Interaction of chloramphenicol with titin I27 probed using single-molecule force spectroscopy

IF 1.8 4区 生物学 Q3 BIOPHYSICS
Jyoti Yadav, Yashwant Kumar, Gayathri S. Singaraju, Shivprasad Patil
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引用次数: 0

Abstract

Titin is a giant elastic protein which is responsible for passive muscle stiffness when muscle sarcomeres are stretched. Chloramphenicol, besides being a broad-spectrum antibiotic, also acts as a muscle relaxant. Therefore, it is important to study the interaction between titin I27 and chloramphenicol. We investigated the interaction of chloramphenicol with octamer of titin I27 using single-molecule force spectroscopy and fluorescence spectroscopy. The fluorescence data indicated that binding of chloramphenicol with I27 results in fluorescence quenching. Furthermore, it is observed that chloramphenicol binds to I27 at a particular concentration (\(\sim \) 40 μM). Single-molecule force spectroscopy shows that, in the presence of 40 μM chloramphenicol concentration, the I27 monomers become mechanically stable, resulting in an increment of the unfolding force. The stability was further confirmed by chemical denaturation experiments on monomers of I27, which corroborate the evidence for enhanced mechanical stability at 40 μM drug concentration. The free energy of stabilization for I27 (wild type) was found to be 1.95 ± 0.93 kcal/mole and I27 with 40 μM drug was 3.25 ± 0.63 kcal/mole. The results show a direct effect of the broad-spectrum antibiotic chloramphenicol on the passive elasticity of muscle protein titin. The I27 is stabilized both mechanically and chemically by chloramphenicol.

用单分子力谱法研究氯霉素与titin I27的相互作用
肌凝蛋白是一种巨大的弹性蛋白,当肌肉肌节被拉伸时,它负责被动肌肉僵硬。氯霉素除了是一种广谱抗生素外,还具有肌肉松弛剂的作用。因此,研究titin I27与氯霉素的相互作用具有重要意义。利用单分子力光谱和荧光光谱研究了氯霉素与titin I27八聚体的相互作用。荧光数据表明氯霉素与I27结合导致荧光猝灭。此外,我们观察到氯霉素在特定浓度(\(\sim \) 40 μM)下与I27结合。单分子力谱分析结果表明,在40 μM氯霉素浓度下,I27单体力学稳定,展开力增大。通过I27单体的化学变性实验进一步证实了其稳定性,证实了在40 μM药物浓度下其机械稳定性得到增强。野生型I27的稳定自由能为1.95±0.93 kcal/mol, 40 μM药物I27的稳定自由能为3.25±0.63 kcal/mol。结果表明,广谱抗生素氯霉素对肌蛋白titin的被动弹性有直接影响。氯霉素在机械上和化学上都稳定了I27。
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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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