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通过二肽转运蛋白Dpp的非法转运与奈格霉素在大肠杆菌感染小鼠大腿模型中的疗效无关。

Illicit Transport via Dipeptide Transporter Dpp is Irrelevant to the Efficacy of Negamycin in Mouse Thigh Models of Escherichia coli Infection.

作者信息

McKinney David C, Bezdenejnih-Snyder Natascha, Farrington Krista, Guo Jian, McLaughlin Robert E, Ruvinsky Anatoly M, Singh Renu, Basarab Gregory S, Narayan Sridhar, Buurman Ed T

机构信息

Departments of Chemistry, ‡Biosciences, and §Drug Metabolism and Pharmacokinetics, Infection Innovative Medicines Unit , AstraZeneca R&D Boston, 35 Gatehouse Drive, Waltham, Massachusetts 02451, United States.

出版信息

ACS Infect Dis. 2015 May 8;1(5):222-30. doi: 10.1021/acsinfecdis.5b00027. Epub 2015 Apr 7.

Abstract

Negamycin is a hydrophilic antimicrobial translation inhibitor that crosses the lipophilic inner membrane of Escherichia coli via at least two transport routes to reach its intracellular target. In a minimal salts medium, negamycin's peptidic nature allows illicit entry via a high-affinity route by hijacking the Dpp dipeptide transporter. Transport via a second, low-affinity route is energetically driven by the membrane potential, seemingly without the direct involvement of a transport protein. In mouse thigh models of E. coli infection, no evidence for Dpp-mediated transport of negamycin was found. The implication is that for the design of new negamycin-based analogs, the physicochemical properties required for cell entry via the low-affinity route need to be retained to achieve clinical success in the treatment of infectious diseases. Furthermore, clinical resistance to such analogs due to mutations affecting their ribosomal target or transport is expected to be rare and similar to that of aminoglycosides.

摘要

奈加霉素是一种亲水性抗菌翻译抑制剂,它通过至少两条转运途径穿过大肠杆菌的亲脂性内膜,以到达其细胞内靶点。在基本盐培养基中,奈加霉素的肽性质使其能够通过劫持Dpp二肽转运体,经高亲和力途径非法进入细胞。通过第二条低亲和力途径的转运由膜电位提供能量驱动,似乎没有转运蛋白的直接参与。在大肠杆菌感染的小鼠大腿模型中,未发现Dpp介导奈加霉素转运的证据。这意味着,对于基于奈加霉素的新类似物的设计,需要保留通过低亲和力途径进入细胞所需的物理化学性质,以在传染病治疗中取得临床成功。此外,预计由于影响其核糖体靶点或转运的突变而导致对此类类似物的临床耐药性将很少见,且与氨基糖苷类药物的耐药情况相似。

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