Characterizing SERCA function in murine skeletal muscles after 35-37 days of spaceflight

Author:

Braun Jessica L.,Geromella Mia S.,Hamstra Sophie I.,Messner Holt N.,Fajardo Val A.

Abstract

AbstractIt is well established that microgravity exposure causes significant muscle weakness and atrophy via muscle unloading. On Earth, muscle unloading leads to a disproportionate loss in muscle force and size with the loss in muscle force occurring at a faster rate. Though the exact mechanisms are unknown, a role for Ca2+ dysregulation has been suggested. The sarco(endo)plasmic reticulum Ca2+ ATPase (SERCA) pump actively brings cytosolic Ca2+ into the SR, eliciting muscle relaxation and maintaining low intracellular Ca2+ ([Ca2+]i). SERCA dysfunction contributes to elevations in [Ca2+]i, leading to cellular damage and thus may contribute to the muscle weakness and atrophy observed with spaceflight. Here, we investigated SERCA function, SERCA regulatory protein content (sarcolipin, phospholamban, and neuronatin), and reactive oxygen/nitrogen species (RONS) protein adduction in murine skeletal muscle after 35-37 days of spaceflight. In male and female soleus muscles, spaceflight led to drastic impairments in Ca2+ uptake despite significant increases in SERCA1a protein content. We attribute this impairment to an increase in RONS production and elevated total protein tyrosine (T) nitration and cysteine (S) nitrosylation. Contrarily, in the tibialis anterior (TA) we observed an enhancement in Ca2+ uptake, which we attribute to a shift towards a faster muscle fiber type (i.e., increased myosin heavy chain IIb and SERCA1a) without elevated total protein T-nitration and S-nitrosylation. Thus, spaceflight affects SERCA function differently between the soleus and TA. As the soleus is severely affected by spaceflight, future studies should determine whether improving SERCA function in this muscle can mitigate muscle atrophy and weakness.

Publisher

Cold Spring Harbor Laboratory

Reference51 articles.

1. Effects of Spaceflight on Cardiovascular Physiology and Health;Cardiol Rev,2019

2. The effect of spaceflight and microgravity on the human brain;J Neurol,2017

3. Update on the effects of microgravity on the musculoskeletal system;NPJ Microgravity,2021

4. Resveratrol prevents the wasting disorders of mechanical unloading by acting as a physical exercise mimetic in the rat

5. Single muscle fiber enzyme shifts with hindlimb suspension and immobilization;Am J Physiol,1989

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