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利用 SPR 和 X 射线晶体学发现铜绿假单胞菌 LpxA 和 LpxD 的双活性小分子配体。

Discovery of dual-activity small-molecule ligands of Pseudomonas aeruginosa LpxA and LpxD using SPR and X-ray crystallography.

机构信息

Department of Molecular Medicine, University of South Florida, 12901 Bruce B. Downs Boulevard, Tampa, Florida, 33612, United States.

Former employees of ACHAOGEN Inc., 1 Tower Place, Suite 400, South San Francisco, California, 94080, United States.

出版信息

Sci Rep. 2019 Oct 29;9(1):15450. doi: 10.1038/s41598-019-51844-z.

Abstract

The lipid A biosynthesis pathway is essential in Pseudomonas aeruginosa. LpxA and LpxD are the first and third enzymes in this pathway respectively, and are regarded as promising antibiotic targets. The unique structural similarities between these two enzymes make them suitable targets for dual-binding inhibitors, a characteristic that would decrease the likelihood of mutational resistance and increase cell-based activity. We report the discovery of multiple small molecule ligands that bind to P. aeruginosa LpxA and LpxD, including dual-binding ligands. Binding poses were determined for select compounds by X-ray crystallography. The new structures reveal a previously uncharacterized magnesium ion residing at the core of the LpxD trimer. In addition, ligand binding in the LpxD active site resulted in conformational changes in the distal C-terminal helix-bundle, which forms extensive contacts with acyl carrier protein (ACP) during catalysis. These ligand-dependent conformational changes suggest a potential allosteric influence of reaction intermediates on ACP binding, and vice versa. Taken together, the novel small molecule ligands and their crystal structures provide new chemical scaffolds for ligand discovery targeting lipid A biosynthesis, while revealing structural features of interest for future investigation of LpxD function.

摘要

脂 A 生物合成途径是铜绿假单胞菌的必需途径。LpxA 和 LpxD 分别是该途径的第一和第三酶,被认为是有前途的抗生素靶标。这两种酶具有独特的结构相似性,适合作为双重结合抑制剂的靶标,这一特性降低了突变耐药的可能性,并提高了细胞活性。我们报告了多种结合铜绿假单胞菌 LpxA 和 LpxD 的小分子配体的发现,包括双重结合配体。通过 X 射线晶体学确定了选定化合物的结合构象。新结构揭示了位于 LpxD 三聚体核心的先前未表征的镁离子。此外,配体在 LpxD 活性位点的结合导致远端 C 末端螺旋束的构象变化,该螺旋束在催化过程中与酰基载体蛋白 (ACP) 形成广泛接触。这些配体依赖性构象变化表明反应中间体对 ACP 结合的潜在变构影响,反之亦然。总之,新型小分子配体及其晶体结构为针对脂 A 生物合成的配体发现提供了新的化学支架,同时揭示了 LpxD 功能未来研究的结构特征。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3466/6820557/9977acd2c154/41598_2019_51844_Fig1_HTML.jpg

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