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基于静电学的蟾蜍抗菌肽II变体的计算设计及DNA亲和力增强的实验分析

Electrostatics-Based Computational Design and Experimental Analysis of Buforin II Antimicrobial Peptide Variants with Increased DNA Affinities.

作者信息

Li Qiao, Kim Gabriela, Jing Lisha, Ji Xiaoxuan, Elmore Donald E, Radhakrishnan Mala L

机构信息

Biochemistry Program, Wellesley College, Wellesley, Massachusetts 02481, United States.

Chemistry Department, Wellesley College, Wellesley, Massachusetts 02481, United States.

出版信息

ACS Omega. 2023 Sep 1;8(37):33701-33711. doi: 10.1021/acsomega.3c04023. eCollection 2023 Sep 19.

Abstract

Antimicrobial peptides (AMPs) are promising alternatives to traditional antibiotics in the treatment of bacterial infections in part due to their targeting of generic bacterial structures that make it more difficult to develop drug resistance. In this study, we introduce and implement a design workflow to develop more potent AMPs by improving their electrostatic interactions with DNA, which is a putative intracellular target. Using the existing membrane-translocating AMP buforin II (BF2) as a starting point, we use a computational workflow that integrates electrostatic charge optimization, continuum electrostatics, and molecular dynamics simulations to suggest peptide positions at which a neutral BF2 residue could be substituted with arginine to increase DNA-binding affinity either significantly or minimally, with the latter choice done to determine whether AMP binding affinity depends on charge distribution and not just overall monopole. Our analyses predicted that T1R and L8R BF2 variants would yield substantial and minimal increases in DNA-binding affinity, respectively. These predictions were validated with experimental peptide-DNA binding assays with additional computational analyses providing structural insights. Additionally, experimental measurements of antimicrobial potency showed that a design to increase DNA binding can also yield greater potency. As a whole, this study takes initial steps to support the idea that (i) a design strategy aimed to increase AMP binding affinity to DNA by focusing only on electrostatic interactions can improve AMP potency and (ii) the effect on DNA binding of increasing the overall peptide monopole via arginine substitution depends on the position of the substitution. More broadly, this design strategy is a novel way to increase the potency of other membrane-translocating AMPs that target nucleic acids.

摘要

抗菌肽(AMPs)在治疗细菌感染方面是传统抗生素的有前景的替代品,部分原因是它们靶向一般的细菌结构,这使得细菌更难产生耐药性。在本研究中,我们引入并实施了一种设计流程,通过改善抗菌肽与DNA(一种假定的细胞内靶点)的静电相互作用来开发更有效的抗菌肽。以现有的膜转运抗菌肽蛙皮素II(BF2)为起点,我们使用一种计算流程,该流程整合了静电荷优化、连续介质静电学和分子动力学模拟,以确定可以用精氨酸取代中性BF2残基的肽段位置,从而显著或最小程度地增加DNA结合亲和力,后者的选择是为了确定抗菌肽的结合亲和力是否取决于电荷分布而不仅仅是整体单极。我们的分析预测,T1R和L8R BF2变体将分别使DNA结合亲和力大幅增加和最小程度增加。这些预测通过实验性的肽 - DNA结合测定得到验证,另外的计算分析提供了结构见解。此外,抗菌效力的实验测量表明,增加DNA结合的设计也可以产生更大的效力。总体而言,本研究初步支持了以下观点:(i)一种仅通过关注静电相互作用来增加抗菌肽与DNA结合亲和力的设计策略可以提高抗菌肽的效力;(ii)通过精氨酸取代增加肽的整体单极对DNA结合的影响取决于取代位置。更广泛地说,这种设计策略是提高其他靶向核酸的膜转运抗菌肽效力的一种新方法。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5765/10515408/c78109e975dd/ao3c04023_0001.jpg

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