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<title>Endocrine Related Cancer current issue</title>
<link>http://erc.endocrinology-journals.org</link>
<description>Endocrine Related Cancer RSS feed -- current issue</description>
<prism:eIssn>1479-6821</prism:eIssn>
<prism:coverDisplayDate>April 2018</prism:coverDisplayDate>
<prism:publicationName>Endocrine Related Cancer</prism:publicationName>
<prism:issn>1351-0088</prism:issn>
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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/25/4/L27?rss=1">
<title><![CDATA[Geographic epidemiology of medullary thyroid cancer families: unearthing European ancestral heritage]]></title>
<link>http://erc.endocrinology-journals.org/cgi/content/short/25/4/L27?rss=1</link>
<description><![CDATA[]]></description>
<dc:creator><![CDATA[Machens, A., Lorenz, K., Weber, F., Dralle, H.]]></dc:creator>
<dc:date>2018-02-23T06:32:58-08:00</dc:date>
<dc:identifier>info:doi/10.1530/ERC-17-0514</dc:identifier>
<dc:identifier>hwp:master-id:erc;ERC-17-0514</dc:identifier>
<dc:publisher>Society for Endocrinology</dc:publisher>
<dc:title><![CDATA[Geographic epidemiology of medullary thyroid cancer families: unearthing European ancestral heritage]]></dc:title>
<prism:publicationDate>2018-02-23</prism:publicationDate>
<prism:section>Research Letter</prism:section>
<prism:volume>25</prism:volume>
<prism:number>4</prism:number>
<prism:startingPage>L27</prism:startingPage>
<prism:endingPage>L30</prism:endingPage>
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<item rdf:about="http://erc.endocrinology-journals.org/cgi/content/short/25/4/R209?rss=1">
<title><![CDATA[Treatment of refractory thyroid cancer]]></title>
<link>http://erc.endocrinology-journals.org/cgi/content/short/25/4/R209?rss=1</link>
<description><![CDATA[
<p>Distant metastases from thyroid cancer of follicular origin are uncommon. Treatment includes levothyroxine administration, focal treatment modalities with surgery, external radiation therapy and thermal ablation, and radioiodine in patients with uptake of <sup>131</sup>I in their metastases. Two-thirds of distant metastases become refractory to radioiodine at some point, and when there is a significant tumor burden and documented progression on imaging, a treatment with a kinase inhibitor may provide benefits.</p>
]]></description>
<dc:creator><![CDATA[Berdelou, A., Lamartina, L., Klain, M., Leboulleux, S., Schlumberger, M., on behalf of the TUTHTYREF Network]]></dc:creator>
<dc:date>2018-02-21T09:27:25-08:00</dc:date>
<dc:identifier>info:doi/10.1530/ERC-17-0542</dc:identifier>
<dc:identifier>hwp:master-id:erc;ERC-17-0542</dc:identifier>
<dc:publisher>Society for Endocrinology</dc:publisher>
<dc:title><![CDATA[Treatment of refractory thyroid cancer]]></dc:title>
<prism:publicationDate>2018-02-21</prism:publicationDate>
<prism:section>Review</prism:section>
<prism:volume>25</prism:volume>
<prism:number>4</prism:number>
<prism:startingPage>R209</prism:startingPage>
<prism:endingPage>R223</prism:endingPage>
</item>
<item rdf:about="http://erc.endocrinology-journals.org/cgi/content/short/25/4/R225?rss=1">
<title><![CDATA[Role of iodide metabolism in physiology and cancer]]></title>
<link>http://erc.endocrinology-journals.org/cgi/content/short/25/4/R225?rss=1</link>
<description><![CDATA[
<p>Iodide (I<sup>&ndash;</sup>) metabolism is crucial for the synthesis of thyroid hormones (THs) in the thyroid and the subsequent action of these hormones in the organism. I<sup>&ndash;</sup> is principally transported by the sodium iodide symporter (NIS) and by the anion exchanger PENDRIN, and recent studies have demonstrated the direct participation of new transporters including anoctamin 1 (ANO1), cystic fibrosis transmembrane conductance regulator (CFTR) and sodium multivitamin transporter (SMVT). Several of these transporters have been found expressed in various tissues, implicating them in I<sup>&ndash;</sup> recycling. New research supports the exciting idea that I<sup>&ndash;</sup> participates as a protective antioxidant and can be oxidized to hypoiodite, a potent oxidant involved in the host defense against microorganisms. This was possibly the original role of I<sup>&ndash;</sup> in biological systems, before the appearance of TH in evolution. I<sup>&ndash;</sup> per se participates in its own regulation, and new evidence indicates that it may be antineoplastic, anti-proliferative and cytotoxic in human cancer. Alterations in the expression of I<sup>&ndash;</sup> transporters are associated with tumor development in a cancer-type-dependent manner and, accordingly, NIS, CFTR and ANO1 have been proposed as tumor markers. Radioactive iodide has been the mainstay adjuvant treatment for thyroid cancer for the last seven decades by virtue of its active transport by NIS. The rapid advancement of techniques that detect radioisotopes, in particular I<sup>&ndash;</sup>, has made NIS a preferred target-specific theranostic agent.</p>
