Oocyte vitrification disrupts zygotic genome activation in embryos by impairing maternal spliceosome translation and Crxos splicing
Jianpeng Qin, Ao Ning, Jian Han, Xiangyi Chen, Beijia Cao, Yujun Yao, Xiaoqing He, Bo Pan, Yaozong Wei, Kunlin Du, Shuqi Zou, Jiangfeng Ye, Guozhi Yu, Qiuxia Liang, Jie Qiao, Jie Yan, Guangbin Zhou
Journal:PLoS Genetics
IF:3.9
DOI:10.1371/journal.pgen.1012121
PMID:41984974
Published:2026-04-15
research field:生殖生物学分子遗传学发育生物学冷冻保存辅助生殖技术(ART)
Abstract
Oocyte vitrification is indispensable in assisted reproduction, yet its link to compromised embryonic development remains mechanistically unresolved. Here, this study demonstrate through integrated transcriptome and translatome analysis that vitrification disrupts maternal mRNA translation—sparing global transcriptional output—in mouse oocytes. This translational perturbation prominently suppresses genes encoding spliceosome components, including Phf5a , leading to persistent and widespread alternative splicing defects in subsequent 2-cell embryos. Importantly, aberrant splicing specifically depletes the functional full-length transcript of the essential zygotic genome activation (ZGA) regulator Crxos ( Egam1 ) while elevating a truncated, non-functional variant ( Egam1 ΔEXON3 ). Functional analyses confirm that loss of Crxos in 2‑cell embryos not only compromises developmental progression but also reduces global transcriptional activity, likely via impaired RNA Pol II recruitment and elongation at ZGA genes. Together, this work delineates a linear pathological cascade triggered by oocyte vitrification, comprising maternal translational suppression, spliceosome impairment, Crxos aberrant splicing, impaired ZGA, and developmental compromise, thereby offering a mechanistic basis for refining cryopreservation protocols in reproductive medicine. Through integrated transcriptome and translatome analysis, we found that oocyte vitrification specifically disrupts maternal mRNA translation, impairing spliceosome function and causing persistent splicing defects. This induces aberrant splicing of Crxos , reducing its functional isoform and compromising zygotic genome activation (ZGA). Our findings provide a mechanistic basis for optimizing cryopreservation protocols in reproductive medicine.
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