DMRT1 prevents female reprogramming in the postnatal mammalian testis

睾丸决定因素 生物 支持细胞 性腺 硫氧化物9 性别分化 重编程 FGF9型 转录因子 内科学 内分泌学 性发育障碍 Y染色体 细胞生物学 遗传学 基因 精子发生 医学
作者
Clinton K. Matson,Mark W. Murphy,Aaron L. Sarver,Michael D. Griswold,Vivian J. Bardwell,David Zarkower
出处
期刊:Nature [Nature Portfolio]
卷期号:476 (7358): 101-104 被引量:642
标识
DOI:10.1038/nature10239
摘要

Sex in mammals is determined in the fetal gonad by the presence or absence of the Y chromosome gene Sry, which controls whether bipotential precursor cells differentiate into testicular Sertoli cells or ovarian granulosa cells. This pivotal decision in a single gonadal cell type ultimately controls sexual differentiation throughout the body. Sex determination can be viewed as a battle for primacy in the fetal gonad between a male regulatory gene network in which Sry activates Sox9 and a female network involving WNT/β-catenin signalling. In females the primary sex-determining decision is not final: loss of the FOXL2 transcription factor in adult granulosa cells can reprogram granulosa cells into Sertoli cells. Here we show that sexual fate is also surprisingly labile in the testis: loss of the DMRT1 transcription factor in mouse Sertoli cells, even in adults, activates Foxl2 and reprograms Sertoli cells into granulosa cells. In this environment, theca cells form, oestrogen is produced and germ cells appear feminized. Thus Dmrt1 is essential to maintain mammalian testis determination, and competing regulatory networks maintain gonadal sex long after the fetal choice between male and female. Dmrt1 and Foxl2 are conserved throughout vertebrates and Dmrt1-related sexual regulators are conserved throughout metazoans. Antagonism between Dmrt1 and Foxl2 for control of gonadal sex may therefore extend beyond mammals. Reprogramming due to loss of Dmrt1 also may help explain the aetiology of human syndromes linked to DMRT1, including disorders of sexual differentiation and testicular cancer.
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