A Human Hereditary Cardiomyopathy Shares a Genetic Substrate With Bicuspid Aortic Valve

Marcos Siguero-Álvarez1,2, Alejandro Salguero-Jiménez1, Joaquim Grego-Bessa1

  • 1Intercellular Signaling in Cardiovascular Development & Disease Laboratory, Centro Nacional de Investigaciones Cardiovasculares and Ciber de Enfermedades Cardiovasculares, Instituto de Salud Carlos III, Madrid, Spain (M.S.-A., A.S.-J., J.G.-B., D.M., B.P., R.P.-S., M.S., S.C.' A.D.' B.I., J.L.d.l.P.).

Circulation
|November 3, 2022
PubMed

Insights

Genetic mutations in MIB1 (MINDBOMB1) and other genes cause complex cardiac diseases like left ventricular noncompaction (LVNC) and bicuspid aortic valve by affecting NOTCH signaling pathways.

Area of Science:

  • Genetics
  • Cardiology
  • Developmental Biology

Background:

  • Human cardiac diseases exhibit complex genetics, including heterogeneous manifestations, multigenic basis, and sporadic occurrence, hindering disease modeling.
  • Left ventricular noncompaction (LVNC) and bicuspid aortic valve are structural cardiac diseases with intricate genetic underpinnings.
  • Inherited heterozygous gene mutations in MIB1 (MINDBOMB1), a NOTCH ligand regulator, and cosegregating genes are implicated in these conditions.

Purpose of the Study:

  • To investigate the genetic basis of LVNC and bicuspid aortic valve.
  • To elucidate the role of MIB1 mutations and genetic modifiers in cardiac development.
  • To establish and analyze novel mouse models for studying these complex cardiac diseases.

Main Methods:

  • CRISPR-Cas9 gene editing was used to create mouse models with specific MIB1 mutations (nonsense and missense).
  • Additional mouse models were generated incorporating MIB1 mutations with five cosegregating variants (ASXL3, APCDD1, TMX3, CEP192, BCL7A).
  • Analyses included histology, echocardiography, cardiac MRI, RNA sequencing, co-immunoprecipitation, and Western blot.

Main Results:

  • Heterozygous MIB1 mutations, in combination with genetic modifiers, induced LVNC and bicuspid aortic valve in mouse models.
  • Specific combinations of heterozygous mutations (e.g., Mib1 Apcdd1 Asxl3) recapitulated LVNC, while others (e.g., Mib1 Cep192 Tmx3;Bcl7a) led to bicuspid aortic valve.
  • Gene expression profiling indicated increased cardiomyocyte proliferation and impaired maturation in mutant models, with biochemical assays suggesting CEP192, BCL7A, and NOTCH interactions.

Conclusions:

  • MIB1-NOTCH pathway variants, in conjunction with cosegregating genetic modifiers, form a shared genetic basis for LVNC and bicuspid aortic valve.
  • These findings highlight the critical role of heterozygous MIB1 mutations and modifier genes in the pathogenesis of these cardiac conditions.
  • The study provides valuable insights into the complex genetic architecture of structural heart diseases.
Abstract

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