Cao Huiming, Li Zhunjie, Chen Bolei, Wang Jing, Zhou Zhen, Li Zhi, Qian Yun, Liang Yong
Hubei Key Laboratory of Environmental and Health Effects of Persistent Toxic Substances, School of Environment and Health, Jianghan University, Wuhan 430056, P. R. China.
Department of Orthopedics, General Hospital of Central Theater Command of Chinese People's Liberation Army, Wuhan 430070, P. R. China.
Environ Health (Wash). 2023 Sep 7;1(4):291-299. doi: 10.1021/envhealth.3c00092. eCollection 2023 Oct 20.
Remarkable antibacterial activity of BPA analogues especially for tetrabromobisphenol A against 25923 (Sa25923) and methicillin-resistant (MRSA) has been reported in our previous studies. However, the toxic effects of the compounds as environmental contaminants on the endocrine system limited their applications in the field of medicine and health. Given the abuse of antibiotics has led to the emergence of multiple super-resistant bacteria, we considered that structural modifications based on the BPA structure will be available for molecular designing of potential antimicrobial agents without drug resistance. In this study, to further improve the antibacterial activity and reduce the biological toxicity, we performed the computational models to evaluate the binding affinities of BPA analogues to the potential target DltA protein in the biosynthesis of cell wall. A series of synthesized achiral analogues of α,α,α'-tris(4-hydroxyphenyl)-1-ethyl-4-isopropylbenzene (α,α,α'-TEIB) exhibited low minimum inhibitory concentration against Sa25923 and MRSA (2 or 1 μg mL). Especially, the analogue A4 did not induce the drug-resistant mutants for all tested Gram-positive bacterial strains and exhibited relatively lower cytotoxicity in HepG2 cells. The developed classification model based on the light gradient boosting algorithm showed the superior performances on the internal robustness and generalization ability for the ligand-based virtual screening of bisphenol and polyphenol antimicrobial substances. Collectively, our findings suggest that the molecular structure of α,α,α'-TEIB is promising as a scaffold, which is expected to achieve a breakthrough in the development of antibiotics which can prevent the invasion of MRSA and other super bacteria.
我们之前的研究报道了双酚A(BPA)类似物,尤其是四溴双酚A对金黄色葡萄球菌25923(Sa25923)和耐甲氧西林金黄色葡萄球菌(MRSA)具有显著的抗菌活性。然而,这些化合物作为环境污染物对内分泌系统的毒性作用限制了它们在医药和健康领域的应用。鉴于抗生素的滥用已导致多种超级耐药细菌的出现,我们认为基于双酚A结构进行结构修饰可用于设计无耐药性的潜在抗菌剂。在本研究中,为了进一步提高抗菌活性并降低生物毒性,我们进行了计算模型以评估双酚A类似物与细胞壁生物合成中潜在靶标DltA蛋白的结合亲和力。一系列合成的α,α,α'-三(4-羟基苯基)-1-乙基-4-异丙基苯(α,α,α'-TEIB)的非手性类似物对Sa25923和MRSA表现出低最低抑菌浓度(2或1μg/mL)。特别是,类似物A4对所有测试的革兰氏阳性细菌菌株均未诱导耐药突变体,并且在HepG2细胞中表现出相对较低的细胞毒性。基于轻梯度提升算法开发的分类模型在基于配体的双酚和多酚抗菌物质虚拟筛选的内部稳健性和泛化能力方面表现优异。总体而言,我们的研究结果表明,α,α,α'-TEIB的分子结构有望作为一种支架,有望在开发能够预防MRSA和其他超级细菌入侵的抗生素方面取得突破。