Search bioRxiv⌕ Search

Biology subjects

TANG, S.

Publications and source records attributed to TANG, S..

2 recordsLinked to original sources

Bisphenol AF induces overactivation of primordial follicles via Hippo signaling and causes premature ovarian insufficiency in mice

Premature depletion of ovarian reserve is a cause of female infertility. Plasticizer Bisphenol AF (BPAF) residues have been found in human reproductive-related samples. However, little is known about its influence on the ovarian reserve. Here, we demonstrate that BPAF exposure causes excessive activation of primordial follicles through Hippo signaling in young females, resulting in rapid exhaustion of the ovarian reserve and, ultimately, premature ovarian insufficiency. We found that oral ingestion of BPAF disrupts normal estrous cyclicity and induces constant estrus in a dose-dependent manner. BPAF can upregulate the expression of YAP transcriptional coactivator. Intriguingly, only the high dose of BPAF inhibits Hippo signaling by eliciting a substantial decrease in phospho-YAP levels. Through such regulatory effects, BPAF causes YAP translocation into the nucleus and triggers the overactivation of primordial follicles. Collectively, this study proposes a novel toxicological mechanism explaining the negative impact of BPAF on the ovarian health of young females.

developmental biology↗

Autologous mitochondria transport via transzonal filopodia rejuvenates aged oocytes by UC-MSCs derived granulosa cells-oocyte aggregation

Mitochondria transfer can rescue oocyte aging-related infertility. However, heterologous techniques are suspended due to heteroplasmy. Regarding autologous approaches, the donor source and manipulating procedures require further optimization. Here we propose a strategy using umbilical cord mesenchymal stem cells (UC-MSCs) as mitochondria donor cells and employing intercellular mitochondria transport as the transfer method. We cryopreserved UC-MSCs of the female pup. When the female aged, its UC-MSCs were induced into granulosa cells (iGCs). The zona-weakened GV oocytes were aggregated with autologous iGCs into iGC-oocyte complexes. After cultivation in GDF9-containing media, mitochondria migrated from iGCs into the GV oocyte via transzonal filopodia. The maturation rate, quality, and developmental potential of these oocytes were substantially increased. Furthermore, the birth rate after embryo transfer has been improved. This approach utilized noninvasive procedures to collect mitochondria donor cells and optimized mitochondria transfer manipulations, so may represent a promising advance towards the improvement of aging-related infertility.

developmental biology↗