate <I>TGF&beta;</I> actions during cancer progression. One must consider the expression of miRNA in the tumor microenvironment a source of biomarkers of disease progression and a viable target for therapeutic targeting. The differential expression pattern of microRNAs in health and disease, therapeutic response and resistance has resulted in its application as robust biomarkers. With two microRNA mimetics in ongoing restorative clinical trials, the paradigm for future clinical studies rests on the current observational trials to validate microRNA markers of disease progression. Some of today&rsquo;s biomarkers can be translated to the next generation of microRNA-based therapies.</p>
]]></description>
<dc:creator><![CDATA[Smith, B., Agarwal, P., Bhowmick, N. A.]]></dc:creator>
<dc:date>2017-04-18T04:03:24-07:00</dc:date>
<dc:identifier>info:doi/10.1530/ERC-16-0525</dc:identifier>
<dc:identifier>hwp:master-id:erc;ERC-16-0525</dc:identifier>
<dc:publisher>Society for Endocrinology</dc:publisher>
<dc:title><![CDATA[MicroRNA applications for prostate, ovarian and breast cancer in the era of precision medicine]]></dc:title>
<prism:publicationDate>2017-04-18</prism:publicationDate>
<prism:section>Review</prism:section>
<prism:volume>24</prism:volume>
<prism:number>5</prism:number>
<prism:startingPage>R157</prism:startingPage>
<prism:endingPage>R172</prism:endingPage>
</item>
<item rdf:about="http://erc.endocrinology-journals.org/cgi/content/short/24/5/209?rss=1">
<title><![CDATA[Genomic complexity and targeted genes in anaplastic thyroid cancer cell lines]]></title>
<link>http://erc.endocrinology-journals.org/cgi/content/short/24/5/209?rss=1</link>
<description><![CDATA[
<p>Anaplastic thyroid cancer (ATC) is a highly malignant disease with a very short median survival time. Few studies have addressed the underlying somatic mutations, and the genomic landscape of ATC thus remains largely unknown. In the present study, we have ascertained copy number aberrations, gene fusions, gene expression patterns, and mutations in early-passage cells from ten newly established ATC cell lines using single nucleotide polymorphism (SNP) array analysis, RNA sequencing and whole exome sequencing. The ATC cell line genomes were highly complex and displayed signs of replicative stress and genomic instability, including massive aneuploidy and frequent breakpoints in the centromeric regions and in fragile sites. Loss of heterozygosity involving whole chromosomes was common, but there were no signs of previous near-haploidisation events or chromothripsis. A total of 21 fusion genes were detected, including six predicted in-frame fusions; none were recurrent. Global gene expression analysis showed 661 genes to be differentially expressed between ATC and papillary thyroid cancer cell lines, with pathway enrichment analyses showing downregulation of <I>TP53</I> signalling as well as cell adhesion molecules in ATC. Besides previously known driver events, such as mutations in <I>BRAF</I>, <I>NRAS</I>, <I>TP53</I> and the <I>TERT</I> promoter, we identified <I>PTPRD</I> and <I>NEGR1</I> as putative novel target genes in ATC, based on deletions in six and four cell lines, respectively; the latter gene also carried a somatic mutation in one cell line. Taken together, our data provide novel insights into the tumourigenesis of ATC and may be used to identify new therapeutic targets.</p>
]]></description>
<dc:creator><![CDATA[Woodward, E. L., Biloglav, A., Ravi, N., Yang, M., Ekblad, L., Wennerberg, J., Paulsson, K.]]></dc:creator>
<dc:date>2017-04-04T02:56:32-07:00</dc:date>
<dc:identifier>info:doi/10.1530/ERC-16-0522</dc:identifier>
<dc:identifier>hwp:master-id:erc;ERC-16-0522</dc:identifier>
<dc:publisher>Society for Endocrinology</dc:publisher>
<dc:title><![CDATA[Genomic complexity and targeted genes in anaplastic thyroid cancer cell lines]]></dc:title>
