Finding and treating subclinical hypothyroidism.
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Biomedical subjects
Publications and source records attributed to E L Mazzaferri.
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Radioiodine-concentrating activity in thyroid tissues has allowed the use of radioiodine as a diagnostic and therapeutic agent for patients with thyroid disorders such as well-differentiated thyroid cancer. However, some extrathyroidal tissues also take up radioiodine, contributing to unwanted side effects of radioiodine therapy. Now that the molecule that mediates radioiodine uptake, the sodium iodide symporter (NIS), has been cloned and characterized, it may be possible to develop novel strategies to differentially modulate NIS expression and/or activity, enhancing it in target tissues and impeding it in others. In addition to restoring NIS expression/activity to ensure sufficient radioiodine uptake for the diagnosis and treatment of advanced thyroid cancers, we envision that it may be possible to selectively increase or confer NIS expression/activity in tumors of nonthyroidal tissues to facilitate the use of radioiodine in their diagnosis and treatment. We also consider the molecular basis of thyroid and nonthyroid disorders that may be complicated by NIS deregulation. Finally, we explore the use of NIS as an imaging reporter gene to monitor the expression profile of the transgene in transgenic mouse animal models and in patients undergoing gene therapy clinical trials.
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OBJECTIVES: To determine the incidence of posttreatment hypothyroidism in patients treated with surgery with or without radiotherapy for advanced-stage nonthyroid head and neck cancer and to make recommendations for its detection. DESIGN: A prospective study to assess the incidence and time frame of occurrence of hypothyroidism in patients by primary tumor site and treatment modality. Thyroid function tests were performed preoperatively, at the first postoperative visit, and then approximately every 6 months. Patients were followed up for up to 3 years. SETTING: Arthur G. James Cancer Hospital and Research Institute, Columbus, Ohio. PATIENTS: A total of 251 patients with nonthyroid head and neck cancer were originally enrolled; 198 patients with evaluable data were studied to determine the incidence of posttreatment hypothyroidism. Approximately 80% of the patients had advanced stage (III or IV) or recurrent cancer. RESULTS: The overall incidence of posttreatment hypothyroidism was 15% in 198 patients followed up for a mean of approximately 12 months. Hypothyroidism developed in 12% of patients treated with nonlaryngeal surgery and radiotherapy. The group undergoing total laryngectomy (with thyroid lobectomy) and radiotherapy had a 61% incidence of hypothyroidism. The average time to detection of hypothyroidism was 8.2 months. CONCLUSIONS: Approximately 15% of patients treated for advanced head and neck cancer with surgery and radiotherapy will develop hypothyroidism. Those treated with total laryngectomy and radiotherapy are at greatest risk.
Mortality rates from thyroid cancer have fallen significantly in recent decades, almost certainly as the result of earlier diagnosis and improved treatment of differentiated (papillary and follicular) thyroid cancer. Enhanced survival is likely a result of early diagnosis and therapy applied at a disease stage when treatment is most effective. In the United States and Europe, most patients at high risk for relapse and death from thyroid cancer are treated with total or near-total thyroidectomy and receive radioiodine ablation of residual normal or malignant thyroid tissue, followed by treatment with thyroid hormone, a strategy that cures more than 80% of patients. Still, some die of the disease and nearly 15% have local recurrences, while another 5% to 10% develop distant metastases. Over 50% of recurrences appear in the first five years, but distant metastases may surface years, and sometimes decades, after initial therapy. Much has been learned about risk stratification to predict recurrence and death from thyroid cancer but individual patients continue to have adverse outcomes not always foreseen by a low tumor stage. Follow-up must accordingly be meticulous and prolonged. The National Cancer Center Network (NCCN) has recently established consensus practice guidelines that give explicit advice about the diagnosis and management of benign and malignant thyroid tumors, including paradigms for long-term follow-up and the treatment of recurrent disease. The guidelines confirm that diagnostic scanning with 131I and measurement of serum thyroglobulin (Tg) levels are the mainstay of follow-up, offering the opportunity to detect recurrent or persistent cancer at very early stages. These guidelines advocate TSH-stimulated serum Tg measurements, done either during thyroid hormone withdrawal or stimulation with recombinant human TSH (rhTSH, Thyrogen), that often identify the presence of cancer well before diagnostic whole-body scanning or other imaging studies can spot the tumor, which offers the opportunity to treat recurrent disease at an early stage. The use of rhTSH adds a new dimension to long-term follow-up that avoids putting patients through the symptoms of hypothyroidism, and offers the opportunity to follow some patients with rhTSH-stimulated serum Tg levels without performing 131I whole-body scans. A multicenter international study has shown that serum Tg measurements alone are not as sensitive in the identification of patients with persistent or recurrent tumor as are rhTSH-stimulated serum Tg determinations. Although not yet approved for preparation of patients for 131I therapy, rhTSH has been used successfully in a compassionate use program for this purpose in a relatively large number of patients. Formal clinical investigations now planned to provide guidelines for the use of rhTSH for therapeutic 131I portend a new set of effective therapeutic paradigms for the management of differentiated thyroid cancer.
The observation that radioiodide uptake (RAIU) activity, mediated by the Na+/I- symporter (NIS), is significantly increased in lactating breast suggests that RAIU and NIS expression in mammary gland are modulated by hormones involved in active lactation. We showed that both the NIS expression level and RAIU in rat mammary gland are maximal during active lactation compared to those in the mammary glands of virgin and pregnant rats as well as the involuting mammary gland. In the lactating mammary gland, NIS is clustered on the basolateral membrane of alveolar cells as a lesser glycosylated form than NIS in thyroid. The RAIU of lactating mammary gland was partially inhibited by treatment with a selective oxytocin antagonist or bromocriptine, an inhibitor of PRL release. These findings suggest that RAIU and NIS expression in mammary gland are at least in part modulated by oxytocin and PRL. Indeed, we showed that NIS messenger ribonucleic acid level was increased in a dose-dependent manner by oxytocin and PRL in histocultured human breast tumors.
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The RET/PTC1 oncogene, a rearranged form of the RET proto-oncogene, has been reported to be associated with human papillary thyroid carcinomas. We have shown that targeted expression of RET/PTC1 in the thyroid gland leads to the development of thyroid carcinomas in transgenic mice with histologic and cytologic similarities to human papillary thyroid carcinoma. To further investigate how RET/PTC1 expression contributes to the pathogenesis of papillary thyroid tumor, the time of tumor onset and the early phenotypic consequences of RET/PTC1 expression in thyrocytes were determined. All high copy transgenic mice developed bilateral thyroid tumors as early as 4 days of age. At embryological days 16-18, increased proliferation rate, distorted thyroid follicle formation and reduced radioiodide concentrating activity were identified in transgenic embryos. The reduced radioiodide concentrating activity was attributed to decreased expression of the sodium-iodide symporter. Our study showed that RET/PTC1 not only increased proliferation of thyrocytes, it also altered morphogenesis and differentiation. These findings provide a model for the role of RET/PTC1 in the formation of abnormal follicles with reduced iodide uptake ability observed in human papillary thyroid carcinoma.
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