化学
衰老
线粒体
颗粒细胞
细胞生物学
细胞
DNA损伤
氧化应激
解码方法
氧化损伤
生物物理学
细胞培养
线粒体DNA
生物化学
细胞凋亡
信号转导
细胞信号
卵巢
卵泡
作者
Hongjin Xue,Zhanfeng Li,Zi Wang,Zutao Chen,Peng Zhao,Yongdong Jin,Guohua Qi
标识
DOI:10.1021/acs.analchem.5c08173
摘要
Ovarian aging is a pivotal determinant of female reproductive decline, of which ovarian granulosa cell senescence is the core executive link and amplifier, while mitochondrial dysfunction is considered an initiator of granulosa cell senescence. Consequently, nondestructive and in situ dynamic measurements of dynamic molecular events within mitochondria during granulosa cell senescence are crucial for deciphering this complex biological process. Herein, we developed mitochondria-targeting gold nanobipyramids (Au NBs) as a SERS substrate for monitoring the associated molecular stress responses within mitochondria during the oxidative aging process of an ovarian granulosa cell at the single-cell level. The label-free SERS spectra revealed key aging-induced biomolecular events and signatures within mitochondria, including DNA damage, protein conformational changes, and lipid peroxidation. Notably, accurate discrimination between senescence cells and normal cells can be achieved using the machine learning-based SERS spectra of mitochondria, achieving 100% identification accuracy. This study established a machine learning-assisted label-free SERS sensing platform for decoding mitochondrial molecular dynamics, offering profound insights into the mechanisms of ovarian aging at the cellular level and important evidence for clinical evaluation of ovarian reserve in the future.
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