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Molecular causes of hypogonadotropic hypogonadism.

机译:性腺功能低下的性腺机能减退的分子原因。

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PURPOSE OF REVIEW: What controls puberty remains largely unknown and current gene mutations account for only about one-third of the apparently genetic cases of idiopathic hypogonadotropic hypogonadism. Lately important developments have occurred in this field. RECENT FINDINGS: Substantial variation in clinical expression, from complete anosmia and hypogonadotropic hypogonadism to delayed puberty and normosmia, of the same Kallmann syndrome gene defects including in newer ones (FGF8 and CHD7) continues to be repeatedly observed. Digenic or oligogenic inheritance becomes another feature of Kallmann syndrome. Recent reports of mutations in TAC3 or TACR3 [encoding neurokinin B (NKB) and its receptor, NK3R, respectively] provided compelling evidence for the involvement of NKB signaling in puberty. This energized the field to understand the exact mechanism through which NKB signaling exerts its effects. With the important findings from these recent studies in association with the substantial data from kisspeptin studies in the last 6 years a sketch of GnRH pulse generator has emerged in which NKB signaling appears to play a key role. SUMMARY: Autozygosity mapping may continue helping identify the other genes including those upstream to the GnRH pulse generator in this complex and elusive developmental process.
机译:审查目的:控制青春期的因素仍然未知,目前的基因突变仅占特发性性腺功能减退性腺功能减退的明显遗传病例的三分之一。最近在该领域出现了重要的发展。最近的发现:相同的Kallmann综合征基因缺陷(包括较新的FGF8和CHD7),从完全的失眠和性腺功能低下的性腺功能减退到青春期延迟和正常睡眠的临床表达上存在着很大的差异。双基因或寡聚遗传成为卡尔曼综合征的另一个特征。 TAC3或TACR3突变的最新报道[分别编码神经激肽B(NKB)及其受体NK3R],为NKB信号参与青春期提供了令人信服的证据。这激发了人们去了解NKB信号发挥作用的确切机制。这些最新研究的重要发现与近6年来基吻肽研究的大量数据相结合,得出了GnRH脉冲发生器的草图,其中NKB信号似乎起着关键作用。总结:在这个复杂而难以捉摸的发育过程中,自合子作图可能会继续帮助鉴定其他基因,包括GnRH脉冲发生器上游的那些基因。

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