<prism:publicationDate>2017-04-04</prism:publicationDate>
<prism:section>Research</prism:section>
<prism:volume>24</prism:volume>
<prism:number>5</prism:number>
<prism:startingPage>209</prism:startingPage>
<prism:endingPage>220</prism:endingPage>
</item>
<item rdf:about="http://erc.endocrinology-journals.org/cgi/content/short/24/5/221?rss=1">
<title><![CDATA[Minimal extrathyroidal extension does not affect survival of well-differentiated thyroid cancer]]></title>
<link>http://erc.endocrinology-journals.org/cgi/content/short/24/5/221?rss=1</link>
<description><![CDATA[
<p>Differentiated thyroid cancer (DTC) with minimal extrathyroidal extension (MEE) is classified as stage III regardless of the tumor size. In this study, we aim to examine the effect of MEE on the overall survival and management of this population. A retrospective cohort study was performed, which utilized the National Cancer Database (NCDB), 2004&ndash;2012. The study population included patients, aged &ge; 45 years, who underwent surgery for DTC (pT3N0M0) with MEE compared to that in patients with pT2N0M0. A total of 9556 patients were included. These were divided into four groups, 4410 patients with pT2N0M0 (Group 1: T &le; 4 cm without MEE), 3274 with pT3N0M0 (Group 2: T &le; 4 cm with MEE), 447 with pT3N0M0 (Group 3: T &gt; 4 cm with MEE) and 1430 patients with pT3N0M0 without MEE (Group 4: T &gt; 4 cm without MEE). Median follow-up time was 46.7 months (interquartile range: 27.8&ndash;72.1). Patients in Group 2 (T &le; 4 cm with MEE) had no significant worse survival compared to patients in Group 1 (T &le; 4 cm without MEE) (<I>P</I> = 0.85), whereas Groups 3 and 4 (T &gt; 4 cm), both had significantly lower survival (<I>P</I> &lt; 0.001) with no difference between the two groups. Total thyroidectomy was associated with improved overall survival compared to that in lobectomy in Group 4 (T &gt; 4 cm without MEE). Radioiodine utilization was associated with improved survival only with tumors larger than 4 cm with or without MEE. In DTC patients aged older than 45 years of age with tumor size less than 4 cm, MEE has no survival significance. Tumor size is an independent prognostic marker regardless of MEE status. Our data support re-evaluation of the current staging system.</p>
]]></description>
<dc:creator><![CDATA[Al-Qurayshi, Z., Shama, M. A., Randolph, G. W., Kandil, E.]]></dc:creator>
<dc:date>2017-04-04T02:56:32-07:00</dc:date>
<dc:identifier>info:doi/10.1530/ERC-16-0509</dc:identifier>
<dc:identifier>hwp:master-id:erc;ERC-16-0509</dc:identifier>
<dc:publisher>Society for Endocrinology</dc:publisher>
<dc:title><![CDATA[Minimal extrathyroidal extension does not affect survival of well-differentiated thyroid cancer]]></dc:title>
<prism:publicationDate>2017-04-04</prism:publicationDate>
<prism:section>Research</prism:section>
<prism:volume>24</prism:volume>
<prism:number>5</prism:number>
<prism:startingPage>221</prism:startingPage>
<prism:endingPage>226</prism:endingPage>
</item>
<item rdf:about="http://erc.endocrinology-journals.org/cgi/content/short/24/5/227?rss=1">
<title><![CDATA[Incidence of malignant tumours in patients with a non-functioning pituitary adenoma]]></title>
<link>http://erc.endocrinology-journals.org/cgi/content/short/24/5/227?rss=1</link>
<description><![CDATA[
