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单线态氧反应性的磁性操纵:从试管到活细胞

Magnetic manipulation of the reactivity of singlet oxygen: from test tubes to living cells.

作者信息

Yang Zi-Shu, Gao Song, Zhang Jun-Long

机构信息

Institute of Inorganic Chemistry, College of Chemistry and Molecular Engineering, Peking University, Beijing 100871, China.

Spin-X Institute and Guangdong-Hong Kong-Macao Joint Laboratory of Optoelectronic and Magnetic Functional Materials, South China University of Technology, Guangzhou 510641, China.

出版信息

Natl Sci Rev. 2024 Feb 27;11(9):nwae069. doi: 10.1093/nsr/nwae069. eCollection 2024 Sep.

Abstract

Although magnetism undoubtedly influences life on Earth, the science behind biological magnetic sensing is largely a mystery, and it has proved challenging, especially in the life sciences, to harness the interactions of magnetic fields (MFs) with matter to achieve specific ends. Using the well-established radical pair (RP) mechanism, we here demonstrate a bottom-up strategy for the exploitation of MF effects in living cells by translating knowledge from studies of RP reactions performed . We found an unprecedented MF dependence of the reactivity of singlet oxygen (O) towards electron-rich substrates () such as anthracene, lipids and iodide, in which [ O ] RPs are formed as a basis for MFs influencing molecular redox events in biological systems. The close similarity of the observed MF effects on the biologically relevant process of lipid peroxidation in solution, in membrane mimics and in living cells, shows that MFs can reliably be used to manipulate O-induced cytotoxicity and cell-apoptosis-related protein expression. These findings led to a 'proof-of-concept' study on MF-assisted photodynamic therapy , highlighting the potential of MFs as a non-invasive tool for controlling cellular events.

摘要

尽管磁无疑会影响地球上的生命,但生物磁感背后的科学在很大程度上仍是个谜,而且事实证明,利用磁场(MFs)与物质的相互作用来实现特定目标具有挑战性,尤其是在生命科学领域。利用成熟的自由基对(RP)机制,我们在此展示了一种自下而上的策略,通过将对RP反应的研究知识进行转化,来利用MF效应于活细胞中。我们发现单线态氧(O)对富电子底物(如蒽、脂质和碘化物)的反应性存在前所未有的MF依赖性,其中[O]RPs的形成是MF影响生物系统中分子氧化还原事件的基础。在溶液、膜模拟物和活细胞中观察到的MF对脂质过氧化这一生物学相关过程的影响极为相似,这表明MF可可靠地用于操控O诱导的细胞毒性和细胞凋亡相关蛋白的表达。这些发现促成了一项关于MF辅助光动力疗法的“概念验证”研究,突显了MF作为控制细胞事件的非侵入性工具的潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4386/11321247/0eb21b7f5ded/nwae069fig1.jpg

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