]]></description>
<dc:creator><![CDATA[De la Vieja, A., Santisteban, P.]]></dc:creator>
<dc:date>2018-02-21T09:27:25-08:00</dc:date>
<dc:identifier>info:doi/10.1530/ERC-17-0515</dc:identifier>
<dc:identifier>hwp:master-id:erc;ERC-17-0515</dc:identifier>
<dc:publisher>Society for Endocrinology</dc:publisher>
<dc:title><![CDATA[Role of iodide metabolism in physiology and cancer]]></dc:title>
<prism:publicationDate>2018-02-21</prism:publicationDate>
<prism:section>Review</prism:section>
<prism:volume>25</prism:volume>
<prism:number>4</prism:number>
<prism:startingPage>R225</prism:startingPage>
<prism:endingPage>R245</prism:endingPage>
</item>
<item rdf:about="http://erc.endocrinology-journals.org/cgi/content/short/25/4/381?rss=1">
<title><![CDATA[The impact of 27-hydroxycholesterol on endometrial cancer proliferation]]></title>
<link>http://erc.endocrinology-journals.org/cgi/content/short/25/4/381?rss=1</link>
<description><![CDATA[
<p>Endometrial cancer (EC) is the most common gynaecological malignancy. Obesity is a major risk factor for EC and is associated with elevated cholesterol. 27-hydroxycholesterol (27HC) is a cholesterol metabolite that functions as an endogenous agonist for Liver X receptor (LXR) and a selective oestrogen receptor modulator (SERM). Exposure to oestrogenic ligands increases risk of developing EC; however, the impact of 27HC on EC is unknown. Samples of stage 1 EC (<I>n</I> = 126) were collected from postmenopausal women undergoing hysterectomy. Expression of LXRs (<I>NR1H3</I>, LXR&alpha;; <I>NR1H2</I>, LXR&beta;) and enzymes required for the synthesis (<I>CYP27A1</I>) or breakdown (<I>CYP7B1</I>) of 27HC were detected in all grades of EC. Cell lines originating from well-, moderate- and poorly-differentiated ECs (Ishikawa, RL95, MFE 280 respectively) were used to assess the impact of 27HC or the LXR agonist GW3965 on proliferation or expression of a luciferase reporter gene under the control of LXR- or ER-dependent promoters (LXRE, ERE). Incubation with 27HC or GW3965 increased transcription via LXRE in Ishikawa, RL95 and MFE 280 cells (<I>P</I> &lt; 0.01). 27HC selectively activated ER-dependent transcription (<I>P</I> &lt; 0.001) in Ishikawa cells and promoted proliferation of both Ishikawa and RL95 cells (<I>P</I> &lt; 0.001). In MFE 280 cells, 27HC did not alter proliferation but selective targeting of LXR with GW3965 significantly reduced cell proliferation (<I>P</I> &lt; 0.0001). These novel results suggest that 27HC can contribute to risk of EC by promoting proliferation of endometrial cancer epithelial cells and highlight LXR as a potential therapeutic target in the treatment of advanced disease.</p>
]]></description>
<dc:creator><![CDATA[Gibson, D. A., Collins, F., Cousins, F. L., Esnal Zufiaurre, A., Saunders, P. T. K.]]></dc:creator>
<dc:date>2018-02-21T09:27:25-08:00</dc:date>
<dc:identifier>info:doi/10.1530/ERC-17-0449</dc:identifier>
<dc:identifier>hwp:master-id:erc;ERC-17-0449</dc:identifier>
<dc:publisher>Society for Endocrinology</dc:publisher>
<dc:title><![CDATA[The impact of 27-hydroxycholesterol on endometrial cancer proliferation]]></dc:title>
<prism:publicationDate>2018-02-21</prism:publicationDate>
<prism:section>Research</prism:section>
<prism:volume>25</prism:volume>
<prism:number>4</prism:number>
<prism:startingPage>381</prism:startingPage>
<prism:endingPage>391</prism:endingPage>
</item>
<item rdf:about="http://erc.endocrinology-journals.org/cgi/content/short/25/4/393?rss=1">
<title><![CDATA[HSD17B1 expression induces inflammation-aided rupture of mammary gland myoepithelium]]></title>
<link>http://erc.endocrinology-journals.org/cgi/content/short/25/4/393?rss=1</link>
<description><![CDATA[
