Aug 2026· The FASEB Journal· Vol 40· 0 citations· 39 references
Medicine
TL;DR
This study elucidates the ovarian biology of M. reevesii at the cellular and molecular levels, providing a vital theoretical foundation for understanding chelonian reproductive ecology and offering important insights into reproductive ecology in turtles.
Abstract
The ovary orchestrates female reproduction, where cellular composition and intercellular communication dictate reproductive cycles. Despite advances in chelonian reproductive biology, the cellular composition and regulatory mechanisms of the ovary remain unclear, thereby restricting insights into reproductive ecology and conservation strategies. Here, we performed single‐cell RNA sequencing (scRNA‐seq) to systematically characterize the molecular signatures of ovarian cell types in the Chinese pond turtle (Mauremys reevesii). By integrating differential gene expression analysis and functional enrichment, we constructed a high‐resolution ovarian cell atlas and identified major cell populations, including granulosa cells and oocytes. Specifically, we identified Wnt family member 4 (WNT4) and Wnt family member 6 (WNT6) as specific markers for granulosa cells and Ubiquitin C‐terminal hydrolase L1 (UCHL1) for oocytes. Furthermore, the specific expression of these granulosa cell markers was validated using dual‐color in situ hybridization. Collectively, this study elucidates the ovarian biology of M. reevesii at the cellular and molecular levels, providing a vital theoretical foundation for understanding chelonian reproductive ecology and offering important insights into reproductive ecology in turtles.
This study constructs a developmental atlas of murine oviduct SMCs, revealing that the myosalpinx is composed of functionally distinct SMC subtypes with dynamic developmental trajectories, and highlights the importance of SMC subtype homeostasis and autophagy-mediated maintenance of myosalpinx structure.
Yan-Hua He, Yong E. Zhang, Yun-Xia Chen et al.· BMC Biology· 0 citations
This study uncovers novel gene expression patterns and regulatory features during primate spermatogenesis and reveals a novel undifferentiated germ cell state, emphasizing the need for further exploration of Sertoli cells in male reproductive biology and underscores the power of combined single-nucleus RNA and ATAC seq...
Yu Zhang, Shu Wei, Run-Qing Zou et al.· Frontiers in Cell and Develo...· 0 citations
This study showed that gonia cells represent an immature, proliferative, and highly plastic germ-cell population, with a transcriptomic program largely shared between the male and female developmental pathways, and characterized that early oocyte development is associated with activation of meiotic, cell-cycle, proteos...
Yan-Wen Lian, I. Boutet, Anne-Sophie Le Port et al.· Marine Biotechnology· 0 citations
Understanding primate testicular development is essential for elucidating the evolution of male fertility. Here, we integrated publicly available single-cell RNA sequencing datasets from 23 human and 4 macaque testes spanning infant to adult stages. Integrated analysis identified 22 conserved germ cell subtypes, includ...
Han-Chao Liu, Lin Hua, Xin-Tao Gao et al.· Reproductive Biology· 0 citations
Cell-type definition is commonly achieved using marker genes. Because cell types are broadly conserved across evolution, marker genes are identifiable via interspecies comparisons. We generated single-cell RNA sequencing datasets of bone marrow niche and hematopoietic progenitor compartments from four mouse species. Us...
Lea C. Wölbert, Veronica F. Busa, Amy F. Danson et al.· Cell Genomics· 0 citations
It is demonstrated that miR-187 acts as a previously unrecognized regulator of early folliculogenesis and female reproductive capacity in medaka, expanding the repertoire of miRNAs with essential in vivo roles in teleost oogenesis and female fecundity.
Marlène Davilma, Stéphanie Gay, Manon Thomas et al.· Scientific Reports· 0 citations
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