Laboratory of Molecular Cell Biology, Graduate School of Medicine, Korea University College of Medicine, Korea University, Seoul 02841, Korea.
Department of Microbiology and Immunology, Cornell University, Ithaca, NY 14853, USA.
Int J Mol Sci. 2022 Jul 3;23(13):7404. doi: 10.3390/ijms23137404.
The abuse or misuse of antibiotics has caused the emergence of extensively drug-resistant (XDR) bacteria, rendering most antibiotics ineffective and increasing the mortality rate of patients with bacteremia or sepsis. Antimicrobial peptides (AMPs) are proposed to overcome this problem; however, many AMPs have attenuated antimicrobial activities with hemolytic toxicity in blood. Recently, AMPR-11 and its optimized derivative, AMPR-22, were reported to be potential candidates for the treatment of sepsis with a broad spectrum of antimicrobial activity and low hemolytic toxicity. Here, we performed molecular dynamics (MD) simulations to clarify the mechanism of lower hemolytic toxicity and higher efficacy of AMPR-22 at an atomic level. We found four polar residues in AMPR-11 bound to a model mimicking the bacterial inner/outer membranes preferentially over eukaryotic plasma membrane. AMPR-22 whose polar residues were replaced by lysine showed a 2-fold enhanced binding affinity to the bacterial membrane by interacting with bacterial specific lipids (lipid A or cardiolipin) via hydrogen bonds. The MD simulations were confirmed experimentally in models that partially mimic bacteremia conditions in vitro and ex vivo. The present study demonstrates why AMPR-22 showed low hemolytic toxicity and this approach using an MD simulation would be helpful in the development of AMPs.
抗生素的滥用或误用导致了广泛耐药(XDR)细菌的出现,使大多数抗生素无效,并增加了菌血症或败血症患者的死亡率。抗菌肽(AMPs)被提议用来解决这个问题;然而,许多 AMPs 在血液中具有减弱的抗菌活性和溶血毒性。最近,AMPR-11 及其优化衍生物 AMPR-22 被报道为治疗败血症的潜在候选药物,具有广谱的抗菌活性和低溶血毒性。在这里,我们进行了分子动力学(MD)模拟,以在原子水平上阐明 AMPR-22 溶血毒性较低和疗效较高的机制。我们发现 AMPR-11 中的四个极性残基优先与模拟细菌内外膜的模型结合,而不是真核细胞膜。其极性残基被赖氨酸取代的 AMPR-22 通过氢键与细菌特异性脂质(脂 A 或心磷脂)相互作用,表现出对细菌膜 2 倍的增强结合亲和力。MD 模拟在体外和体内部分模拟菌血症条件的模型中得到了实验验证。本研究表明了为什么 AMPR-22 表现出低溶血毒性,这种使用 MD 模拟的方法将有助于 AMPs 的开发。