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苗勒管抑制物质:一种具有多种功能的性腺激素。

Mullerian inhibiting substance: a gonadal hormone with multiple functions.

作者信息

Lee M M, Donahoe P K

机构信息

Pediatric Surgical Research Laboratory, Massachusetts General Hospital, Boston 02114.

出版信息

Endocr Rev. 1993 Apr;14(2):152-64. doi: 10.1210/edrv-14-2-152.

Abstract

Mullerian inhibiting substance (MIS) is the gonadal hormone that causes regression of the Mullerian ducts, the anlagen of the female internal reproductive structures, during male embryogenesis. MIS is a member of the large transforming growth factor-beta (TGF beta) multigene family of glycoproteins that are involved in the regulation of growth and differentiation. The proteins in this gene family are all produced as dimeric precursors and undergo posttranslational processing for activation, requiring cleavage and dissociation to release bioactive C-terminal fragments. Similarly, the 140 kilodalton (kDa) disulfide-linked homodimer of MIS is proteolytically cleaved to generate its active C-terminal fragments. The sexually dimorphic expression of MIS in Sertoli cells of the testis and granulosa cells of the ovary is critical for normal differentiation of the internal reproductive tract structures. A number of extra-Mullerian functions such as control of germ cell maturation and gonadal morphogenesis, induction of the abdominal phase of testicular descent, suppression of lung maturation, and growth inhibition of transformed cells have also been proposed for this growth-inhibitory hormone and will be discussed. This article will summarize the current understanding of the biology and multiple functions of MIS including its activation, regulation, and mechanism of action and discuss areas of interest in ongoing research.

摘要

苗勒管抑制物质(MIS)是一种性腺激素,在雄性胚胎发育过程中,它会导致苗勒管(女性内生殖结构的原基)退化。MIS是转化生长因子-β(TGF-β)多基因家族中大型糖蛋白家族的成员,该家族参与生长和分化的调节。这个基因家族中的蛋白质均以二聚体前体形式产生,并经过翻译后加工以激活,需要切割和解离以释放具有生物活性的C末端片段。同样,MIS的140千道尔顿(kDa)二硫键连接的同型二聚体被蛋白水解切割以产生其活性C末端片段。MIS在睾丸支持细胞和卵巢颗粒细胞中的性别二态性表达对于内生殖管道结构的正常分化至关重要。对于这种生长抑制激素,还提出了许多苗勒管外功能,如控制生殖细胞成熟和性腺形态发生、诱导睾丸下降的腹腔期、抑制肺成熟以及抑制转化细胞的生长,本文将对此进行讨论。本文将总结目前对MIS生物学和多种功能的理解,包括其激活、调节和作用机制,并讨论正在进行的研究中的感兴趣领域。

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