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ENU 诱导的 Dnah1 突变等位基因 ferf1 导致小鼠精子行为异常和受精失败。

ENU-induced mutant allele of Dnah1, ferf1, causes abnormal sperm behavior and fertilization failure in mice.

机构信息

The Jackson Laboratory, Bar Harbor, Maine.

Agriculture and Agri-Food Canada, Saskatoon Research Development Centre, Saskatchewan, Canada.

出版信息

Mol Reprod Dev. 2019 Apr;86(4):416-425. doi: 10.1002/mrd.23120. Epub 2019 Feb 8.

Abstract

Given attention to both contraception and treatment of infertility, there is a need to identify genes and sequence variants required for mammalian fertility. Recent unbiased mutagenesis strategies have expanded horizons of genetic control of reproduction. Here we show that male mice homozygous for the ethyl-nitroso-urea-induced ferf1 (fertilization failure 1) mutation are infertile, producing apparently normal sperm that does not fertilize oocytes in standard fertilization in vitro fertilization assays. The ferf1 mutation is a single-base change in the Dnah1 gene, encoding an axoneme-associated dynein heavy chain, and previously associated with male infertility in both mice and humans. This missense mutation causes a single-amino-acid change in the DNAH1 protein in ferf1 mutant mice that leads to abnormal sperm clumping, aberrant sperm motility, and the inability of sperm to penetrate the oocyte's zona pellucida; however, the ferf1 mutant sperm is competent to fertilize zona-free oocytes. Taken together, the various mutations affecting the DNAH1 protein in both mouse and human produce a diversity of phenotypes with both subtle and considerable differences. Thus, future identification of the interacting partners of DNAH1 might lead to understanding its unique function among the sperm dyneins.

摘要

关注避孕和不孕治疗,需要确定哺乳动物生育所需的基因和序列变异。最近的无偏诱变策略扩大了生殖遗传控制的视野。在这里,我们发现雄性小鼠纯合子的乙基亚硝基脲诱导的 ferf1(受精失败 1)突变是不育的,产生的精子看似正常,但在标准体外受精受精试验中不能使卵母细胞受精。ferf1 突变是 Dnah1 基因的单个碱基变化,该基因编码轴丝相关的动力蛋白重链,先前与小鼠和人类的男性不育有关。这种错义突变导致 ferf1 突变小鼠中的 DNAH1 蛋白发生单个氨基酸变化,导致精子异常聚集、精子运动异常,以及精子无法穿透卵母细胞的透明带;然而,ferf1 突变精子能够使无透明带的卵母细胞受精。总之,影响 DNAH1 蛋白的各种突变在小鼠和人类中产生了具有细微和显著差异的多种表型。因此,未来对 DNAH1 相互作用伙伴的鉴定可能有助于理解其在精子动力蛋白中的独特功能。

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