A PARP inhibitor, rucaparib, improves cardiac dysfunction in ADP-ribose-acceptor hydrolase 3 ( Arh3 ) deficiency

Insights

ADP-ribose-acceptor hydrolase 3 (ARH3) deficiency causes myocardial dysfunction and increased PAR accumulation. PARP inhibitors can improve cardiac function and reduce infarct size in ARH3-mutant models.

Area of Science:

  • Biochemistry
  • Cardiology
  • Genetics

Background:

  • ADP-ribose-acceptor hydrolase 3 (ARH3) deficiency is linked to neurodegeneration and sudden cardiac death.
  • ARH3 regulates poly(ADP-ribose) (PAR) levels, crucial for cellular response to oxidative stress.
  • The role of ARH3 in myocardial function and its connection to PAR homeostasis remains to be fully elucidated.

Approach:

  • Cardiac function was assessed in Arh3-knockout (KO) and heterozygous (HT) mice using MRI, echocardiography, and isolated heart models.
  • Oxidative stress and cell death pathways were investigated in Arh3-deficient myoblasts and myotubes.
  • The therapeutic potential of PARP inhibitors was evaluated in Arh3-mutant models.

Key Points:

  • Arh3-KO mice exhibited cardiac hypertrophy and reduced contractility, with both KO and HT mice showing impaired cardiac function under stress.
  • Arh3 deficiency led to elevated PAR levels and increased susceptibility to ischemia-reperfusion injury in the myocardium.
  • PARP inhibition, using rucaparib, ameliorated cardiac dysfunction and reduced infarct size in Arh3-mutant mice.

Conclusions:

  • ARH3 plays a critical role in maintaining myocardial function by regulating PAR homeostasis and protecting against oxidative stress.
  • Pharmacological inhibition of PARP represents a potential therapeutic strategy for mitigating cardiac dysfunction associated with ARH3 deficiency.
Abstract

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