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Kitajima, Y.

Publications and source records attributed to Kitajima, Y..

2 recordsLinked to original sources

The mechanosensitive Ca2+-permeable ion channel PIEZO1 promotes satellite cell function in skeletal muscle regeneration

Muscle satellite cells (MuSCs), myogenic stem cells in skeletal muscle, play an essential role in muscle regeneration. During the regeneration process, cues from the surrounding microenvironment are critical for the proliferation and function of MuSCs. However, the mechanism by which mechanical stimuli from the MuSCs niche is converted into biochemical signals to promote muscle regeneration is yet to be determined. Here, we show that PIEZO1, a calcium ion (Ca2+)-permeable cation channel that is activated by membrane tension, mediates the spontaneous Ca2+ influx to controls the regenerative function of MuSCs. Our genetically engineering approach in mice revealed that PIEZO1 is functionally expressed in MuSCs, and the conditional deletion of Piezo1 in MuSCs delays myofiber regeneration after myofiber injury, which is at least in part due to the growth defect in MuSCs via the reduction in RhoA-mediated actomyosin formation. Thus, we provide the first evidence in MuSCs that PIEZO1, a bona fide mechanosensitive ion channel, promotes the proliferative and regenerative function during skeletal muscle regeneration.

cell biology

Hoxa10 mediates positional memory to govern stem cell function in adult skeletal muscle

Skeletal muscle stem cells (satellite cells) are distributed throughout the body with heterogeneous properties that corresponds to region-specific pathophysiology. However, topographical genes that have functions remain unidentified in satellite cells of adult muscle. Here, we showed that expression of Homeobox (Hox)-A cluster genes, key regulators of the embryonic body plan, was robustly maintained in both muscles and satellite cells in adult mice and humans, which recapitulates their embryonic origin. We observed that regionally specific expressed Hox genes were linked to hypermethylation of the Hox-A locus. We examined Hoxa10 inactivation in satellite cells and found it led to genomic instability and mitotic catastrophe, which resulted in a decline in the regionally specific regenerative ability of muscles in adult mice. Thus, our results showed that Hox gene expression profiles instill the embryonic history in satellite cells as positional memory, potentially modulating the region-specificity in adult skeletal muscles.

developmental biology