遗传 ›› 2026, Vol. 48 ›› Issue (8): 764-780.doi: 10.16288/j.yczz.25-343
张渭莹1(
), 宁欣2, 罗博煜3, 魏凯1, 滕越3(
), 商微1(
)
收稿日期:2025-12-25
修回日期:2026-03-02
出版日期:2026-08-20
发布日期:2026-04-29
通讯作者:
商微,硕士,主任医师,研究方向:生殖医学、线粒体遗传病。E-mail: shang.wei@163.com;作者简介:张渭莹,博士,助理研究员,研究方向:发育生物学。E-mail: zhangwyjessie@163.com
基金资助:
Weiying Zhang1(
), Xin Ning2, Boyu Luo3, Kai Wei1, Yue Teng3(
), Wei Shang1(
)
Received:2025-12-25
Revised:2026-03-02
Published:2026-08-20
Online:2026-04-29
Supported by:摘要:
机械力是胚胎发育与生殖过程中持续存在且高度动态的物理输入,可通过机械力敏感离子通道(mechanosensitive ion channels, MSC)被细胞感知,并转化为以Ca2+为核心的胞内信号,从而参与调控细胞迁移、谱系分化与形态发生等关键发育事件。与此同时,线粒体作为能量代谢与信号整合枢纽,其代谢模式、氧化还原稳态及动力学重塑对胚胎早期发育潜能具有重要影响。近年来的研究提示,MSC介导的Ca2+通量变化不仅激活经典信号通路,还可进一步耦联线粒体功能,形成连接力学输入与代谢响应的重要调控轴。基于上述研究背景,本文围绕“MSC-线粒体功能-胚胎发育命运”这一主线,系统梳理MSC的分子特征与激活机制,概述其在胚胎发育及生殖相关过程中的功能;进一步归纳MSC通过Ca2+信号调控线粒体代谢重编程、ROS稳态及融合/分裂动态的潜在机制;并结合囊胚腔形成与谱系建立、器官发生等典型发育事件,讨论该耦联轴在关键发育过程中的可能作用。同时,对当前研究面临的关键局限与技术瓶颈进行分析,并提出该领域未来的研究方向与潜在应用前景。在发育生物学背景下整合机械转导与线粒体代谢调控机制,有助于深化对“力学-代谢”信号协同塑造胚胎命运与形态建成过程的理解,并为相关发育异常与生殖障碍的发病机制解析及干预策略探索提供理论依据。
张渭莹, 宁欣, 罗博煜, 魏凯, 滕越, 商微. 机械力敏感离子通道在胚胎发育中调控线粒体功能的研究进展[J]. 遗传, 2026, 48(8): 764-780.
Weiying Zhang, Xin Ning, Boyu Luo, Kai Wei, Yue Teng, Wei Shang. Mechanosensitive ion channels in embryonic development: advances in the regulation of mitochondrial function[J]. Hereditas(Beijing), 2026, 48(8): 764-780.
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