A polymorphism in thrombospondin-1 associated with familial premature coronary artery disease alters Ca2+ binding

Blue-leaf A Hannah1, Tina M Misenheimer, Michelle M Pranghofer

  • 1Department of Medicine, Medical Scientist Training Programs, University of Wisconsin, Madison, Wisconsin 53706, USA.

Insights

A genetic variation in thrombospondin-1 (Ser-700) impairs calcium binding, increasing familial premature coronary artery disease risk. This polymorphism affects a key calcium-binding site, impacting protein function and disease association.

Area of Science:

  • Biochemistry
  • Molecular Biology
  • Cardiovascular Genetics

Background:

  • Familial premature coronary artery disease (CAD) is a significant health concern.
  • Thrombospondin-1 (TSP-1) plays a role in cardiovascular health.
  • Genetic variations in TSP-1 may contribute to CAD susceptibility.

Purpose of the Study:

  • To investigate the functional impact of a specific thrombospondin-1 polymorphism (Ser-700) associated with familial premature coronary artery disease.
  • To elucidate the mechanism by which this polymorphism affects calcium (Ca2+) binding and protein function.

Main Methods:

  • Equilibrium dialysis was used to assess Ca2+ binding affinity in wild-type (Asn-700) and variant (Ser-700) thrombospondin-1 constructs.
  • Truncated protein constructs (Tr4, Tr3, Tr2, Tr1) were synthesized to map Ca2+ binding sites.
  • Intrinsic fluorescence quenching and stopped-flow experiments were employed to study Ca2+ binding kinetics.

Main Results:

  • The Ser-700 polymorphism significantly reduces Ca2+ binding affinity in the first Ca2+ -binding motif.
  • Truncated Ser-700 constructs bound fewer Ca2+ ions and showed decreased binding affinity compared to Asn-700 counterparts.
  • Ca2+ binding to Ser-700 variants was slower and required higher concentrations, with altered tryptophan fluorescence quenching patterns.

Conclusions:

  • The Ser-700 polymorphism in thrombospondin-1 disrupts a high-affinity Ca2+ binding site, impacting protein function.
  • Altered Ca2+ coordination by TSP-1 due to this polymorphism is linked to familial premature coronary artery disease.
  • Slower Ca2+ binding kinetics in adjacent motifs may partially mitigate the functional consequences of the primary defect.

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