<p>Whether patients with non-functioning pituitary adenoma (NFPA) are at increased risk of developing malignant tumours has been sparsely studied and is a matter of debate. In this study, we have investigated the incidence of malignant tumours in a large and unselected group of patients with NFPA. The study was nationwide and included all patients diagnosed with NFPA between 1987 and 2011 (<I>n</I> = 2795) in Sweden, identified in the National Patient Register. Malignant tumours, occurring after the NFPA diagnosis, were identified in the Swedish Cancer Register between 1987 and 2014. Standardised incidence ratios (SIRs) for malignant tumours with 95% confidence intervals (CI) were calculated using the Swedish population as reference. In total, 448 malignant tumours were detected in 386 patients with NFPA, as compared to 368 expected malignancies in the general population (SIR 1.22 (95% CI 1.11&ndash;1.33)). The incidence of neoplasms of the brain was increased (SIR 5.83 (95% CI 4.03&ndash;8.14)). When analysing the total incidence of malignancies excluding neoplasms of the brain, the overall SIR was still increased (SIR 1.14 (95% CI 1.03&ndash;1.26)). The incidence of malignant neoplasm of skin other than malignant melanoma (SIR 1.99 (95% CI 1.55&ndash;2.52)) and malignant melanoma (SIR 1.62 (95% CI 1.04&ndash;2.38)) were increased, whereas the incidence of breast cancer (SIR 0.65 (95% CI 0.42&ndash;0.97)) was decreased. The incidence of other types of malignancies did not differ significantly from the expected incidence in the general population. In conclusion, patients with NFPA have an increased overall risk of developing malignancies. To what extent these findings are due to more frequent medical surveillance, genetic predisposition or endocrine changes, remains unknown.</p>
]]></description>
<dc:creator><![CDATA[Olsson, D. S., Hammarstrand, C., Bryngelsson, I.-L., Nilsson, A. G., Andersson, E., Johannsson, G., Ragnarsson, O.]]></dc:creator>
<dc:date>2017-04-04T02:56:32-07:00</dc:date>
<dc:identifier>info:doi/10.1530/ERC-16-0518</dc:identifier>
<dc:identifier>hwp:master-id:erc;ERC-16-0518</dc:identifier>
<dc:publisher>Society for Endocrinology</dc:publisher>
<dc:title><![CDATA[Incidence of malignant tumours in patients with a non-functioning pituitary adenoma]]></dc:title>
<prism:publicationDate>2017-04-04</prism:publicationDate>
<prism:section>Research</prism:section>
<prism:volume>24</prism:volume>
<prism:number>5</prism:number>
<prism:startingPage>227</prism:startingPage>
<prism:endingPage>235</prism:endingPage>
</item>
<item rdf:about="http://erc.endocrinology-journals.org/cgi/content/short/24/5/237?rss=1">
<title><![CDATA[Timing of multikinase inhibitor initiation in differentiated thyroid cancer]]></title>
<link>http://erc.endocrinology-journals.org/cgi/content/short/24/5/237?rss=1</link>
<description><![CDATA[
<p>There are limited treatment options for patients with radioactive iodine refractory, progressive differentiated thyroid cancer. Although there is consensus that multikinase inhibitor therapy should be considered in patients with progressive disease with considerable tumor load or symptomatic disease, uncertainty exists on the optimal timing to treat with a multikinase inhibitor, especially for asymptomatic patients. RIFTOS MKI is an international, prospective, open-label, multicenter, noninterventional study with the primary objective to compare the time to symptomatic progression from study entry in asymptomatic patients with radioactive iodine refractory, progressive differentiated thyroid cancer for whom there is a decision to initiate multikinase inhibitors at study entry (cohort 1) with those for whom there is a decision to not initiate multikinase inhibitors at study entry (cohort 2). Secondary endpoints are overall survival and progression-free survival, which will be compared between cohorts 1 and 2. Additional secondary endpoints are postprogression survival from time of symptomatic progression, duration of and response to each systemic treatment regimen and dosing of sorafenib throughout the treatment period. Asymptomatic, multikinase inhibitor-naive patients aged &ge;18 years with histologically/cytologically documented differentiated thyroid cancer that is radioactive iodine refractory are eligible. Patients may receive any therapy for differentiated thyroid cancer, including sorafenib or other multikinase inhibitors if indicated and decided on by the treating physician. In total, 700 patients are estimated to be enrolled from &gt;20 countries. Final analysis will be performed once the last enrolled patient has been followed up with for 24 months (ClinicalTrials.gov identifier: Nbib2303444).</p>
