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Novel Pan-ERR Agonists Ameliorate Heart Failure Through Enhancing Cardiac Fatty Acid Metabolism and Mitochondrial Function

Study · animal · Circulation · 2024 · DOI 10.1161/CIRCULATIONAHA.123.066542 · PMID 37961903

Plain-language summary

Paraphrased from the published abstract below — not a verdict on whether anything works.

This mouse study examined two pan-ERR agonists, SLU-PP-332 and SLU-PP-915, designed using structure-based methods, for their effect on cardiac function in a pressure overload-induced heart failure (HF) model. Using functional, multi-omics (RNA sequencing and metabolomics), and genetic dependency studies in vivo and in vitro, the authors found both agonists improved ejection fraction, reduced fibrosis, and increased survival in this HF model without affecting cardiac hypertrophy. The agonists were associated with transcriptional activation of metabolic genes involved in fatty acid metabolism and mitochondrial function, and metabolomics showed substantial normalization of fatty acid/lipid and tricarboxylic acid/oxidative phosphorylation metabolites in hearts after 6-week pressure overload. ERRγ was identified as the main mediator of the agonists' transcriptional and cardioprotective effects, partly through E2F1 in cardiomyocytes.

Abstract

Cardiac metabolic dysfunction is a hallmark of heart failure (HF). Estrogen-related receptors ERRα and ERRγ are essential regulators of cardiac metabolism. Therefore, activation of ERR could be a potential therapeutic intervention for HF. However, in vivo studies demonstrating the potential usefulness of ERR agonist for HF treatment are lacking, because compounds with pharmacokinetics appropriate for in vivo use have not been available. Using a structure-based design approach, we designed and synthesized 2 structurally distinct pan-ERR agonists, SLU-PP-332 and SLU-PP-915. We investigated the effect of ERR agonist on cardiac function in a pressure overload-induced HF model in vivo. We conducted comprehensive functional, multi-omics (RNA sequencing and metabolomics studies), and genetic dependency studies both in vivo and in vitro to dissect the molecular mechanism, ERR isoform dependency, and target specificity. Both SLU-PP-332 and SLU-PP-915 significantly improved ejection fraction, ameliorated fibrosis, and increased survival associated with pressure overload-induced HF without affecting cardiac hypertrophy. A broad spectrum of metabolic genes was transcriptionally activated by ERR agonists, particularly genes involved in fatty acid metabolism and mitochondrial function. Metabolomics analysis showed substantial normalization of metabolic profiles in fatty acid/lipid and tricarboxylic acid/oxidative phosphorylation metabolites in the mouse heart with 6-week pressure overload. ERR agonists increase mitochondria oxidative capacity and fatty acid use in vitro and in vivo. Using both in vitro and in vivo genetic dependency experiments, we show that ERRγ is the main mediator of ERR agonism-induced transcriptional regulation and cardioprotection and definitively demonstrated target specificity. ERR agonism also led to downregulation of cell cycle and development pathways, which was partially mediated by E2F1 in cardiomyocytes. ERR agonists maintain oxidative metabolism, which confers cardiac protection against pressure overload-induced HF in vivo. Our results provide direct pharmacologic evidence supporting the further development of ERR agonists as novel HF therapeutics.

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