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Dabadie, C.

Publications and source records attributed to Dabadie, C..

2 recordsLinked to original sources

Impaired skeletal muscle regeneration induced by Cre recombinase activation in skeletal muscle stem cells

The value of the Cre-lox system in biology is well-recognized, which is reflected by its widespread use to assess the role of a gene in a specific tissue or cell-type. Not in the least, Cre recombinase expressed under the Pax7 promotor has been invaluable for the study of skeletal muscle stem cell (MuSC) biology. In this study, we aimed to systematically assess the effects of the genetic makeup of Pax7Cre mice and Tamoxifen (Tx) treatment on skeletal muscle regeneration. We demonstrate that Tx treatment per se does not affect skeletal muscle regeneration at 14 days post injury (d.p.i.) induced by cardiotoxin, but specifically worsened regeneration in two Pax7CreERT2 lines. Pax7 heterozygosity in Pax7CreERT2(FAN) mice resulted in a lower body mass and Tibialis Anterior (TA) mass, a higher number of fibers per section, and a lower number of Pax7+ cells than in Pax7CreERT2(GAKA) mice, but Tx treatment did not worsen these effects caused by Pax7 haploinsufficiency. In vitro, proliferation of Pax7CreERT2(FAN) MuSCs was impaired after 4-Hydrotamoxifen (4-OHT) treatment, while cell survival and differentiation remained unaffected. Together with a lower number of nuclei per fiber after Tx treatment in Pax7CreERT2(FAN) and male Pax7CreERT2(GAKA) mice, this may suggest an impaired MuSC pool expansion upon Cre activation. Yet, the in vivo MuSC pool was maintained in Pax7Cre mice at 14 d.p.i. Overall, our results directly show that Cre recombinase activity has an off-target effect on MuSCs, which warrants the use of Tx-treated Pax7CreERT2 mice as experimental controls in future studies, and demand caution in interpreting data using other controls in previous studies.

cell biology↗

AMPKα2 is a skeletal muscle stem cell intrinsic regulator of myonuclear accretion

Due to the post-mitotic nature of skeletal muscle fibers, adult muscle maintenance relies on dedicated muscle stem cells (MuSCs). In most physiological contexts, MuSCs support myofiber homeostasis by contributing to myonuclear accretion, which requires a coordination of cell-type specific events between the myofiber and MuSCs. Here, we addressed the role of the kinase AMPK2 in the coordination of these events supporting myonuclear accretion. We demonstrate that AMPK2 deletion impairs skeletal muscle regeneration. Through in vitro assessments of MuSC myogenic fate and EdU-based cell tracing, we reveal a MuSC-specific role of AMPK2 in the regulation of myonuclear accretion, which is mediated by phosphorylation of the non-metabolic substrate BAIAP2. Similar cell tracing in vivo shows that AMPK2 knockout mice have a lower rate of myonuclear accretion during regeneration, and that MuSC-specific AMPK2 deletion decreases myonuclear accretion in response to myofiber contraction. Together, this demonstrates that AMPK2 is a MuSC-intrinsic regulator of myonuclear accretion.

cell biology↗