]]></description>
<dc:creator><![CDATA[Brose, M. S., Smit, J., Lin, C.-C., Pitoia, F., Fellous, M., DeSanctis, Y., Schlumberger, M., Tori, M., Sugitani, I.]]></dc:creator>
<dc:date>2017-04-18T04:03:24-07:00</dc:date>
<dc:identifier>info:doi/10.1530/ERC-17-0016</dc:identifier>
<dc:identifier>hwp:master-id:erc;ERC-17-0016</dc:identifier>
<dc:publisher>Society for Endocrinology</dc:publisher>
<dc:title><![CDATA[Timing of multikinase inhibitor initiation in differentiated thyroid cancer]]></dc:title>
<prism:publicationDate>2017-04-18</prism:publicationDate>
<prism:section>Research</prism:section>
<prism:volume>24</prism:volume>
<prism:number>5</prism:number>
<prism:startingPage>237</prism:startingPage>
<prism:endingPage>242</prism:endingPage>
</item>
<item rdf:about="http://erc.endocrinology-journals.org/cgi/content/short/24/5/243?rss=1">
<title><![CDATA[Pitfalls in the response evaluation after peptide receptor radionuclide therapy with [177Lu-DOTA0,Tyr3]octreotate]]></title>
<link>http://erc.endocrinology-journals.org/cgi/content/short/24/5/243?rss=1</link>
<description><![CDATA[
<p>Peptide receptor radionuclide therapy (PRRT) with [<sup>177</sup>Lu-DOTA<sup>0</sup>,Tyr<sup>3</sup>]octreotate (<sup>177</sup>Lu-DOTATATE) is a treatment with good results in patients with metastatic gastroenteropancreatic neuroendocrine tumours (GEPNETs). However, there are some pitfalls that should be taken into consideration when evaluating the treatment response after PRRT. 354 Dutch patients with GEPNETs who were treated with <sup>177</sup>Lu-DOTATATE between March 2000 and December 2011 were retrospectively selected. Liver function parameters and chromogranin A were measured before each therapy and in follow-up. Anatomical imaging was performed before therapy and in follow-up. An increase in aminotransferases by &ge;20% compared to baseline was observed in 83 of 351 patients (24%). In patients with an objective response (OR) and stable disease (SD) this increase was observed in 71/297 (24%) and in patients with progressive disease (PD) it was observed in 12/54 patients (22%). An increase in chromogranin A by &ge;20% compared to baseline was observed in 76 patients (29%). This was present in 34% of patients who eventually had PD and 27% of patients who had OR/SD. In 70% of patients this tumour marker returned to baseline levels after therapy. An increase in liver enzymes and chromogranin A is not uncommon after PRRT. In the vast majority of patients this will resolve in follow-up. Clinicians should be aware that these changes may occur due to radiation-induced inflammation or disease progression and that repeated measurements over time are necessary to differentiate between the two.</p>
]]></description>
<dc:creator><![CDATA[Brabander, T., van der Zwan, W. A., Teunissen, J. J. M., Kam, B. L. R., de Herder, W. W., Feelders, R. A., Krenning, E. P., Kwekkeboom, D. J.]]></dc:creator>
<dc:date>2017-04-18T04:03:24-07:00</dc:date>
<dc:identifier>info:doi/10.1530/ERC-16-0524</dc:identifier>
<dc:identifier>hwp:master-id:erc;ERC-16-0524</dc:identifier>
<dc:publisher>Society for Endocrinology</dc:publisher>
<dc:title><![CDATA[Pitfalls in the response evaluation after peptide receptor radionuclide therapy with [177Lu-DOTA0,Tyr3]octreotate]]></dc:title>
<prism:publicationDate>2017-04-18</prism:publicationDate>
<prism:section>Research</prism:section>
<prism:volume>24</prism:volume>
<prism:number>5</prism:number>
<prism:startingPage>243</prism:startingPage>
<prism:endingPage>251</prism:endingPage>
</item>
</rdf:RDF>