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Technique of Minimally Invasive Transverse Aortic Constriction in Mice for Induction of Left Ventricular Hypertrophy
Published on: September 25, 2017
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.
Abstract:
Background: Angiopoietin-like 2 (ANGPTL2) is a pro-inflammatory and pro-oxidant circulating protein that predicts and promotes chronic inflammatory diseases such as atherosclerosis in humans. Transgenic murine models demonstrated the deleterious role of ANGPTL2 in vascular diseases, while deletion of ANGPTL2 was protective. The nature of its role in cardiac tissues is, however, less clear. Indeed, in adult mice knocked down (KD) for ANGPTL2, we recently reported a mild left ventricular (LV) dysfunction originating from a congenital aortic valve stenosis, demonstrating that ANGPTL2 is essential to cardiac development and function. Hypothesis: Because we originally demonstrated that the KD of ANGPTL2 protected vascular endothelial function via an upregulation of arterial NOX4, promoting the beneficial production of dilatory H2O2, we tested the hypothesis that increased cardiac NOX4 could negatively affect cardiac redox and remodeling and contribute to LV dysfunction observed in adult Angptl2-KD mice. Methods and results: Cardiac expression and activity of NOX4 were higher in KD mice, promoting higher levels of cardiac H2O2 when compared to wild-type (WT) mice. Immunofluorescence showed that ANGPTL2 and NOX4 were co-expressed in cardiac cells from WT mice and both proteins co-immunoprecipitated in HEK293 cells, suggesting that ANGPTL2 and NOX4 physically interact. Pressure overload induced by transverse aortic constriction surgery (TAC) promoted LV systolic dysfunction in WT mice but did not further exacerbate the dysfunction in KD mice. Importantly, the severity of LV systolic dysfunction in KD mice (TAC and control SHAM) correlated with cardiac Nox4 expression. Injection of an adeno-associated virus (AAV9) delivering shRNA targeting cardiac Nox4 expression fully reversed LV systolic dysfunction in KD-SHAM mice, demonstrating the causal role of NOX4 in cardiac dysfunction in KD mice. Targeting cardiac Nox4 expression in KD mice also induced an antioxidant response characterized by increased expression of NRF2/KEAP1 and catalase. Conclusion: Together, these data reveal that the absence of ANGPTL2 induces an upregulation of cardiac NOX4 that contributes to oxidative stress and LV dysfunction. By interacting and repressing cardiac NOX4, ANGPTL2 could play a new beneficial role in the maintenance of cardiac redox homeostasis and function.
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.

