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Biology subjects

Barton, E. R.

Publications and source records attributed to Barton, E. R..

3 recordsLinked to original sources

Intermittent AP-1 activation in muscles contributes to exercise-induced health benefits

Regular physical exercise extends healthspan, yet the molecular mechanisms that translate intermittent contractile stress into lasting benefit remain incompletely understood. Using global nuclear run-on (GRO-seq) in mouse skeletal muscle after treadmill running, we profiled enhancer RNA (eRNA), a sensitive marker of enhancer activity. Activation protein-1 (AP-1), a family of pioneering factors for senescence, emerged as the top transcription factor with motif enrichment in exercise-activated enhancers. Our screen in the contracting C2C12 myotubes pinpointed cFos/JunD as the primary AP-1 factor responsible for contraction-induced transcriptional changes. Muscle-specific overexpression of A-Fos, a dominant-negative mutant of cFos, disrupted transcriptomic responses to exercise and attenuated exercise-mediated improvement in muscle functions. Interestingly, intermittent but not continuous overexpression of cFos/JunD in mouse muscles mimicked exercise-induced transcriptomic changes, increased mitochondrial volume density, enhanced muscle strength and fatigue resistance, and improved glucose tolerance. These results define a transcriptional regulatory signaling pathway linking exercise intermittency to beneficial adaptations and highlight the necessary recovery cycles in training. The paradoxical anti- and pro-aging roles of AP-1 offer insights into the timing and dynamics of stressors and stress responses in shaping senescence and healthspan.

molecular biology↗

Functional and structural pathologies in skeletal muscle of a rat model of Duchenne muscular dystrophy

BackgroundDuchenne muscular dystrophy (DMD) is a lethal pediatric degenerative muscle disease for which there is no cure. Robust preclinical models that recapitulate major clinical features of DMD are required to investigate efficacy of potential DMD therapeutics. Rat models of DMD have emerged as promising small animal models to accomplish this; however, there have been no comprehensive studies investigating the functional skeletal muscle decrements associated with the modeling of DMD in rats. MethodsCRISPR/Cas9 gene editing was used to generate a dystrophin-deficient Sprague-Dawley muscular dystrophy rat (MDR). Biochemical and immunofluorescent analyses were performed to confirm loss of dystrophin in striated muscles of this rat model. In situ and ex vivo muscle function was assessed in wild-type (WT) and MDR muscles at 3, 6, and 12 months of age, followed by histopathological analyses. ResultsMDR muscle tissues exhibited loss of full-length dystrophin and reduced content of other dystrophin glycoprotein complex members. MDR extensor digitorum longus (EDL) muscles and diaphragms displayed pronounced and progressive muscle weakness beginning at 3 months of age, compared to WT littermates. EDLs also exhibit susceptibility to eccentric contraction-induced damage. Functional deficits in soleus muscles were less severe and were associated with a right shift in force-frequency relationship and a muscle fiber-type shift. MDR muscles display progressive histopathology including degenerative lesions, fibrosis, regenerative foci, and modest adipose deposition. ConclusionsMDR is a preclinical model of DMD that exhibits many translational features of the human disease, including a large dynamic range of muscle decrements, that has high utility for the evaluation of potential therapeutics for DMD.

physiology↗

Loss of calpain 3 dysregulates store-operated calcium entry and its exercise response in mice

Limb-Girdle Muscular Dystrophy 2A (LGMD2A) is caused by mutations in the CAPN3 gene encoding Calpain 3, a skeletal-muscle specific, Ca2+-dependent protease. Localization of Calpain 3 within the triad suggests it contributes to Ca2+ homeostasis. Through live-cell Ca2+ measurements, muscle mechanics, immunofluorescence, and electron microscopy (EM) in Capn3 deficient (C3KO) and wildtype (WT) mice, we determined if loss of Calpain 3 altered Store-Operated Calcium Entry (SOCE) activity. Direct Ca2+ influx measurements revealed loss of Capn3 elicits elevated resting SOCE and increased resting cytosolic Ca2+, supported by high incidence of calcium entry units (CEUs) observed by EM. C3KO and WT mice were subjected to a single bout of treadmill running to elicit SOCE. Within 1HR post-treadmill running, C3KO mice exhibited diminished force production in extensor digitorum longus muscles and a greater decay of Ca2+ transients in flexor digitorum brevis muscle fibers during repetitive stimulation. Striking evidence for impaired exercise-induced SOCE activation in C3KO mice included poor colocalization of key SOCE proteins, stromal-interacting molecule 1 (STIM1) and ORAI1, combined with disappearance of CEUs in C3KO muscles. These results demonstrate that Calpain 3 is a key regulator of SOCE in skeletal muscle and identify SOCE dysregulation as a contributing factor to LGMD2A pathology.

physiology↗