<p>Hydroxysteroid (17-beta) dehydrogenase type 1 (HSD17B1) converts low-active estrogen estrone to highly active estradiol. Estradiol is necessary for normal postpubertal mammary gland development; however, elevated estradiol levels increase mammary tumorigenesis. To investigate the significance of the human HSD17B1 enzyme in the mammary gland, transgenic mice universally overexpressing human HSD17B1 were used (HSD17B1TG mice). Mammary glands obtained from HSD17B1TG females at different ages were investigated for morphology and histology, and HSD17B1 activity and estrogen receptor activation in mammary gland tissue were assessed. To study the significance of HSD17B1 enzyme expression locally in mammary gland tissue, HSD17B1-expressing mammary epithelium was transplanted into cleared mammary fat pads of wild-type females, and the effects on mammary gland estradiol production, epithelial cells and the myoepithelium were investigated. HSD17B1TG females showed increased estrone to estradiol conversion and estrogen-response element-driven estrogen receptor signaling in mammary gland tissue, and they showed extensive lobuloalveolar development that was further enhanced by age along with an increase in serum prolactin concentrations. At old age, HSD17B1TG females developed mammary cancers. Mammary-restricted HSD17B1 expression induced lesions at the sites of ducts and alveoli, accompanied by peri- and intraductal inflammation and disruption of the myoepithelial cell layer. The lesions were shown to be estrogen dependent, as treatment with an antiestrogen, ICI 182,780, starting when lesions were already established reversed the phenotype. These data elucidate the ability of human HSD17B1 to enhance estrogen action in the mammary gland <I>in vivo</I> and indicate that HSD17B1 is a factor inducing phenotypic alterations associated with mammary tumorigenesis.</p>
]]></description>
<dc:creator><![CDATA[Jarvensivu, P., Heinosalo, T., Hakkarainen, J., Kronqvist, P., Saarinen, N., Poutanen, M.]]></dc:creator>
<dc:date>2018-02-21T09:27:25-08:00</dc:date>
<dc:identifier>info:doi/10.1530/ERC-17-0476</dc:identifier>
<dc:identifier>hwp:master-id:erc;ERC-17-0476</dc:identifier>
<dc:publisher>Society for Endocrinology</dc:publisher>
<dc:title><![CDATA[HSD17B1 expression induces inflammation-aided rupture of mammary gland myoepithelium]]></dc:title>
<prism:publicationDate>2018-02-21</prism:publicationDate>
<prism:section>Research</prism:section>
<prism:volume>25</prism:volume>
<prism:number>4</prism:number>
<prism:startingPage>393</prism:startingPage>
<prism:endingPage>406</prism:endingPage>
</item>
<item rdf:about="http://erc.endocrinology-journals.org/cgi/content/short/25/4/407?rss=1">
<title><![CDATA[Transcriptional profiling reveals distinct classes of parathyroid tumors in PHPT]]></title>
<link>http://erc.endocrinology-journals.org/cgi/content/short/25/4/407?rss=1</link>
<description><![CDATA[
<p>The clinical presentation of primary hyperparathyroidism (PHPT) varies widely, although the underlying mechanistic reasons for this disparity remain unknown. We recently reported that parathyroid tumors can be functionally segregated into two distinct groups on the basis of their relative responsiveness to ambient calcium, and that patients in these groups differ significantly in their likelihood of manifesting bone disability. To examine the molecular basis for this phenotypic variation in PHPT, we compared the global gene expression profiles of calcium-sensitive and calcium-resistant parathyroid tumors. RNAseq and proteomic analysis identified a candidate set of differentially expressed genes highly correlated with calcium-sensing capacity. Subsequent quantitative assessment of the expression levels of these genes in an independent cohort of parathyroid tumors confirmed that calcium-sensitive tumors cluster in a discrete transcriptional profile group. These data indicate that PHPT is not an etiologically monolithic disorder and suggest that divergent molecular mechanisms could drive the observed phenotypic differences in PHPT disease course, provenance, and outcome.</p>
]]></description>
<dc:creator><![CDATA[Koh, J., Hogue, J. A., Roman, S. A., Scheri, R. P., Fradin, H., Corcoran, D. L., Sosa, J. A.]]></dc:creator>
<dc:date>2018-02-23T06:32:58-08:00</dc:date>
<dc:identifier>info:doi/10.1530/ERC-17-0470</dc:identifier>
<dc:identifier>hwp:resource-id:erc;25/4/407</dc:identifier>
<dc:publisher>Society for Endocrinology</dc:publisher>
<dc:title><![CDATA[Transcriptional profiling reveals distinct classes of parathyroid tumors in PHPT]]></dc:title>
<prism:publicationDate>2018-02-23</prism:publicationDate>
<prism:section>Research</prism:section>
<prism:volume>25</prism:volume>
<prism:number>4</prism:number>
<prism:startingPage>407</prism:startingPage>
<prism:endingPage>420</prism:endingPage>
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