Jiayang Jiang , Juanjuan Li , Haoyu Dong , Xinping Chen , Yanqiong Tang , Xiang Ma , Hong Li , Xue Chi , Xianwen Yang , Zhu Liu
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引用次数: 0
摘要
假性伯克霍尔德菌的耐药性和抗生素根除生物膜的有限能力强调了寻找替代治疗方案的迫切需要。抑制生物膜形成而不产生抗菌素耐药性的新药显然引起了全球的关注。我们报道了一种深海衍生的天然产物xanthocillin X (Xan)用于治疗假芽孢杆菌1诱导的感染。Xan即使在62.5 ng/mL的超低浓度下也比市售头孢他啶具有更强的抗菌能力,并能高效抑制生物膜的形成,且无耐药性。特别地,Xan与负责脂多糖合成的LpxA具有稳定的结合能力,从而破坏生物膜的形成。在两种小鼠模型中,Xan显示出对抗假芽孢杆菌1诱导感染的治疗效力。综上所述,与LpxA特异性相互作用的Xan损害了生物膜的形成而没有耐药性,使化合物具有优势的抗菌活性并加速感染后的组织修复。
Xanthocillin X combats Burkholderia pseudomallei by targeting UDP-N-acetylglucosamine acyltransferase
Drug-resistance in Burkholderia pseudomallei (B. pseudomallei) and the limited ability of antibiotics to eradicate biofilms underscore the urgent need for alternative therapeutic options. New drugs which suppress the biofilm formation without emergence of antimicrobial resistance have clearly attracted global attention. We report a deep-sea-derived natural product xanthocillin X (Xan) for the therapeutic of B. pseudomallei 1 induced infections. Xan possesses superior antibacterial ability over commercial ceftazidime even at an ultralow concentration of 62.5 ng/mL, and can inhibit the formation of biofilm with high efficiency without drug resistance. Specially, Xan demonstrates stable binding ability with LpxA which is responsible for lipopolysaccharide synthesis, and thus disrupting the formation of biofilm. In two murine models, Xan exhibits therapeutic potency for combating B. pseudomallei 1 induced infections. Taken together, Xan that specifically interacts with LpxA impairs the formation of biofilm without drug resistance, endowing the compound with dominant antibacterial activity and accelerating tissue repair after infection.
期刊介绍:
Microbiological Research is devoted to publishing reports on prokaryotic and eukaryotic microorganisms such as yeasts, fungi, bacteria, archaea, and protozoa. Research on interactions between pathogenic microorganisms and their environment or hosts are also covered.