Thyroid hormone receptor α mutation causes a severe and thyroxine-resistant skeletal dysplasia in female mice

J H Duncan Bassett1, Alan Boyde, Tomas Zikmund

  • 1Department of Medicine (J.H.D.B., G.R.W.), Imperial College London, London W12 0NN, United Kingdom; Dental Physical Sciences, Oral Growth and Development (A.B.), Queen Mary University of London, London E1 4NS, United Kingdom; Laboratory of X-Ray Micro-Computed Tomography and Nano-Computed Tomography (T.Z.), Central European Institute of Technology, Brno University of Technology CZ-61600 Brno, Czech Republic; Sheffield Myeloma Research Team (H.E.), University of Sheffield, Sheffield S10 2RX, United Kingdom; Bone Biology Program (P.I.C.), Garvan Institute of Medical Research, Sydney NSW 2010, Australia; and Laboratory of Molecular Biology (X.Z., J.W.P., S-y.C.), National Cancer Institute, Bethesda, Maryland 20892.

Endocrinology
|June 11, 2014
PubMed

Insights

A genetic disorder affecting thyroid hormone receptor alpha 1 (TRα1) causes severe skeletal dysplasia. Mouse models show T4 treatment does not improve skeletal issues, indicating tissue resistance and variable patient responses.

Area of Science:

  • Endocrinology
  • Genetics
  • Skeletal Biology

Background:

  • A novel genetic disorder linked to THRA mutations causes skeletal dysplasia and variable developmental issues.
  • Thyroid hormone receptor alpha 1 (TRα1) plays a crucial role in skeletal development.
  • Current T4 treatments for affected patients yield inconsistent results.

Purpose of the Study:

  • To investigate the skeletal effects of TRα1 mutations using a mouse model.
  • To determine if prolonged T4 treatment can ameliorate skeletal abnormalities in this model.
  • To predict the skeletal outcomes for human patients with THRA mutations.

Main Methods:

  • Utilized Thra1(PV/+) mice, which mimic human TRα1 mutations.
  • Administered prolonged, supraphysiological doses of T4 to adult female mice.
  • Assessed skeletal morphology, bone strength, maturation, and mineralization.

Main Results:

  • Thra1(PV/+) mice exhibited short stature and abnormal bone morphology but normal bone strength.
  • T4 treatment suppressed TSH but did not improve skeletal maturation, growth, or mineralization.
  • Prolonged T4 treatment unexpectedly increased bone stiffness and strength.

Conclusions:

  • TRα1 is essential for both developing and adult skeletal integrity.
  • The mouse model demonstrates profound tissue resistance to thyroid hormone.
  • Patient responses to T4 treatment will likely vary based on specific THRA mutation severity.

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