Dysfunctional nitric oxide signalling increases risk of myocardial infarction

Jeanette Erdmann1, Klaus Stark2, Ulrike B Esslinger3

  • 11] Institut für Integrative und Experimentelle Genomik, Universität zu Lübeck, 23562 Lübeck, Germany [2] German Centre for Cardiovascular Research (DZHK), partner site Hamburg/Lübeck/Kiel, 23562 Lübeck, Germany [3].

Nature
|November 12, 2013
PubMed

Insights

Genetic mutations in GUCY1A3 and CCT7 impair nitric oxide signaling, increasing myocardial infarction risk through accelerated thrombus formation. This discovery offers a potential new therapeutic target for heart attack prevention.

Area of Science:

  • Cardiovascular Genetics
  • Molecular Cardiology
  • Thrombosis Research

Background:

  • Myocardial infarction (MI) is a leading cause of death, often caused by atherosclerotic plaque rupture and subsequent thrombus formation.
  • Genetic predisposition plays a significant role in MI, highlighted by family history.
  • Next-generation sequencing has advanced the identification of genetic mutations linked to diseases.

Purpose of the Study:

  • To investigate the genetic basis of myocardial infarction in a family with a strong history of the condition.
  • To identify and characterize novel mutations in genes related to nitric oxide signaling and soluble guanylyl cyclase function.
  • To explore the functional consequences of identified mutations on cardiovascular health and thrombus formation.

Main Methods:

  • Segregation analysis of two heterozygous mutations in GUCY1A3 and CCT7 within an extended MI family.
  • In vitro studies to assess the impact of mutations on soluble guanylyl cyclase (sGC) protein content and activity.
  • Analysis of platelet function and cGMP formation in mutation carriers.
  • In vivo studies using mice deficient in α1-sGC to evaluate thrombus formation.

Main Results:

  • Identified two private, heterozygous mutations in GUCY1A3 and CCT7 segregating in an MI family.
  • Demonstrated that these mutations severely reduce α1-sGC and β1-sGC protein levels and impair sGC activity.
  • Observed reduced sGC protein and impaired nitric oxide-induced cGMP formation in platelets of digenic mutation carriers.
  • Showed accelerated thrombus formation in α1-sGC deficient mice.

Conclusions:

  • Established a link between impaired soluble-guanylyl-cyclase-dependent nitric oxide signaling and increased myocardial infarction risk.
  • Hypothesized that accelerated thrombus formation is a key mechanism underlying this increased risk.
  • Proposed that correcting this signaling defect could be a novel therapeutic strategy for MI prevention.

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