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Candidate Metabolic Biomarkers for Physical Fatigue Assessment: An Integrative Meta-Analysis and Exploratory Liquid Chromatography–Mass Spectrometry Pilot Study of Acute Exercise Responses

  • Lintao Huang
  • , Wenhui Yang
  • , Pengyu Fu
  • , Xingrong Li
  • , Menglu Pi
  • , Ruilin Shi
  • , Xuehao Wang
  • , Hangfei Qi
  • , Chunyu Zhu
  • , Zhonghuan Jiang
  • , Zifeng Yue
  • , Hange Guo
  • , Jiashuai Tong
  • , Zhihao Chen
  • , Ye Tian
  • , Airong Qian
  • Northwestern Polytechnical University Xian
  • Terahertz Biomedical Interdisciplinary Joint Research Center
  • Xi’an Key Laboratory of Special Medicine and Health EngineeringNorthwestern Polytechnical UniversityBeilin District

Research output: Contribution to journalReview articlepeer-review

Abstract

Background: Objective body-fluid biomarkers may help characterize exercise-induced physical fatigue; however, heterogeneity in exercise protocols, biological matrices, and analytical platforms complicates biomarker interpretation. Purpose: This study aimed to identify candidate acute exercise-responsive metabolic biomarkers associated with physical fatigue assessment by integrating conventional biomarker evidence, exercise-related metabolomics, and exploratory targeted Liquid chromatography–mass spectrometry (LC-MS) analysis. Methods: We conducted three complementary analyses: (1) a systematic review and random-effects meta-analysis of quantitative biomarkers measured in body-fluid matrices, including blood, plasma, serum, saliva, sweat, urine, and interstitial fluid, at pre-exercise and post-exercise time points; (2) a descriptive fold-change-based synthesis of exercise-related metabolomics studies; and (3) an exploratory paired plasma–saliva liquid chromatography–mass spectrometry pilot analysis in seven apparently healthy young male volunteers. Eligible studies included apparently healthy human participants without reported acute or chronic diseases, major injuries, pregnancy, or clinically diagnosed pathological fatigue, undergoing endurance, resistance, high-intensity interval, or mixed exercise protocols. Biomarkers reported in ≥10 independent comparisons were pooled using log-transformed post-exercise/pre-exercise response ratios. Results: The systematic review and meta-analysis included 110 articles, 129 experiments, and 1826 participants. Lactate showed the strongest pooled response after exercise (response ratio = 4.43, 95% CI: 3.74–5.25, p < 0.00001; I2 = 98%), followed by IL-6 (2.15, 95% CI: 1.50–3.07, p < 0.0001; I2 = 87%), CK (1.70, 95% CI: 1.56–1.86, p < 0.00001; I2 = 90%), and LDH (1.23, 95% CI: 1.11–1.35, p < 0.0001; I2 = 93%). Metabolomics synthesis identified lactate, pyruvate, hypoxanthine and xanthine as frequently reported exercise-responsive metabolites related to glycolysis and purine degradation. Exploratory LC-MS analysis showed consistent directional changes in these metabolites in paired plasma and saliva samples. Conclusions: Lactate, pyruvate, hypoxanthine, and xanthine represent candidate metabolism-based acute exercise-responsive biomarkers associated with physical fatigue. However, their fatigue specificity remains to be established and requires validation using independent fatigue criteria, non-fatiguing exercise controls, matrix-specific analyses, and adequately powered diverse cohorts.

Original languageEnglish
Article number509
JournalMetabolites
Volume16
Issue number7
DOIs
StatePublished - Jul 2026

UN SDGs

This output contributes to the following UN Sustainable Development Goals (SDGs)

  1. SDG 3 - Good Health and Well-being
    SDG 3 Good Health and Well-being

Keywords

  • body fluid
  • LC-MS
  • meta-analysis
  • metabolomics
  • physical fatigue biomarkers

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