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Semel, M. G.

Publications and source records attributed to Semel, M. G..

2 recordsLinked to original sources

Mitochondrial Permeability Transition in Skeletal Muscle Phenocopies Muscle Alterations seen in Cancer Cachexia and other Wasting Conditions

Skeletal muscle in wasting conditions often exhibits atrophy, mitochondrial respiratory dysfunction, and fragmentation of the acetylcholine receptor (AChR) cluster at the endplate. The accompanying alterations of mitochondrial morphology suggest mitochondria may be involved in muscle pathology in these conditions. To address this gap, we tested an established pathological mechanism in ischemia-reperfusion injury and neurodegeneration but poorly studied in skeletal muscle: mitochondrial permeability transition (mPT). We tested if mPT recapitulated phenotypes common in wasting conditions, whether tumor-conditioned media (TCM) could promote mPT, and compared differentially expressed genes (DEGs) induced by mPT with DEGs observed in a mouse model of pancreatic cancer cachexia. Inducing mPT in mouse skeletal muscle bundles progressively altered mitochondrial cristae morphology, culminating in breach of the outer mitochondrial membrane. Inducing mPT in mouse muscle fibers increased mROS and Caspase 3 activity and caused atrophy. Inducing mPT caused a complex I mitochondrial respiratory impairment, increased lysosome-mitochondrion co-localization, and fragmented the AChR cluster at the muscle endplate. The Ca2+ threshold for mPT, mitochondrial calcein colocalization and mitochondrial membrane potential were reduced by TCM in skeletal muscle or C2C12 myoblasts, respectively. Knockout of the mPT-regulating protein CypD attenuated the reduction in Ca2+ threshold for mPT by TCM. Inhibitors of mPT attenuated atrophy with TCM in C2C12 and human primary myotubes. Finally, there was overlap between the DEGs of mPT and diaphragm muscle in a mouse model of pancreatic cancer cachexia during the muscle wasting phase. We conclude that mPT should be explored as a therapeutic target in muscle wasting disorders.

physiology↗

New role of cardiomyocyte Bmal1 in the regulation of sex-specific heart transcriptomes

It has been well established that cardiovascular diseases exhibit significant differences between sexes in both preclinical models and humans. In addition, there is growing recognition that disrupted circadian rhythms can contribute to the onset and progression of cardiovascular diseases. However little is known about sex differences between the cardiac circadian clock and circadian transcriptomes in mice. Here, we show that the the core clock genes are expressed in common in both sexes but the circadian transcriptome of the mouse heart is very sex-specific. Hearts from female mice expressed significantly more rhythmically expressed genes (REGs) than male hearts and the temporal pattern of REGs was distinctly different between sexes. We next used a cardiomyocyte-specific knock out of the core clock gene, Bmal1, to investigate its role in sex-specific gene expression in the heart. All sex differences in the circadian transcriptomes were significantly diminished with cardiomyocyte-specific loss of Bmal1. Surprisingly, loss of cardiomyocyte Bmal1 also resulted in a roughly 8-fold reduction in the number of all the differentially expressed genes between male and female hearts. We conclude that cardiomyocyte-specific Bmal1, and potentially the core clock mechanism, is vital in conferring sex-specific gene expression in the adult mouse heart.

physiology↗