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酯酶特异性荧光探针:QM/MM 计算与细胞状态区分的机理研究。

Esterase Specific Fluorescent Probe: Mechanistic Understanding Using QM/MM Calculation and Cell States Discrimination.

机构信息

Molecular Sensors and Therapeutics Research Laboratory Department of Chemistry, School of Natural Sciences, Shiv Nadar Institute of Eminence (SNIoE) Deemed to be University Delhi NCR, Greater Noida, Uttar Pradesh, 201314, India.

Molecular Simulation Research Laboratory, Department of Chemistry, School of Natural Sciences Shiv Nadar Institute of Eminence (SNIoE) Deemed to be University Delhi NCR, Greater Noida, Uttar Pradesh, 201314, India.

出版信息

Chemistry. 2023 Jun 7;29(32):e202300244. doi: 10.1002/chem.202300244. Epub 2023 Apr 27.

Abstract

Esterases enzymes regulate the body's homeostasis by catalyzing the hydrolysis of various esters. These are also involved in protein metabolism, detoxification, and signal transmission. Most importantly, esterase plays a significant role in cell viability and cytotoxicity assays. Hence, developing an efficient chemical probe is essential for monitoring the esterase activity. Several fluorescent probes for esterase have also been reported targeting cytosol and lysosomes. However, the ability to create efficient probes is constrained due to a lack of understanding of the esterase's active site for hydrolyzing the substrate. In addition, the fluorescent turn-on may limit efficient monitoring. Herein, we have developed a unique fluorescent probe, PM-OAc, to monitor mitochondrial esterase enzyme activity ratiometrically. This probe exhibited a bathochromic wavelength shift with esterase enzyme in alkaline pH (pH∼8.0) due to an intramolecular charge transfer (ICT) process. The phenomenon is well supported by TD-DFT calculation. Moreover, the substrate (PM-OAc) binding at the active site of esterase and its catalytic mechanism to hydrolyze the ester bond are elucidated by molecular dynamics (MD) simulation and QM/MM (Quantum mechanics/molecular mechanics) calculations, respectively. Fluorescent image-based analysis of the cellular environment reveals that our probe can distinguish between live and dead cells based on esterase enzyme activity.

摘要

酯酶通过催化各种酯的水解来调节体内的动态平衡。它们还参与蛋白质代谢、解毒和信号转导。最重要的是,酯酶在细胞活力和细胞毒性测定中起着重要作用。因此,开发高效的化学探针对于监测酯酶活性至关重要。已经有几种针对细胞质和溶酶体的酯酶荧光探针被报道。然而,由于缺乏对酯酶水解底物的活性位点的了解,因此能够创建高效的探针受到限制。此外,荧光的开启可能会限制有效的监测。在此,我们开发了一种独特的荧光探针 PM-OAc,用于对线粒体酯酶活性进行比率监测。该探针在碱性 pH(pH∼8.0)下由于分子内电荷转移(ICT)过程而表现出与酯酶的长波长位移。这一现象得到了 TD-DFT 计算的很好支持。此外,通过分子动力学(MD)模拟和 QM/MM(量子力学/分子力学)计算分别阐明了酯酶的活性部位的底物(PM-OAc)结合及其催化酯键水解的机制。基于荧光图像的细胞环境分析表明,我们的探针可以根据酯酶活性区分活细胞和死细胞。

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