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Study 15 of 15Setmelanotide literaturebiorxiv-preprint · Observational2026

Global genomics in over 4 million individuals prioritizes therapeutic targets for heart failure and its subtypes

This study identified 383 genetic loci and 568 genes associated with heart failure, suggesting new therapeutic targets, particularly in metabolic pathways.

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Where it sits

this study against the rest of the setmelanotide corpus
2
Preclinical
10
Observational · this one
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Open-label
1
Randomised
2
Reviews

Summary and findings

This study conducted genome-wide association studies involving 4,468,166 individuals to identify therapeutic targets for heart failure (HF) and its subtypes. A total of 383 loci and 568 genes were identified, including 166 novel loci and 375 novel genes. The findings suggest potential druggable targets related to metabolic pathways and cardiac function.

How much of this paper we could read: full text read (0.80). We had a clear abstract, so the summary below closely tracks the paper. What this means →
Identified 383 loci associated with heart failure, n=4,468,166.2026

Abstract

The authors’ words, as biorxiv-preprint supplied them

Heart failure (HF) is a leading cause of morbidity and mortality. We conducted multi-ancestry genome-wide association studies of 345,687 HF cases (4,468,166 individuals), and 47,192 and 46,934 cases of HF with preserved (HFpEF) and reduced ejection fraction (HFrEF), respectively, integrating plasma proteomics and multi-tissue transcriptomics to identify druggable targets. Across HF, HFrEF, and HFpEF, we identified 383 loci (166 novel) and 568 genes (375 novel). Eleven novel genes are targets of approved or investigational cardiovascular therapies, supporting indication expansion of aldosterone synthase inhibitors ( CYP11B2 ) and type-II activin receptor antagonists ( ACVR2A ) to HF. Six cardiomyopathy genes were novel for HF and associated with cardiac structure and function. We identified nearly 100 genes involved in food intake and energy expenditure; metabolism of fatty acids, glucose, and branched-chain amino acids; and mitochondrial proteome, sustaining myocardial energy production. Our findings highlight the primordial role of metabolic pathways and adipokines as therapeutic targets for HF management.

Background

Not reported in abstract.

Methods

Not reported in abstract.

Results

Not reported in abstract.

Interpretation

Not reported in abstract.

Limitations

Not reported in abstract.

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