Regulation of pituitary tumor transforming gene (PTTG) expression and phosphorylation in thyroid cells

Gregory D Lewy1, Gavin A Ryan, Martin L Read

  • 1FRCP, PhD, Senior Clinical Lecturer and Honorary Consultant Physician, Centre for Endocrinology, Diabetes, and Metabolism, School of Clinical and Experimental Medicine, Institute for Biomedical Research, University of Birmingham, Birmingham B15 2TH, United Kingdom. k.boelaert@bham.ac.uk.

Endocrinology
|July 23, 2013
PubMed

Insights

Human pituitary tumor transforming gene (hPTTG) drives thyroid cancer growth by activating autocrine growth factor signaling. Inhibiting this pathway may offer new therapeutic strategies for thyroid tumors.

Area of Science:

  • Oncology
  • Molecular Biology
  • Endocrinology

Background:

  • Human pituitary tumor transforming gene (hPTTG) is a proto-oncogene involved in tumor development.
  • hPTTG phosphorylation by CDC2 and SP1 regulation are known mechanisms, but its role in thyroid cancer is unclear.
  • The interplay between hPTTG, growth factors, and thyroid cell proliferation requires further investigation.

Purpose of the Study:

  • To investigate the relationship between hPTTG and growth factors in thyroid cells.
  • To determine the effects of hPTTG phosphorylation and SP1 regulation on its expression and function.
  • To elucidate the role of hPTTG in thyroid autocrine signaling and cell growth.

Main Methods:

  • Thyroid cells were treated with growth factors (EGF, TGFα, IGF-1) to assess hPTTG expression and phosphorylation.
  • MAPK and phosphoinositide 3-kinase activation pathways were analyzed.
  • CDC2 depletion and hPTTG overexpression were performed in thyroid cell lines and primary thyrocytes.
  • Transgenic hPTTG-overexpressing and knockout mouse models were utilized.

Main Results:

  • EGF, TGFα, and IGF-1 induced hPTTG expression and phosphorylation, activating MAPK and PI3K pathways.
  • Growth factors induced hPTTG independently of CDC2 and SP1 in thyroid carcinoma cells.
  • CDC2 depletion enhanced hPTTG expression and phosphorylation, reducing proliferation.
  • hPTTG overexpression induced EGF, IGF-1, and TGFα, leading to autocrine signaling.
  • hPTTG overexpression in mice resulted in smaller thyroids with reduced proliferation and increased EGF secretion.
  • Pttg(-/-) mice showed reduced thyroidal Egf mRNA expression.

Conclusions:

  • hPTTG plays a central role in thyroid autocrine signaling through growth factors.
  • hPTTG promotes transformed thyroid cell growth via these autocrine mechanisms.
  • Targeting hPTTG-mediated growth factor signaling may be a therapeutic strategy for thyroid tumors.

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