代谢重编程和器官质量控制:在环境压力因素下,塞尔托利细胞功能障碍的"无声"驱动因素
Meiying Feng1, Shuying Fu1, Kai Wang2
1Key Laboratory of Efficient Utilization of Special Biological and Medical Resources, School of Life Science, Zhaoqing University, Zhaoqing 526061, China.
Reproductive toxicology (Elmsford, N.Y.)
|January 25, 2026
概括
环境中有毒物质在细胞死亡之前重编程塞尔托利细胞 (SC) 代谢和细胞器功能,影响男性生育能力. 针对这些早期,可逆的SC破坏,为生殖毒理学提供了新的治疗和生物标志物策略.
科学领域:
- 男性生殖系统毒理学
- 细胞代谢的细胞代谢.
- 组织质量控制机构
背景情况:
- 塞尔托利细胞 (SCs) 对于精子生成至关重要,提供代谢和结构支持.
- 经典毒理学侧重于严重的损伤 (例如细胞死亡),缺少早期的病原性事件.
- 在明显的损伤之前,环境毒素和代谢压力会在次致命水平上破坏SCs.
研究的目的:
- 在生殖毒理学中合成关于SC代谢和有机体机制的证据.
- 讨论压力因素如何重编程SC功能.
- 提出SC损伤的两相模型,并突出治疗/生物标志物机会.
主要方法:
- 关于SC生理学和毒理学的文献综合.
- 对影响SCs的环境和系统压力因素的审查.
- 开发一个双阶段的SC损伤模型.
主要成果:
- 在糖解,脂质处理,线粒体动态和自中SCs的关键作用详细说明.
- 选择的压力因素 (阿特拉辛,酸盐,,PM2.5,热量,肥胖) 汇聚在这些SC路径上.
- 提出了一个两相模型:早期的代谢/器官功能障碍在细胞死亡之前.
结论:
- 亚致死性SC代谢和器官失调是一种早期的,潜在的可逆性损伤阶段.
- 准SC代谢和质量控制提供了治疗途径.
- 以SC为中心的生物标志物可以提高生殖风险评估的敏感性和深度.
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