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U12 内含子剪接缺陷型 Zrsr1 突变小鼠的精子发生、肌肉和红细胞功能受损。

Impaired Spermatogenesis, Muscle, and Erythrocyte Function in U12 Intron Splicing-Defective Zrsr1 Mutant Mice.

机构信息

Centre for Genomic Regulation (CRG), The Barcelona Institute of Science and Technology, Dr. Aiguader 88, 08003 Barcelona, Spain; Universitat Pompeu Fabra, Dr. Aiguader 88, 08003 Barcelona, Spain; Department of Quantitative Biology and Medicine, Research Center for Advanced Science and Technology (RCAST), University of Tokyo, Tokyo 153-8904, Japan.

Dpto. de Reproducción Animal, INIA, Avda Puerta de Hierro nº 12. Local 10, 28040 Madrid, Spain.

出版信息

Cell Rep. 2018 Apr 3;23(1):143-155. doi: 10.1016/j.celrep.2018.03.028.

Abstract

The U2AF35-like ZRSR1 has been implicated in the recognition of 3' splice site during spliceosome assembly, but ZRSR1 knockout mice do not show abnormal phenotypes. To analyze ZRSR1 function and its precise role in RNA splicing, we generated ZRSR1 mutant mice containing truncating mutations within its RNA-recognition motif. Homozygous mutant mice exhibited severe defects in erythrocytes, muscle stretch, and spermatogenesis, along with germ cell sloughing and apoptosis, ultimately leading to azoospermia and male sterility. Testis RNA sequencing (RNA-seq) analyses revealed increased intron retention of both U2- and U12-type introns, including U12-type intron events in genes with key functions in spermatogenesis and spermatid development. Affected U2 introns were commonly found flanking U12 introns, suggesting functional cross-talk between the two spliceosomes. The splicing and tissue defects observed in mutant mice attributed to ZRSR1 loss of function suggest a physiological role for this factor in U12 intron splicing.

摘要

U2AF35 样 ZRSR1 已被牵涉到剪接体组装过程中 3' 剪接位点的识别,但 ZRSR1 敲除小鼠并未表现出异常表型。为了分析 ZRSR1 的功能及其在 RNA 剪接中的精确作用,我们生成了含有其 RNA 识别基序内截断突变的 ZRSR1 突变小鼠。纯合突变小鼠表现出严重的红细胞、肌肉拉伸和精子发生缺陷,以及生殖细胞脱落和凋亡,最终导致无精症和雄性不育。睾丸 RNA 测序 (RNA-seq) 分析显示,U2 和 U12 型内含子的内含子保留均增加,包括在精子发生和精子细胞发育中具有关键功能的基因中的 U12 型内含子事件。受影响的 U2 内含子通常在 U12 内含子的侧翼发现,这表明两个剪接体之间存在功能串扰。突变小鼠中观察到的剪接和组织缺陷归因于 ZRSR1 功能丧失,这表明该因子在 U12 内含子剪接中具有生理作用。

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