Metabolomic profiling of patients with heart failure and frailty: cross-sectional insights related to inflammation and energy metabolism

Recent Advances in Nutritional Physiology: A Muscle-centric Perspective (University of Exeter, UK) (2026) Proc Physiol Soc 75, C13

Oral Communications: Metabolomic profiling of patients with heart failure and frailty: cross-sectional insights related to inflammation and energy metabolism

Konstantinos Prokopidis1, Sima Jalali Farahani2, Beyza Gulsah Altinpinar1, Omid Khaiyat2, Adam Burke1, Amy Nortcliffe1, Gregory Y.H. Lip1, Rajiv Sankaranarayanan1, Howbeer Muhamadali1, Masoud Isanejad1

1University of Liverpool United Kingdom, 2Liverpool Hope University United Kingdom

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Introduction: Metabolism changes leading to secondary sarcopenia is a hallmark of heart failure (HF). This study aimed to investigate how frailty and muscle weakness are associated with metabolic pathways in patients with HF using high-throughput plasma metabolomics.

Methods: Frailty was defined according to the European Working Group on Sarcopenia in Older People criteria as low physical activity combined with reduced handgrip strength and/or poor performance based on the 30-second chair stand test. Plasma metabolomic profiling was performed using gas chromatography-mass spectrometry to compare metabolic profiles among four groups: HF patients with frailty (HF-Frail), HF patients without frailty (HF-NonFrail), and non-HF controls with and without frailty (NonHF-Frail and NonHF-NonFrail). Circulating biomarkers including growth differentiation factor-15 (GDF-15), myostatin, activin A, follistatin-3, and TNF-α were quantified by enzyme-linked immunosorbent assay (ELISA). Statistical analyses were conducted using MetaboAnalyst and SPSS.

Results: Twenty-five outpatients with HF (mean age 67.9 ± 10.0 years; 19 males, 7 females) and 29 non-HF controls (mean age 67.8 ± 11.1 years; 14 males, 15 females) were included. Among HF patients, 18 were classified as frail (HF-Frail), while 8 of the 29 controls were frail (NonHF-Frail). Compared with NonHF-NonFrail individuals, HF-Frail patients exhibited lower appendicular lean soft tissue index relative to body mass index (p = 0.03), reduced functional performance (6-minute walk distance, timed-up-and-go, 30-second chair stand, and handgrip strength; all p < 0.05), and elevated GDF-15 levels (p < 0.01). Metabolomic analysis revealed that HF-Frail patients had higher levels of glucose, tumour necrosis factor-alpha (TNF-a), GDF-15, amino acids (e.g., alanine, isoleucine, glutamic acid), and carbohydrate metabolites (e.g., galactose, galacturonic acid-1-phosphate) compared with non-HF controls. In contrast, compared with HF-NonFrail patients, HF-Frail showed lower levels of galacturonic acid-1-phosphate, methionine, indole-3-acetamide, and energy-related metabolites (e.g., pyruvic acid, malic acid), but higher concentrations of 2-hydroxy-glutaric acid (p < 0.05), isoleucine (p = 0.02), and valine (p < 0.01).

Conclusions: Patients with HF and frailty display distinct alterations in amino acid and carbohydrate metabolism, accompanied by elevated inflammatory and catabolic markers (TNF-a and GDF-15) compared with both non-frail HF patients and non-HF controls. These findings suggest that metabolic profiling may aid in frailty screening and highlight the potential of targeting catabolic and inflammatory pathways as therapeutic strategies in patients with HF and frailty.



Where applicable, experiments conform with Society ethical requirements.

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