Developmental SHP2 dysfunction underlies cardiac hypertrophy in Noonan syndrome with multiple lentigines

Insights

Loss-of-function mutations in SHP2 (protein tyrosine phosphatase) cause Noonan syndrome with multiple lentigines (NSML) and heart defects. Endothelial SHP2 signaling is crucial for preventing adult-onset cardiac hypertrophy and congenital heart disease.

Area of Science:

  • Cardiovascular Biology
  • Developmental Biology
  • Genetics

Background:

  • Congenital heart disease (CHD) is a significant cause of mortality, with gene abnormalities often linked to cardiac hypertrophy.
  • Loss-of-function mutations in PTPN11, encoding SHP2, are associated with CHD and Noonan syndrome with multiple lentigines (NSML), frequently presenting with hypertrophic defects.

Purpose of the Study:

  • To investigate the role of SHP2 in cardiac development and the mechanisms underlying NSML-associated cardiac hypertrophy.
  • To determine the cell-specific functions of SHP2 in the developing heart.

Main Methods:

  • Utilized embryonic mouse models with NSML-associated SHP2 variants expressed in specific cell types (endothelial, myocardial, neural crest).
  • Analyzed cardiac development, trabeculation, valvular hyperplasia, and ventricular septal defects.
  • Assessed signaling pathways including AKT, FOXP1/FGF, and NOTCH1/EPHB2.

Main Results:

  • Endothelial-specific expression of NSML-associated SHP2 impaired trabeculation and valvular hyperplasia in embryos.
  • Myocardial-specific expression led to ventricular septal defects, indicating cell-autonomous and nonautonomous roles.
  • Only endothelial-specific SHP2 mutations induced adult-onset cardiac hypertrophy.
  • Aberrant AKT activity and reduced FOXP1/FGF and NOTCH1/EPHB2 signaling were observed.

Conclusions:

  • Aberrant SHP2 signaling in the developing endocardium is a key driver of NSML-associated cardiac hypertrophy.
  • SHP2 is essential for regulating endocardial-myocardial crosstalk during heart development.
  • These findings link SHP2 mutations to both congenital heart defects and adult-onset cardiac hypertrophy.

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