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鉴定和开发苯并恶唑衍生物作为新型细菌谷氨酸消旋酶抑制剂。

Identification and development of benzoxazole derivatives as novel bacterial glutamate racemase inhibitors.

机构信息

Department of Pharmacy, Birla Institute of Technology & Science-Pilani, Hyderabad Campus, Shameerpet, Jawaharnagar, RangaReddy District, Hyderabad 500 078, India.

Department of Pharmacy, Birla Institute of Technology & Science-Pilani, Hyderabad Campus, Shameerpet, Jawaharnagar, RangaReddy District, Hyderabad 500 078, India.

出版信息

Eur J Med Chem. 2018 Feb 10;145:23-34. doi: 10.1016/j.ejmech.2017.12.088. Epub 2017 Dec 30.

DOI:10.1016/j.ejmech.2017.12.088
PMID:29310027
Abstract

In the present study, we attempted to develop novel class of Mycobacterium tuberculosis (Mtb) inhibitors by exploring the pharmaceutically underexploited enzyme targets which are majorly involved in cell wall biosynthesis of mycobacteria. For this purpose glutamate racemase was selected which racemizes d-glutamate from l-glutamate, a key step in peptidoglycan synthesis. Furthermore, enzyme is neither expressed nor its product, d-glutamate is produced in mammals, and hence inhibiting this enzyme will have no vulnerable effect in host organism. A library of our in-house compounds were screened against glutamate racemase using a biophysical technique; thermal shift assay and further by enzyme inhibition assay to identify Lead 1 molecule. Lead 1 optimization and expansion resulted in twenty four compounds. Among the synthesized compounds twelve compounds shown good enzyme inhibition than Lead 1 (IC 20.07 ± 0.29 μM). Among all the compounds; compound 22 (IC 1.1 ± 0.52 μM) showed potent non-competitive mode of inhibition in enzyme assay. Further showed good susceptibility (in replicating bacteria) of MIC 8.72 μM and bactericidal time dependant kill on dormant culture. It also exhibited significant activity in Mtb nutrient starvation model (2.5) and Mtb biofilm model (2.4) and in vivo M. marinum infected Zebra fish model studies (3.6) reduction at logarithmic scale.

摘要

在本研究中,我们试图通过探索主要参与分枝杆菌细胞壁生物合成的药物未开发的酶靶标,开发新型结核分枝杆菌(Mtb)抑制剂。为此,选择了谷氨酸消旋酶,该酶将 d-谷氨酸从 l-谷氨酸消旋化,这是肽聚糖合成的关键步骤。此外,该酶在哺乳动物中既不表达,也不产生其产物 d-谷氨酸,因此抑制该酶不会对宿主生物体产生脆弱的影响。使用生物物理技术;热移位测定法和进一步的酶抑制测定法,对我们内部化合物库进行了谷氨酸消旋酶筛选,以鉴定出先导化合物 1。对先导化合物 1 进行优化和扩展,得到了 24 个化合物。在所合成的化合物中,有 12 个化合物对酶的抑制作用优于先导化合物 1(IC 20.07 ± 0.29 μM)。在所有化合物中;化合物 22(IC 1.1 ± 0.52 μM)在酶测定中表现出很强的非竞争性抑制作用。进一步显示出良好的敏感性(在复制细菌中),MIC 8.72 μM,对休眠培养物的杀菌时间依赖性杀伤。它还在 Mtb 营养饥饿模型(2.5)和 Mtb 生物膜模型(2.4)以及在对数尺度上的体内 M. marinum 感染斑马鱼模型研究(3.6)中表现出显著的活性。

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