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Maternal SENP7 programs meiosis architecture and embryo survival in mouse.

Biochimica et biophysica acta (2017-03-21)
Chun-Jie Huang, Di Wu, Xiao-Fei Jiao, Faheem Ahmed Khan, Cheng-Liang Xiong, Xiao-Ming Liu, Jing Yang, Tai-Lang Yin, Li-Jun Huo
RƉSUMƉ

Understanding the mechanisms underlying abnormal egg production and pregnancy loss is significant for human fertility. SENP7, a SUMO poly-chain editing enzyme, has been regarded as a mitotic regulator of heterochromatin integrity and DNA repair. Herein, we report the roles of SENP7 in mammalian reproductive scenario. Mouse oocytes deficient in SENP7 experienced meiotic arrest at prophase I and metaphase I stages, causing a substantial decrease of mature eggs. Hyperaceylation and hypomethylation of histone H3 and up-regulation of Cdc14B/C accompanied by down-regulation of CyclinB1 and CyclinB2 were further recognized as contributors to defective M-phase entry and spindle assembly in oocytes. The spindle assembly checkpoint activated by defective spindle morphogenesis, which was also caused by mislocalization and ubiquitylation-mediated proteasomal degradation of Ī³-tubulin, blocked oocytes at meiosis I stage. SENP7-depleted embryos exhibited severely defective maternal-zygotic transition and progressive degeneration, resulting in nearly no blastocyst production. The disrupted epigenetic landscape on histone H3 restricted Rad51C loading onto DNA lesions due to elevated HP1Ī± euchromatic deposition, and reduced DNA 5hmC challenged the permissive status for zygotic DNA repair, which induce embryo death. Our study pinpoints SENP7 as a novel determinant in epigenetic programming and major pathways that govern oocyte and embryo development programs in mammals.

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Nocodazole, ≥99% (TLC), powder
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Z-Leu-Leu-Leu-al, ≥90% (HPLC)
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MISSIONĀ® esiRNA, targeting human SENP3, SENP3-EIF4A1
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MISSIONĀ® esiRNA, targeting human SENP7