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August 1, 2021Circulation Heart Failure65 citationsOpen Access

NAD + Redox Imbalance in the Heart Exacerbates Diabetic Cardiomyopathy

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YCYing Ann ChiaoACAkash Deep ChakrabortyCLChristine Light

Key Result

NAD+ redox imbalance exacerbated cardiac dysfunction in diabetic cKO mice, with fractional shortening worsening from 36.9% to 27.6% under diabetic stress (P < 0.05).

Structured PICO

Does altering NAD+ redox balance exacerbate or alleviate cardiac dysfunction in mouse models of diabetic cardiomyopathy?

P
Population
Mouse models (C57BL/6 wild-type, cardiac-specific Ndufs4-knockout [cKO], and NAMPT transgenic mice) subjected to streptozotocin-induced diabetic stress.
I
Intervention
Alteration of NAD+ redox states via cardiac-specific Ndufs4 knockout (lowering NAD+/NADH ratio) or NAMPT overexpression (elevating NAD+ levels).
C
Comparator
Control/wild-type mice subjected to the same streptozotocin-induced diabetic stress or vehicle.
O
Outcome
Cardiac systolic and diastolic function measured by echocardiography (fractional shortening, early-to-late ratio of peak diastolic velocity).surrogate

NAD+ redox imbalance exacerbates diabetic cardiomyopathy by promoting oxidative stress and impaired energetics, and elevating NAD+ levels via NAMPT overexpression ameliorates cardiac dysfunction.

Abstract

Background: Diabetes is a risk factor for heart failure and promotes cardiac dysfunction. Diabetic tissues are associated with nicotinamide adenine dinucleotide (NAD + ) redox imbalance; however, the hypothesis that NAD + redox imbalance causes diabetic cardiomyopathy has not been tested. This investigation used mouse models with altered NAD + redox balance to test this hypothesis. Methods: Diabetic stress was induced in mice by streptozotocin. Cardiac function was measured by echocardiography. Heart and plasma samples were collected for biochemical, histological, and molecular analyses. Two mouse models with altered NAD + redox states (1, Ndufs4 NADH:ubiquinone oxidoreductase subunit S4 knockout, cKO, and 2, NAMPT nicotinamide phosphoribosyltranferase transgenic mice, NMAPT) were used. Results: Diabetic stress caused cardiac dysfunction and lowered NAD + /NADH ratio (oxidized/reduced ratio of nicotinamide adenine dinucleotide) in wild-type mice. Mice with lowered cardiac NAD + /NADH ratio without baseline dysfunction, cKO mice, were challenged with chronic diabetic stress. NAD + redox imbalance in cKO hearts exacerbated systolic (fractional shortening: 27.6% versus 36.9% at 4 weeks, male cohort P <0.05), and diastolic dysfunction (early-to-late ratio of peak diastolic velocity: 0.99 versus 1.20, P <0.05) of diabetic mice in both sexes. Collagen levels and transcripts of fibrosis and extracellular matrix–dependent pathways did not show changes in diabetic cKO hearts, suggesting that the exacerbated cardiac dysfunction was due to cardiomyocyte dysfunction. NAD + redox imbalance promoted superoxide dismutase 2 acetylation, protein oxidation, troponin I S150 phosphorylation, and impaired energetics in diabetic cKO hearts. Importantly, elevation of cardiac NAD + levels by NAMPT normalized NAD + redox balance, alleviated cardiac dysfunction (fractional shortening: 40.2% versus 24.8% in cKO:NAMPT versus cKO, P <0.05; early-to-late ratio of peak diastolic velocity: 1.32 versus 1.04, P <0.05), and reversed pathogenic mechanisms in diabetic mice. Conclusions: Our results show that NAD + redox imbalance to regulate acetylation and phosphorylation is a critical mediator of the progression of diabetic cardiomyopathy and suggest the therapeutic potential for diabetic cardiomyopathy by harnessing NAD + metabolism.

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Cite This Study

Chiao et al. (2021) studied this question. NAD+ redox imbalance exacerbated cardiac dysfunction in diabetic cKO mice, with fractional shortening worsening from 36.9% to 27.6% under diabetic stress (P < 0.05).

synapsesocial.com/papers/69601cce7d749e05f854ce03https://doi.org/10.1161/circheartfailure.120.008170
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