American Journal of Physiology-Cell Physiology · 2022 · 16 citations · 89 references
The size of the satellite cell pool is reduced in estradiol (E<sub>2</sub>)-deficient female mice and humans. Here, we use a combination of in vivo and in vitro approaches to identify mechanisms, whereby E<sub>2</sub> deficiency impairs satellite cell maintenance. By measuring satellite cell numbers in mice at several early time points postovariectomy (Ovx), we determine that satellite cell numbers decline by 33% between 10 and 14 days post-Ovx in tibialis anterior and gastrocnemius muscles. At 14 days post-Ovx, we demonstrate that satellite cells have a reduced propensity to transition from G<sub>0</sub>/G<sub>1</sub> to S and G<sub>2</sub>/M phases, compared with cells from ovary-intact mice, associated with changes in two key satellite cell cycle regulators, <i>ccna2</i> and <i>p16<sup>INK4a</sup></i>. Further, freshly isolated satellite cells treated with E<sub>2</sub> in vitro have 62% greater cell proliferation and require less time to complete the first division. Using clonal and differentiation assays, we measured 69% larger satellite cell colonies and enhanced satellite cell-derived myoblast differentiation with E<sub>2</sub> treatment compared with vehicle-treated cells. Together, these results identify a novel mechanism for preservation of the satellite cell pool by E<sub>2</sub> via promotion of satellite cell cycling.
89
Pax7 Is Required for the Specification of Myogenic Satellite Cells
Patrick Seale, Luc A. Sabourin, Adele Girgis-Gabardo et al. · Cell · 2000 · 2.3K citations · Full text
Asymmetric Self-Renewal and Commitment of Satellite Stem Cells in Muscle
Shihuan Kuang, Kazuki Kuroda, Fabien Le Grand et al. · Cell · 2007 · 1.4K citations · Full text
Embryonic Stem Cell, Developmental Biology, Skeletal Muscle +9