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Castillo, M. B.

Publications and source records attributed to Castillo, M. B..

2 recordsLinked to original sources

Single-nucleus transcriptomic analysis reveals the regulatory circuitry of myofiber XBP1 during regenerative myogenesis

Endoplasmic reticulum (ER) stress-induced unfolded protein response (UPR) are activated in skeletal muscle in multiple conditions. However, the role of the UPR in the regulation of muscle regeneration remains less understood. We demonstrate that gene expression of various markers of the UPR is induced in both myogenic and non-myogenic cells in regenerating muscle. Genetic ablation of XBP1, a downstream target of the IRE1 arm of the UPR, in myofibers attenuates muscle regeneration in adult mice. Single nucleus RNA sequencing (snRNA-seq) analysis showed that deletion of XBP1 in myofibers perturbs proteolytic systems and mitochondrial function in myogenic cells. Trajectory analysis of snRNA-seq dataset showed that XBP1 regulates the abundance of satellite cells and the formation of new myofibers in regenerating muscle. In addition, ablation of XBP1 disrupts the composition of non-myogenic cells in injured muscle microenvironment. Collectively, our study suggests that myofiber XBP1 regulates muscle regeneration through both cell-autonomous and -non-autonomous mechanisms. HIGHLIGHTSO_LIThe UPR is activated in different cell types during muscle regeneration. C_LIO_LITargeted deletion of XBP1 impairs muscle regeneration in adult mice C_LIO_LIMyofiber XBP1 regulates satellite cell dynamics during regenerative myogenesis C_LIO_LIMyofiber XBP1 regulates abundance of non-myogenic cells in regenerating muscle C_LI

cell biology↗

The IRE1α/XBP1/Myomaker axis drives myoblast fusion in adult skeletal muscle

Skeletal muscle regeneration involves a signaling network that regulates the proliferation, differentiation, and fusion of muscle precursor cells to injured myofibers. Inositol requiring enzyme 1 alpha (IRE1) is one of the arms of the unfolded protein response (UPR) that regulates cellular proteostasis in response to ER stress. Here, we demonstrate that inducible deletion of IRE1 in adult muscle stem cells (i.e. satellite cells) of mice impairs skeletal muscle regeneration primarily through inhibiting myoblast fusion step. Knockdown of IRE1 or its downstream target, X-box protein 1 (XBP1), also inhibits fusion of cultured myoblasts during myogenesis. Genome-wide transcriptome analysis revealed that knockdown of IRE1 or XBP1 deregulates the gene expression of molecules involved in the regulation of myoblast fusion. The IRE1-XBP1 axis mediates the gene expression of multiple profusion molecules, including Myomaker (Mymk) during myogenic differentiation. Our study demonstrates that spliced XBP1 (sXBP1) transcription factor binds to the promoter region of Mymk gene during myogenesis. Overexpression of myomaker in IRE1-knockdown cultures rescues fusion defects. Finally, our results show that inducible deletion of IRE1 in satellite cells inhibits myoblast fusion and myofiber hypertrophy in response to functional overload. Collectively, our study demonstrates that IRE1 promotes myoblast fusion through sXBP1-mediated up-regulation in the gene expression of profusion molecules. Significance StatementMyoblast fusion is an essential step for regeneration and post-natal growth of skeletal muscle. We demonstrate that the activation of the IRE1/XBP1 arm of the unfolded protein response induces myoblast fusion through augmenting the gene expression of multiple profusion molecules, including myomaker. This study has identified a novel signaling axis that link ER stress-induced non-myogenic signaling pathway to myoblast fusion. Augmenting the activity of IRE1/XBP1 pathway could be a potential therapeutic strategy for various muscle degenerative diseases.

cell biology↗