水溶性富勒烯衍生物与细胞色素c和细胞色素c氧化酶相互作用的静电效应

IF 1.8 4区 生物学 Q3 BIOPHYSICS Journal of Biological Physics Pub Date : 2023-03-18 DOI:10.1007/s10867-023-09631-5
Darya A. Poletaeva, Raisa A. Kotelnikova, Irina I. Faingold, Olga A. Kraevaya, Pavel A. Troshin, Alexander I. Kotelnikov
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引用次数: 0

摘要

水溶性富勒烯衍生物是各种生物应用的良好候选者,如抗癌或抗菌治疗、细胞保护、酶抑制等。它们在组织培养和体内的毒性是发展和限制这些应用的关键特征。研究了6种水溶性阳离子和阴离子多取代富勒烯衍生物对大鼠脑线粒体细胞色素c氧化酶活性的影响及与细胞色素c结合的可能性。我们发现这些富勒烯衍生物与细胞色素c氧化酶和带电分子(如伊红Y)结合的能力强烈依赖于它们的静电电荷。结果表明,与阴离子衍生物不同,阳离子富勒烯衍生物完全抑制具有整体负静电电位的细胞色素c氧化酶。从而证实了静电相互作用在富勒烯衍生物与酶活性位点相互作用中的重要作用。研究结果探讨了阳离子富勒烯衍生物如何在线粒体功能障碍、氧化应激和细胞毒性中发挥作用。
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Electrostatic effects on water-soluble fullerene derivatives interaction with cytochrome c and cytochrome c oxidase

Abstract

Water-soluble fullerene derivatives are good candidates for various biological applications such as anticancer or antimicrobial therapy, cytoprotection, enzyme inhibition, and many others. Their toxicity, both in tissue culture and in vivo, is a critical characteristic for the development and restriction of these applications. The effects of six water-soluble cationic and anionic polysubstituted fullerene derivatives on cytochrome c oxidase activity in rat brain mitochondria and the possibility of cytochrome c binding were studied. We found that the ability of these fullerene derivatives to bind with cytochrome c oxidase and charged molecules like eosin Y strongly depends on their electrostatic charge. As was shown, the cationic fullerene derivative inhibits cytochrome c oxidase that has the overall negative electrostatic potential completely, unlike anionic derivatives. Thus, it confirms the essential role of electrostatic interactions in the interaction of fullerene derivatives with the active site of enzymes. The results explore how cationic fullerene derivatives play a role in mitochondrial dysfunction, oxidative stress, and cytotoxicity.

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来源期刊
Journal of Biological Physics
Journal of Biological Physics 生物-生物物理
CiteScore
3.00
自引率
5.60%
发文量
20
审稿时长
>12 weeks
期刊介绍: Many physicists are turning their attention to domains that were not traditionally part of physics and are applying the sophisticated tools of theoretical, computational and experimental physics to investigate biological processes, systems and materials. The Journal of Biological Physics provides a medium where this growing community of scientists can publish its results and discuss its aims and methods. It welcomes papers which use the tools of physics in an innovative way to study biological problems, as well as research aimed at providing a better understanding of the physical principles underlying biological processes.
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