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伊蚊素:对多重耐药细菌菌株的结构及抗菌活性

Aedesin: structure and antimicrobial activity against multidrug resistant bacterial strains.

作者信息

Godreuil Sylvain, Leban Nadia, Padilla André, Hamel Rodolphe, Luplertlop Natthanej, Chauffour Aurélie, Vittecoq Marion, Hoh François, Thomas Frédéric, Sougakoff Wladimir, Lionne Corinne, Yssel Hans, Missé Dorothée

机构信息

Centre Hospitalier Régional Universitaire de Montpellier, Hôpital Arnaud de Villeneuve, Département de Bactériologie-Virologie, Montpellier, France.

Centre d'études d'agents Pathogènes et Biotechnologies pour la Santé, CNRS-UMR 5236/UM1/UM2, Montpellier, France.

出版信息

PLoS One. 2014 Aug 27;9(8):e105441. doi: 10.1371/journal.pone.0105441. eCollection 2014.

Abstract

Multidrug resistance, which is acquired by both Gram-positive and Gram-negative bacteria, causes infections that are associated with significant morbidity and mortality in many clinical settings around the world. Because of the rapidly increasing incidence of pathogens that have become resistant to all or nearly all available antibiotics, there is a need for a new generation of antimicrobials with a broad therapeutic range for specific applications against infections. Aedesin is a cecropin-like anti-microbial peptide that was recently isolated from dengue virus-infected salivary glands of the Aedes aegypti mosquito. In the present study, we have refined the analysis of its structural characteristics and have determined its antimicrobial effects against a large panel of multidrug resistant bacterial strains, directly isolated from infected patients. Based the results from nuclear magnetic resonance spectroscopy analysis, Aedesin has a helix-bend-helix structure typical for a member of the family of α-helix anti-microbial peptides. Aedesin efficiently killed Gram-negative bacterial strains that display the most worrisome resistance mechanisms encountered in the clinic, including resistance to carbapenems, aminoglycosides, cephalosporins, 4th generation fluoroquinolones, folate inhibitors and monobactams. In contrast, Gram-positive strains were insensitive to the lytic effects of the peptide. The anti-bacterial activity of Aedesin was found to be salt-resistant, indicating that it is active under physiological conditions encountered in body fluids characterized by ionic salt concentrations. In conclusion, because of its strong lytic activity against multidrug resistant Gram-negative bacterial strains displaying all types of clinically relevant resistance mechanisms known today, Aedesin might be an interesting candidate for the development of alternative treatment for infections caused by these types of bacteria.

摘要

多药耐药性由革兰氏阳性菌和革兰氏阴性菌获得,在世界各地的许多临床环境中,会引发与显著发病率和死亡率相关的感染。由于对所有或几乎所有现有抗生素产生耐药性的病原体发病率迅速上升,因此需要新一代具有广泛治疗范围的抗菌药物,用于针对特定感染的治疗。伊蚊杀菌肽是一种类似天蚕素的抗菌肽,最近从登革热病毒感染的埃及伊蚊唾液腺中分离出来。在本研究中,我们完善了对其结构特征的分析,并确定了它对大量直接从感染患者中分离出的多药耐药菌株的抗菌效果。基于核磁共振光谱分析的结果,伊蚊杀菌肽具有典型的α-螺旋抗菌肽家族成员的螺旋-弯曲-螺旋结构。伊蚊杀菌肽能有效杀死革兰氏阴性菌株,这些菌株表现出临床上最令人担忧的耐药机制,包括对碳青霉烯类、氨基糖苷类、头孢菌素类、第四代氟喹诺酮类、叶酸抑制剂和单环β-内酰胺类的耐药性。相比之下,革兰氏阳性菌株对该肽的裂解作用不敏感。发现伊蚊杀菌肽的抗菌活性具有耐盐性,这表明它在以离子盐浓度为特征的体液中遇到的生理条件下具有活性。总之,由于伊蚊杀菌肽对表现出当今已知所有类型临床相关耐药机制的多药耐药革兰氏阴性菌株具有强大的裂解活性,它可能是开发针对这类细菌引起的感染的替代治疗方法的一个有吸引力的候选药物。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a892/4146511/c691164e2550/pone.0105441.g001.jpg

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