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双萘嵌苯类化合物作为多靶点抗菌剂克服细菌细胞死亡以克服耐药性。

Bacterial cell death to overcome drug resistance with multitargeting bis-naphthalimides as potent antibacterial agents against .

机构信息

Department of Chemistry and Biochemistry, Thapar Institute of Engineering and Technology, Patiala 147001, India.

出版信息

J Mater Chem B. 2024 Jun 12;12(23):5645-5660. doi: 10.1039/d3tb02804f.

Abstract

The increasing frequency of drug-resistant pathogens poses serious health issues to humans around the globe, leading to the development of new antibacterial agents to conquer drug resistance and bacterial infections. In view of this, we have synthesized a series of bis-naphthalimides to respond to awful drug resistance. Bioactivity assay and structure-activity relationship disclosed that compounds 5d and 5o exhibit potent antibacterial activity against , outperforming the marketed antibiotics. These drug candidates not only inhibit the biofilm formation of but also display rapid bactericidal properties, thus delaying the development of drug resistance within 20 passages. To explore the mechanism of antibacterial activity against , biofunctional examination was carried out which unveiled that 5d and 5o effectively disrupt bacterial cell membranes, causing the leakage of cytoplasmic contents and metabolic activity loss. Concurrently, 5d and 5o effectively intercalate with DNA to block DNA replication, causing the build-up of excessive reactive oxygen species and inhibiting the glutathione activity, ultimately leading to oxidative damage of and cell death. In addition, these compounds readily bind with HSA with a high binding constant, indicating that these drug candidates could be easily delivered to the target site. The above finding manifested that these newly synthesized bis-naphthalimides with multitargeting antibacterial properties offer a new prospect to overcome drug resistance.

摘要

耐药病原体的频率不断增加,给全球人类的健康带来了严重威胁,促使人们开发新的抗菌药物来克服耐药性和细菌感染。有鉴于此,我们合成了一系列双萘酰亚胺来应对严重的耐药性问题。活性测试和构效关系研究表明,化合物 5d 和 5o 对 表现出很强的抗菌活性,优于市售抗生素。这些候选药物不仅能抑制 的生物膜形成,还具有快速杀菌作用,从而在 20 代内延缓耐药性的发展。为了探究化合物 5d 和 5o 对 的抗菌活性机制,我们进行了生物功能研究,结果表明,化合物 5d 和 5o 能有效破坏细菌细胞膜,导致细胞质内容物泄漏和代谢活性丧失。同时,化合物 5d 和 5o 能有效嵌入 DNA 以阻止 DNA 复制,导致过量活性氧的积累和谷胱甘肽活性的抑制,最终导致 和细胞死亡的氧化损伤。此外,这些化合物与 HSA 具有高结合常数,表明这些候选药物很容易被递送到靶位。上述发现表明,这些具有多靶点抗菌特性的新型双萘酰亚胺为克服耐药性提供了新的前景。

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