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Biallelic mutations in MOS cause female infertility characterized by human early embryonic arrest and fragmentation
Author(s) -
Zhang YinLi,
Zheng Wei,
Ren Peipei,
Hu Huiling,
Tong Xiaomei,
Zhang ShuoPing,
Li Xiang,
Wang Haichao,
Jiang JunChao,
Jin Jiamin,
Yang Weijie,
Cao Lanrui,
He Yuanlin,
Ma Yerong,
Zhang Yingyi,
Gu Yifan,
Hu Liang,
Luo Keli,
Gong Fei,
Lu GuangXiu,
Lin Ge,
Fan HengYu,
Zhang Songying
Publication year - 2021
Publication title -
embo molecular medicine
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 4.923
H-Index - 107
eISSN - 1757-4684
pISSN - 1757-4676
DOI - 10.15252/emmm.202114887
Subject(s) - china , obstetrics and gynaecology , reproductive medicine , infertility , medicine , biology , gynecology , genetics , pregnancy , political science , law
Early embryonic arrest and fragmentation (EEAF) is a common phenomenon leading to female infertility, but the genetic determinants remain largely unknown. The Moloney sarcoma oncogene ( MOS ) encodes a serine/threonine kinase that activates the ERK signaling cascade during oocyte maturation in vertebrates. Here, we identified four rare variants of MOS in three infertile female individuals with EEAF that followed a recessive inheritance pattern. These MOS variants encoded proteins that resulted in decreased phosphorylated ERK1/2 level in cells and oocytes, and displayed attenuated rescuing effects on cortical F‐actin assembly. Using oocyte‐specific Erk1/2 knockout mice, we verified that MOS‐ERK signal pathway inactivation in oocytes caused EEAF as human. The RNA sequencing data revealed that maternal mRNA clearance was disrupted in human mature oocytes either with MOS homozygous variant or with U0126 treatment, especially genes relative to mitochondrial function. Mitochondrial dysfunction was observed in oocytes with ERK1/2 deficiency or inactivation. In conclusion, this study not only uncovers biallelic MOS variants causes EEAF but also demonstrates that MOS‐ERK signaling pathway drives human oocyte cytoplasmic maturation to prevent EEAF.

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