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Ferey, J. L. A.

Publications and source records attributed to Ferey, J. L. A..

2 recordsLinked to original sources

Sustained loss of Pptc7 triggers variable skeletal muscle dysfunction and diminished body mass through dysregulation of BNIP3

The mitochondrial phosphatase PPTC7 is required to sustain mammalian metabolism, as its global knockout (KO) triggers hypoketotic hypoglycemia and perinatal lethality in mice. However, the extent to which the loss of Pptc7 manifests pathology beyond the perinatal transition is unknown. Furthermore, PPTC7 was recently identified as dual functional, regulating mitochondrial protein phosphorylation and receptor mediated mitophagy, rendering it unclear which function(s) may influence in vivo physiology. Here, we find that sustained, inducible Pptc7 KO decreased lean mass, compromised whole body oxygen consumption, and altered circulating metabolites in adult male mice. We hypothesized that these phenotypes stemmed from skeletal muscle dysfunction and found lower mass and fiber cross-sectional area with shifts in fiber type distribution in select muscles of the hindlimb in Pptc7 KO animals. Loss of PPTC7 increased BNIP3 protein levels and decreased mitochondrial content in skeletal muscle, suggesting elevated mitophagy may drive pathology. Consistently, KO of Bnip3 rescued the lower body weight and lean mass seen in inducible Pptc7 KO adult animals and partially rescued perinatal lethality in global Pptc7 KO mice. These data demonstrate that loss of PPTC7 incites surprisingly variable dysfunction across physiological contexts that at least partially stems from dysregulated BNIP3.

physiology↗

Insights into post-translational regulation of skeletal muscle contractile function by the acetyltransferases, p300 and CBP

Mice with skeletal muscle-specific inducible double knockout of the lysine acetyltransferases, p300 (E1A binding protein p300) and CBP (cAMP-response element-binding protein binding protein), referred to as i-mPCKO, demonstrate a dramatic loss of contractile function in skeletal muscle and ultimately die within 7 days. Given that many proteins involved in ATP generation and cross-bridge cycling are acetylated, we investigated whether these processes are dysregulated in skeletal muscle from i-mPCKO mice and thus could underlie the rapid loss of muscle contractile function. Just 4-5 days after inducing knockout of p300 and CBP in skeletal muscle from adult i-mPCKO mice, there was [~]90% reduction in ex vivo contractile function in the extensor digitorum longus (EDL) and a [~]65% reduction in in vivo ankle dorsiflexion torque, as compared to wildtype (WT; i.e. Cre negative) littermates. Despite the profound loss of contractile force in i-mPCKO mice, there were no genotype-driven differences in fatigability during repeated contractions, nor were there genotype differences in mitochondrial specific pathway enrichment of the proteome, intermyofibrillar mitochondrial volume or mitochondrial respiratory function. As it relates to cross-bridge cycling, remarkably, the overt loss of contractile function in i-mPCKO muscle was reversed in permeabilized fibers supplied with exogenous Ca2+ and ATP, with active tension being similar between i-mPCKO and WT mice, regardless of Ca2+ concentration. Actin-myosin motility was also similar in skeletal muscle from i-mPCKO and WT mice. In conclusion, neither mitochondrial abundance/function, nor actomyosin cross-bridge cycling, are the underlying driver of contractile dysfunction in i-mPCKO mice. New & NoteworthyThe mechanism underlying dramatic loss of muscle contractile function with inducible deletion of both p300 and CBP in skeletal muscle remains unknown. Here we find that impairments in mitochondrial function or cross-bridge cycling are not the underlying mechanism of action. Future work will investigate other aspects of excitation-contraction coupling, such as Ca2+ handling and membrane excitability, as contractile function could be rescued by permeabilizing skeletal muscle, which provides exogenous Ca2+ and bypasses membrane depolarization.

cell biology↗