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作为针对多重耐药菌株的抗菌剂的吲哚基丙烯酰胺的合理设计。

Rational design of indolyl acrylamides as antibacterial agents targeting multidrug-resistant strains.

作者信息

Domínguez-Méndez Velvett G, Chávez-Santos Rosa María, Carrillo-Jaimes Karol, Hernández-Santoyo Alejandra, Ramírez-Carreto Santos, Hernandez-Garcia Armando, Aguayo-Ortiz Rodrigo, Ceapă Corina-Diana, Rivera-Chavéz José, Martínez Roberto

机构信息

Departamento de Química Orgánica, Instituto de Química, Universidad Nacional Autónoma de México Circuito Exterior, Ciudad Universitaria Alcaldía Coyoacán C.P. 04510 Cd de Mx Mexico

Laboratorio of Microbiología, Departamento de Productos Naturales, Instituto de Química, Universidad Nacional Autónoma de México Circuito Exterior, Ciudad Universitaria Alcaldía Coyoacán C.P. 04510 Cd de Mx Mexico.

出版信息

RSC Med Chem. 2025 May 20. doi: 10.1039/d5md00145e.

Abstract

Antimicrobial resistance (AMR) has become a significant public health problem. This study investigated the structure-activity relationship of indole core molecules to uncover novel antimicrobials against resistant bacteria. Their antimicrobial evaluation against ESKAPEE bacteria showed superior efficacy compared to cefepime, meropenem, ciprofloxacin, and gentamicin against multidrug-resistant strain A-564, with minimum inhibitory concentration (MIC) values of 4.3 and 1.2 μg mL for compounds 12e and 12j, respectively. Also, the same compounds showed better activity than cefepime for BAA ATCC 747 with MIC values of 1.2 and 4.4 μg mL. In addition, 12e and 12f showed activity against methicillin- and penicillin-resistant with MIC values of 3.2 and 2.1 μg mL. Furthermore, the highly active compounds 12e and 12j exhibited low toxicity, with hemolysis values >40 μg mL. Preliminary examination of the mechanism of action revealed that 12e could exhibit dose-dependent inhibition of the FtsZ enzyme from strain XDR A-564, achieving 51% inhibition of GTPase activity at 32 μg mL, thus altering the binary fission process, which could be attributed to the fact that 12e binds to the GTP site and interferes with the function of the enzyme by inhibiting the formation of the Z-ring. Also, a cell viability assay indicates that cells treated with these compounds showed increased permeability, compromising the stability of the A-564 membrane. These results provided valuable information for further developing indolyl-acrylamides as new antimicrobial agents.

摘要

抗菌耐药性(AMR)已成为一个重大的公共卫生问题。本研究调查了吲哚核心分子的构效关系,以发现针对耐药细菌的新型抗菌药物。它们对ESKAPEE细菌的抗菌评估显示,与头孢吡肟、美罗培南、环丙沙星和庆大霉素相比,对多重耐药菌株A-564具有更高的疗效,化合物12e和12j的最低抑菌浓度(MIC)值分别为4.3和1.2 μg/mL。此外,对于BAA ATCC 747,相同的化合物显示出比头孢吡肟更好的活性,MIC值分别为1.2和4.4 μg/mL。此外,12e和12f对耐甲氧西林和耐青霉素的细菌表现出活性,MIC值分别为3.2和2.1 μg/mL。此外,高活性化合物12e和12j表现出低毒性,溶血值>40 μg/mL。对作用机制的初步研究表明,12e可以对超广谱耐药菌株A-564的FtsZ酶表现出剂量依赖性抑制,在32 μg/mL时实现对GTPase活性51%的抑制,从而改变二元分裂过程,这可能归因于12e与GTP位点结合并通过抑制Z环的形成干扰酶的功能。此外,细胞活力测定表明,用这些化合物处理的细胞显示出通透性增加,损害了A-564细胞膜的稳定性。这些结果为进一步开发吲哚基丙烯酰胺作为新型抗菌剂提供了有价值的信息。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c3bd/12377086/9034f3c1e885/d5md00145e-f1.jpg

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