Knockdown of ANGPTL2 promotes left ventricular systolic dysfunction by upregulation of NOX4 in mice

Pauline Labbé1,2, Cécile Martel1,2, Yan-Fen Shi1

  • 1Montreal Heart Institute, Research Center, Montreal, QC, Canada.

PubMed

Insights

Angiopoietin-like 2 (ANGPTL2) absence upregulates cardiac NOX4, causing oxidative stress and left ventricular dysfunction. ANGPTL2 may protect heart function by interacting with and repressing NOX4.

Area of Science:

  • Cardiovascular Biology
  • Oxidative Stress Research
  • Molecular Cardiology

Background:

  • Angiopoietin-like 2 (ANGPTL2) is a pro-inflammatory protein linked to chronic diseases.
  • ANGPTL2's role in cardiac tissue is unclear, though its absence in mice caused left ventricular (LV) dysfunction.
  • Previous findings suggest ANGPTL2 influences vascular function via NOX4 and hydrogen peroxide (H2O2).

Purpose of the Study:

  • To test if increased cardiac NOX4 negatively impacts cardiac redox and remodeling, contributing to LV dysfunction in ANGPTL2-knockdown (KD) mice.
  • To investigate the interaction between ANGPTL2 and NOX4 in the heart.
  • To determine if targeting cardiac NOX4 can reverse cardiac dysfunction.

Main Methods:

  • Comparison of cardiac NOX4 expression and activity in ANGPTL2-KD and wild-type (WT) mice.
  • Assessment of cardiac H2O2 levels and protein interactions (ANGPTL2 and NOX4) via immunofluorescence and co-immunoprecipitation.
  • Induction of pressure overload using transverse aortic constriction (TAC) surgery in mice.
  • Adeno-associated virus (AAV9) mediated shRNA delivery to target cardiac NOX4 expression.
  • Analysis of antioxidant response markers (NRF2/KEAP1, catalase).

Main Results:

  • ANGPTL2-KD mice exhibited higher cardiac NOX4 expression and activity, leading to elevated cardiac H2O2.
  • ANGPTL2 and NOX4 were found to co-express and physically interact within cardiac cells.
  • Pressure overload exacerbated LV systolic dysfunction in WT mice but not in ANGPTL2-KD mice; dysfunction severity correlated with cardiac Nox4 expression.
  • Cardiac-specific NOX4 knockdown in ANGPTL2-KD mice reversed LV systolic dysfunction and induced an antioxidant response.

Conclusions:

  • Absence of ANGPTL2 leads to cardiac NOX4 upregulation, contributing to oxidative stress and LV dysfunction.
  • ANGPTL2 may play a protective role in cardiac function by interacting with and repressing NOX4.
  • Targeting cardiac NOX4 offers a potential therapeutic strategy for ANGPTL2-related cardiac dysfunction.

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