Rizwan Qaisar, Mashal Javed, Imran Muhammad Khan, Firdos Ahmad, Asima Karim
Sarcopenia involves progressive muscle weakness driven by neuromuscular junction (NMJ) degradation, axonal injury, and diminished neurotrophic support. Electromyography (EMG) and plasma biomarkers can reveal these mechanisms, but integrated analyses remain scarce. We examined associations between EMG parameters and plasma biomarkers in older men with and without sarcopenia. We studied 146 men aged ≥60 years, classified as sarcopenic (n=72) or controls (n=74) using standardized criteria. Intramuscular EMG of the biceps brachii and vastus lateralis measured motor unit potential (MUP) amplitude, duration, and recruitment. Plasma C-terminal agrin-fragment 22 (CAF22), neurofilament light-chain (NfL), and brain-derived neurotrophic factor (BDNF) were quantified. Sarcopenic men exhibited higher amplitude and longer MUP duration with reduced recruitment in vastus lateralis. Plasma CAF22 and NfL were elevated, while BDNF was reduced. CAF22 was positively associated with MUP amplitude and duration, whereas NfL with prolonged duration, reflecting NMJ degradation and axonal damage. BDNF showed a negative association with amplitude but a positive association with recruitment, indicating its neuroprotective role. Integrated EMG and biomarker profiling identifies a convergent signature associated with NMJ instability, axonal degeneration, and reduced neurotrophic support in sarcopenia. These findings suggest links between electrophysiological and molecular alterations in sarcopenia.