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Neuromuscular junction instability and altered intracellular calcium handling as early determinants of force loss during unloading in humans
- Source :
- The Journal of Physiology-London, The journal of physiology, vol. 599, no. 12, pp. 3037-3061, 2021.
- Publication Year :
- 2021
-
Abstract
- KEY POINTS Few days of unloading are sufficient to induce a decline of skeletal muscle mass and function; notably, contractile force is lost at a faster rate than muscle mass. The reasons behind this disproportionate loss of muscle force are still poorly understood. We provide strong evidence of two mechanisms only hypothesized until now for the rapid muscle force loss in only 10 days of bed rest. Our results show that an initial neuromuscular junction instability, accompanied by alterations in the innervation status and impairment of single fibre sarcoplasmic reticulum function contribute to the loss of contractile force in front of a preserved myofibrillar function and central activation capacity. Early onset of neuromuscular junction instability and impairment in calcium dynamics involved in excitation-contraction coupling are proposed as eligible determinants to the greater decline in muscle force than in muscle size during unloading. ABSTRACT Unloading induces rapid skeletal muscle atrophy and functional decline. Importantly, force is lost at a much higher rate than muscle mass. We aimed to investigate the early determinants of the disproportionate loss of force compared to that of muscle mass in response to unloading. Ten young participants underwent 10 days of bed rest (BR). At baseline (BR0) and at 10 days (BR10), quadriceps femoris (QF) volume (VOL) and isometric maximum voluntary contraction (MVC) were assessed. At BR0 and BR10 blood samples and biopsies of vastus lateralis (VL) muscle were collected. Neuromuscular junction (NMJ) stability and myofibre innervation status were assessed, together with single fibre mechanical properties and sarcoplasmic reticulum (SR) calcium handling. From BR0 to BR10, QFVOL and MVC decreased by 5.2% (P = 0.003) and 14.3% (P
- Subjects :
- Ca2+ dinamika
0301 basic medicine
muscle atrophy
medicine.medical_specialty
Ca2+ dynamics
NCAM
Neuromuscular junction instability
sarcoplasmic reticulum
single fibres atrophy
single fibres contractile impairment
unloading
Physiology
sarkoplazemski retikulum
medicine.medical_treatment
Ca2+ dynamic
Neuromuscular Junction
Isometric exercise
Bed rest
Calcium in biology
Neuromuscular junction
Quadriceps Muscle
03 medical and health sciences
0302 clinical medicine
single fibre contractile impairment
Internal medicine
medicine
Humans
mišična atrofija
Muscle, Skeletal
Agrin
Chemistry
mišice
Muscle atrophy
Sarcoplasmic Reticulum
030104 developmental biology
medicine.anatomical_structure
Endocrinology
mišičnoskeletni sistem
single fibre atrophy
Neural cell adhesion molecule
Calcium
medicine.symptom
Myofibril
030217 neurology & neurosurgery
udc:612.74
Muscle Contraction
Subjects
Details
- ISSN :
- 14697793
- Volume :
- 599
- Issue :
- 12
- Database :
- OpenAIRE
- Journal :
- The Journal of physiology
- Accession number :
- edsair.doi.dedup.....14928a8c413888da160af49fafcca92c