Pten loss in the mouse thyroid causes goiter and follicular adenomas: insights into thyroid function and Cowden

Nicole Yeager1, Andres Klein-Szanto, Shioko Kimura

  • 1Human Genetics Program and Department of Pathology, Fox Chase Cancer Center, 333 Cottman Avenue, Philadelphia, PA 19111, USA.

Cancer Research
|February 7, 2007
PubMed

Insights

Loss of the PTEN tumor suppressor in mice causes thyroid enlargement and increased cell proliferation, leading to adenoma formation, particularly in females. This highlights PTEN

Area of Science:

  • Endocrinology and Oncology
  • Molecular Biology and Genetics

Background:

  • PTEN (Phosphatase and tensin homolog) tumor suppressor inactivation is common in epithelial cancers, including thyroid neoplasia.
  • Germline PTEN mutations in Cowden Disease patients are associated with thyroid abnormalities and increased thyroid cancer risk.

Purpose of the Study:

  • To investigate the role of PTEN in thyroid function and disease pathogenesis.
  • To generate and characterize a mouse model with specific Pten deletion in thyrocytes.

Main Methods:

  • Cre-mediated recombination was used to specifically delete Pten in mouse thyrocytes.
  • Analysis of thyroid morphology, hormone levels (TSH, T4), thyrocyte proliferation index, and tumor development.
  • Assessment of the impact of goitrogen treatment on Pten-deficient thyroids.

Main Results:

  • Pten-deficient mice developed diffuse goiter with enlarged follicles and increased thyrocyte proliferation, especially in females.
  • Goitrogen treatment showed limited effects, suggesting PI3K/Akt pathway involvement in TSH-induced proliferation.
  • Over two-thirds of female mutant mice developed follicular adenomas by 10 months, indicating susceptibility to neoplastic transformation.

Conclusions:

  • Loss of PTEN in thyrocytes leads to thyroid enlargement and hyperplasia, predisposing to follicular adenoma development.
  • Constitutive activation of the PI3K/Akt pathway promotes autonomous thyroid growth.
  • Provides insights into Cowden Disease and sporadic nontoxic goiter pathogenesis.

Related Concept Videos

Hyperthyroidism II: Pathophysiology01:27

Hyperthyroidism II: Pathophysiology

Hyperthyroidism is a hypermetabolic state caused by elevated levels of thyroid hormones, triiodothyronine (T3) and thyroxine (T4). It results from dysregulation at the thyroid, pituitary, or immune system level and affects multiple organ systems.PathophysiologyThe most common cause of hyperthyroidism is Graves’ disease, an autoimmune disorder in which antibodies, specifically thyroid-stimulating antibodies (TSAb), a subtype of TSH receptor antibodies (TRAb), bind to and activate TSH receptors...
Hypothyroidism II: Pathophysiology01:23

Hypothyroidism II: Pathophysiology

Hypothyroidism is a disorder characterized by insufficient production of thyroid hormones, which regulate metabolism, energy balance, and multiple organ systems.TypesHypothyroidism is classified based on the level of dysfunction. Primary hypothyroidism results from intrinsic thyroid gland dysfunction, causing reduced hormone production despite normal or increased stimulation. Secondary hypothyroidism arises from inadequate thyroid-stimulating hormone (TSH) secretion by the pituitary. Tertiary...
Hyperthyroidism I: Introduction01:25

Hyperthyroidism I: Introduction

Hyperthyroidism is a type of thyrotoxicosis characterized by the thyroid gland's overproduction of the thyroid hormones triiodothyronine (T3) and thyroxine (T4). This hormone excess increases the basal metabolic rate and enhances sensitivity to catecholamines.DiagnosisDiagnosis is based on clinical features and biochemical testing. It typically shows suppressed thyroid-stimulating hormone (TSH) levels below 0.4 mIU/L, with elevated free T3 and/or T4. Additional tests, including thyroid...
Goiter01:27

Goiter

Goiter refers to an abnormal enlargement of the thyroid gland that may appear as a diffuse goiter (uniform enlargement) or nodular (single or multiple nodules). Functionally, it is classified as nontoxic (normal/low hormone levels) or toxic (excess hormone production).PathophysiologyDiffuse thyroid enlargement typically results from prolonged stimulation by thyroid-stimulating hormone (TSH) or TSH-like agents, commonly seen in hypothyroidism or iodine deficiency. In contrast, in hyperthyroid...
Graves Disease II: Pathophysiology01:24

Graves Disease II: Pathophysiology

Graves’ disease is an autoimmune disorder characterized by the production of thyroid-stimulating immunoglobulins (TSI) that activate TSH receptors, leading to excessive synthesis and release of thyroid hormones (T3 and T4) and resulting in hyperthyroidism.Among all causes of hyperthyroidism, Graves’ disease is the most common and can happen at any age, though it is more frequent in women. It produces a hypermetabolic state with features such as weight loss, tachycardia, tremor, and heat...
Graves' Disease I: Introduction01:28

Graves' Disease I: Introduction

Graves' disease is an autoimmune disorder that causes hyperthyroidism, or overactivity of the thyroid gland. It results from autoantibodies called thyroid-stimulating immunoglobulins (TSIs), which bind to thyroid-stimulating hormone (TSH) receptors, leading to overstimulation of hormone production and a hypermetabolic state.EtiologyAlthough considered idiopathic, Graves’ disease has well-established contributing factors. There is a strong genetic component, with increased prevalence in...