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March 16, 2021Nature Communications150 citationsOpen Access

Xbp1s-FoxO1 axis governs lipid accumulation and contractile performance in heart failure with preserved ejection fraction

GSGabriele G. SchiattarellaFAFrancisco AltamiranoSKSoo Young Kim

Key Points

  • Investigate the molecular mechanisms controlling metabolic alterations, cardiomyocyte lipid buildup, and contractile dysfunction in heart failure with preserved ejection fraction.
  • Evaluated the effects of FoxO1 depletion and cardiomyocyte-specific Xbp1s overexpression in mouse models of heart failure with preserved ejection fraction.
  • Investigated the downstream molecular degradation pathways linking Xbp1s, the E3 ubiquitin ligase STUB1, and FoxO1.
  • FoxO1 depletion or Xbp1s overexpression in cardiomyocytes significantly ameliorates the HFpEF phenotype and reduces myocardial lipid accumulation in mice.
  • Xbp1s directly upregulates the E3 ubiquitin ligase STUB1, driving the ubiquitination and proteasomal degradation of FoxO1.

Abstract

Heart failure with preserved ejection fraction (HFpEF) is now the dominant form of heart failure and one for which no efficacious therapies exist. Obesity and lipid mishandling greatly contribute to HFpEF. However, molecular mechanism(s) governing metabolic alterations and perturbations in lipid homeostasis in HFpEF are largely unknown. Here, we report that cardiomyocyte steatosis in HFpEF is coupled with increases in the activity of the transcription factor FoxO1 (Forkhead box protein O1). FoxO1 depletion, as well as over-expression of the Xbp1s (spliced form of the X-box-binding protein 1) arm of the UPR (unfolded protein response) in cardiomyocytes each ameliorates the HFpEF phenotype in mice and reduces myocardial lipid accumulation. Mechanistically, forced expression of Xbp1s in cardiomyocytes triggers ubiquitination and proteasomal degradation of FoxO1 which occurs, in large part, through activation of the E3 ubiquitin ligase STUB1 (STIP1 homology and U-box-containing protein 1) a novel and direct transcriptional target of Xbp1s. Our findings uncover the Xbp1s-FoxO1 axis as a pivotal mechanism in the pathogenesis of cardiometabolic HFpEF and unveil previously unrecognized mechanisms whereby the UPR governs metabolic alterations in cardiomyocytes.

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Cite This Study

Schiattarella et al. (2021) studied this question.

synapsesocial.com/papers/69f7fb62461d43e9697a1e40https://doi.org/10.1038/s41467-021-21931-9
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