Mitochondrial NNT Promotes Diastolic Dysfunction in Cardiometabolic HFpEF.

Pepin, Mark E; Konrad, Philipp J M; Nazir, Sumra; Bazgir, Farhad; Maack, Christoph; Nickel, Alexander; Gorman, Joshua M; Hohl, Mathias et al. · Circ Res · 2025

basic_science · Level V

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Abstract

Clinical management of heart failure with preserved ejection fraction (HFpEF) is hindered by a lack of disease-modifying therapies capable of altering its distinct pathophysiology. Despite the widespread implementation of a 2-hit model of cardiometabolic HFpEF to inform precision therapy, which utilizes HFD+L-NAME (ad libitum high-fat diet and 0.5% N[ω]-nitro-L-arginine methyl ester), we observe that C57BL6/J mice exhibit less cardiac diastolic dysfunction in response to HFD+L-NAME. Genetic strain-specific single-nucleus transcriptomic analysis identified disease-relevant genes that enrich oxidative metabolic pathways within cardiomyocytes. Because C57BL/6J mice are known to harbor a loss-of-function mutation affecting the inner mitochondrial membrane protein <i>Nnt</i> (nicotinamide nucleotide transhydrogenase), we established an isogenic model of <i>Nnt</i> loss-of-function to determine whether intact NNT is necessary for the pathological cardiac manifestations of HFD+L-NAME. Twelve-week-old mice cross-bred to isolate wild-type (<i>Nnt</i><sup>+/+</sup>) or loss-of-function (<i>Nnt</i><sup>-</sup><sup>/</sup><sup>-</sup>) <i>Nnt</i> in the C57BL/6N background were challenged with HFD+L-NAME for 9 weeks (N=6-10). <i>Nnt</i><sup><i>+/+</i></sup> mice exhibited impaired ventricular diastolic relaxation and pathological remodeling, as assessed via noninvasive echocardiographic quantification of early diastolic pulse-wave velocity (E) to mitral annular velocity (e') ratio (E/e') (42.8 versus 21.5, <i>P</i>=1.2×10<sup>-</sup><sup>10</sup>), E/A (early-to-late mitral inflow velocity ratio) (2.3 versus 1.4, <i>P</i>=4.1×10<sup>-</sup><sup>2</sup>), diastolic stiffness (0.09 versus 0.04 mm Hg/μL, <i>P</i>=5.1×10<sup>-</sup><sup>3</sup>), and myocardial fibrosis (<i>P</i>=2.3×10<sup>-</sup><sup>2</sup>). Liquid chromatography and mass spectroscopy exposed a 40.0% reduction in NAD<sup>+</sup> (<i>P</i>=8.4×10<sup>-</sup><sup>3</sup>) and a 38.8% reduction in the ratio of reduced-to-oxidized glutathione (GSH: GSSG, <i>P</i>=2.6×10<sup>-</sup><sup>2</sup>) among <i>Nnt</i><sup>+/+</sup> mice after HFD+L-NAME feeding. Using single-nucleus ligand-receptor analysis, we implicate Fgf1 (fibroblast growth factor 1) as a putative NNT-dependent mediator of cardiomyocyte-to-fibroblast signaling in myocardial fibrosis. Together, these findings underscore the pivotal role of mitochondrial dysfunction in HFpEF pathogenesis, implicating both NNT and Fgf1 as novel therapeutic targets.

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