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Rajendran, J.

Publications and source records attributed to Rajendran, J..

3 recordsLinked to original sources

CtBP1 coordinates synaptic, metabolic and contractile changes induced by denervation in skeletal muscle

Nerve injury triggers dramatic atrophy of skeletal muscle, accompanied with synaptic and metabolic changes. Regulation of denervation-induced muscle fiber remodeling involves several factors governing genetic reprogramming and proteostasis changes. Here, we demonstrate that the transcriptional co-repressor CtBP1 coordinates synaptic and metabolic changes in muscle fibers upon denervation. CtBP1 was present both in sub- and non-synaptic myonuclei in innervated muscle. Although CtBP1 levels remained unchanged in denervated muscle, CtBP1 accumulated transiently in myonuclei after 2 days of denervation. Ctbp1 knockdown perturbed the expression of a large set of activity-independent and -dependent genes in innervated and denervated skeletal muscles. CtBP1 loss had limited effect on the expression of most synaptic genes, but increased transcript levels of Chrne, encoding the adult {varepsilon} sub-unit of acetylcholine receptors (AChR). However, it did not affect AChR turnover or maintenance of the post-synaptic compartment upon denervation. Importantly, we uncovered that Ctbp1 knockdown promotes denervation-induced changes in metabolic gene expression, including most genes encoding proteins of the respiratory chain complexes. Consistently, it enhanced the switch towards slower, oxidative fibers in fast muscle after 2 weeks of denervation. Moreover, CtBP1 loss precipitated the profound ultrastructural remodeling of mitochondria network induced after denervation. Hence, our study unveils the role of CtBP1 in the integrated muscle response to denervation, with important implications for CtBP1-related muscle diseases. One-sentence summaryLoss of CtBP1 perturbs synaptic, metabolic and contractile changes induced by denervation in skeletal muscle

physiology↗

mTORC1-dependent SOCE activity regulates synaptic gene expression and muscle response to denervation

Neuromuscular junction (NMJ) instability is central in muscle dysfunction occurring in neuromuscular disorders and aging. NMJ maintenance requires regionalized regulation of synaptic genes, previously associated with Ca2+-dependent pathways. However, what sustains Ca2+ micro-domains in myofibers and allows a rapid response to denervation is not known. Here, we identify that Store-Operated Calcium Entry (SOCE) plays a critical role in synaptic gene regulation. SOCE components show differential enrichment in sub- and non-synaptic muscle regions. Especially, STIM1 accumulation at rough endoplasmic reticulum associates with functional SOCE at the endplate. Denervation increases SOCE in non- and sub-synaptic regions, together with reticulum remodeling. Stim1 knockdown hampers denervation-induced synaptic gene up-regulation, while STIM1 overexpression increases synaptic gene expression in innervated muscle. Finally, mTORC1 activation mimics the effect of denervation on SOCE capacity, STIM1 localization and reticulum remodeling. Together, our results reveal a decisive role of SOCE in sensing innervation and regulating muscle response to denervation. They further suggest that SOCE perturbation may contribute to neuromuscular integrity loss in pathological conditions associated with mTORC1 dysregulation.

physiology↗

Small mitochondrial protein NERCLIN regulates cardiolipin homeostasis and mitochondrial ultrastructure.

Cardiolipin (CL) is an essential phospholipid for mitochondrial structure and function. Here we present a small mitochondrial protein, NERCLIN, as a negative regulator of CL homeostasis and mitochondrial ultrastructure. Primate-specific NERCLIN is expressed ubiquitously from GRPEL2 locus on a tightly regulated low level, but induced by heat stress. NERCLIN overexpression severely disrupts mitochondrial cristae structure and induces mitochondrial fragmentation. Proximity labeling suggested interactions of NERCLIN with CL synthesis and prohibitin complexes on the matrix side of the inner mitochondrial membrane. Lipid analysis indicated that NERCLIN regulates mitochondrial CL content. The regulation may occur directly through interaction with PTPMT1, a proximal partner on the CL synthesis pathway, as its product phosphatidylglycerol was also reduced by NERCLIN. We propose that NERCLIN contributes to stress-induced adaptation of mitochondrial dynamics and turnover by regulating the mitochondrial CL content. Our findings add NERCLIN to the group of recently identified small mitochondrial proteins with important regulatory functions.

cell biology↗