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A类β-内酰胺酶SDN环的变异:BlaC改变对MBIs抗生素抗性的稳定性和催化活性的分子机制研究

Variations in the SDN Loop of Class A Beta-Lactamases: A Study of the Molecular Mechanism of BlaC () to Alter the Stability and Catalytic Activity Towards Antibiotic Resistance of MBIs.

作者信息

Bhattacharya Sourya, Junghare Vivek, Pandey Niteesh Kumar, Baidya Subhecchha, Agarwal Harsha, Das Neeladrisingha, Banerjee Ayan, Ghosh Debashish, Roy Partha, Patra Hirak K, Hazra Saugata

机构信息

Department of Biosciences and Bioengineering, Indian Institute of Technology Roorkee, Roorkee, India.

Biochemistry and BIotechnology Area, Material Resource Efficiency Division, CSIR-Indian Institute of Petroleum, Dehradun, India.

出版信息

Front Microbiol. 2021 Oct 8;12:710291. doi: 10.3389/fmicb.2021.710291. eCollection 2021.

Abstract

The emergence of multidrug-resistant (MDR) and extensively drug-resistant (XDR) tuberculosis calls for an immediate search for novel treatment strategies. Recently, BlaC, the principal beta-lactamase of , was recognized as a potential therapeutic target. BlaC belongs to Ambler class A, which is generally susceptible to the beta-lactamase inhibitors currently used in clinics: tazobactam, sulbactam, and clavulanate. Alterations at Ser130 in conserved SDN loop confer resistance to mechanism-based inhibitors (MBIs) commonly observed in various clinical isolates. The absence of clinical evidence of S130G conversion in draws our attention to build laboratory mutants of S130G and S130A of BlaC. The study involving steady state, inhibition kinetics, and fluorescence microscopy shows the emergence of resistance against MBIs to the mutants expressing S130G and S130A. To understand the molecular reasoning behind the unavailability of such mutation in real life, we have used circular dichroism (CD) spectroscopy, differential scanning calorimetry (DSC), molecular dynamics (MD) simulation, and stability-based enzyme activity to compare the stability and dynamic behaviors of native and S130G/A mutant form of BlaC. A significant decrease in melting temperature (BlaC T 60°C, S130A T 50°C, and S130G T 45°C), kinetic instability at higher temperature, and comparative dynamic instability correlate the fact that resistance to beta-lactam/beta-lactamase inhibitor combinations will likely not arise from the structural alteration of BlaC, therefore establishing confidence that this therapeutic modality can be potentially applied as a part of a successful treatment regimen against .

摘要

多重耐药(MDR)和广泛耐药(XDR)结核病的出现促使人们立即寻找新的治疗策略。最近,[细菌名称]的主要β-内酰胺酶BlaC被认为是一个潜在的治疗靶点。BlaC属于安布勒A类,通常对目前临床上使用的β-内酰胺酶抑制剂:他唑巴坦、舒巴坦和克拉维酸敏感。保守的SDN环中Ser130位点的改变赋予了对各种临床分离株中常见的基于机制的抑制剂(MBIs)的抗性。[细菌名称]中不存在S130G转化的临床证据,这促使我们构建BlaC的S130G和S130A实验室突变体。涉及稳态、抑制动力学和荧光显微镜的研究表明,表达S130G和S130A的突变体对MBIs产生了抗性。为了理解在现实生活中这种突变不存在背后的分子原因,我们使用圆二色性(CD)光谱、差示扫描量热法(DSC)、分子动力学(MD)模拟和基于稳定性的酶活性来比较天然BlaC和S130G/A突变体形式的稳定性和动态行为。熔解温度显著降低(BlaC Tm 60°C,S130A Tm 50°C,S130G Tm 45°C),在较高温度下的动力学不稳定性以及比较动态不稳定性表明,对β-内酰胺/β-内酰胺酶抑制剂组合的抗性可能不会源于BlaC的结构改变,因此建立了信心,即这种治疗方式有可能作为针对[细菌名称]成功治疗方案的一部分应用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/080d/8531524/9391bec71331/fmicb-12-710291-g001.jpg

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