Thyrotropin Receptor Antagonism by a Novel Small Molecule: Preclinical In Vitro Observations

George J Kahaly1, Lisa Steiner1, Miranda M C van der Lee2

  • 1Molecular Thyroid Research Lab, Department of Medicine I, Johannes Gutenberg University (JGU) Medical Center, Mainz, Germany.

Insights

A novel compound, SYD5115, effectively inhibits the thyrotropin receptor (TSH-R) in preclinical models. This research demonstrates SYD5115

Area of Science:

  • Endocrinology and Immunology
  • Molecular Biology
  • Drug Discovery

Background:

  • Graves' hyperthyroidism (GH) and Graves' orbitopathy (GO) treatments are inadequate, necessitating novel targeted therapies.
  • Autoantigens in GH/GO, particularly the thyrotropin receptor (TSH-R), are key targets for intervention.

Purpose of the Study:

  • To evaluate the preclinical in vitro efficacy of SYD5115, a new low-molecular-weight compound designed to inhibit TSH-R.
  • To assess SYD5115's potential as a targeted therapeutic agent for GH and GO.

Main Methods:

  • SYD5115's TSH-R inhibitory capacity was tested in Chinese hamster ovary (CHO) cells expressing wild-type and chimeric TSH-R using functional bioassays.
  • TSH-R-expressing human orbital fibroblasts (GOF) from GH+GO patients were stimulated with M22 antibody or TSH-R-Ab (TSAb)-positive sera.
  • Cyclic adenosine monophosphate (cAMP) and hyaluronic acid (HA) release were measured as readouts; SYD5115's effect on GOF viability, growth, and migration was also assessed.

Main Results:

  • SYD5115 demonstrated significant, dose-dependent inhibition of TSH-R activation by M22 and TSAb-positive sera across all tested bioassays.
  • Inhibition potency was observed in the nanomolar range, with SYD5115 achieving 100% inhibition of M22-induced cAMP levels in a U2OS cell line expressing TSH-R.
  • SYD5115 did not adversely affect the viability, growth, or migration of cultured GOF cells.

Conclusions:

  • SYD5115 effectively blocks M22- and TSAb-induced TSH-R activity with nanomolar potency in both engineered cell lines and primary patient cells.
  • These findings highlight SYD5115's potential as a specific therapeutic agent for conditions characterized by TSH-R overactivity, such as Graves' disease.