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Structure-Based Virtual Screening of Pseudomonas aeruginosa LpxA Inhibitors using Pharmacophore-Based Approach

机译:基于药理学的方法对铜绿假单胞菌LpxA抑制剂的基于结构的虚拟筛选

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摘要

Multidrug resistance in is a noticeable and ongoing major obstacle for inhibitor design. In uridine diphosphate N-acetylglucosamine (UDP-GlcNAc) acetyltransferase (PaLpxA) is an essential enzyme of lipid A biosynthesis and an attractive drug target. PaLpxA is a homotrimer, and the binding pocket for its substrate, UDP-GlcNAc, is positioned between the monomer A–monomer B interface. The uracil moiety binds at one monomer A, the GlcNAc moiety binds at another monomer B, and a diphosphate form bonds with both monomers. The catalytic residues are conserved and display a similar catalytic mechanism across orthologs, but some distinctions exist between pocket sizes, residue differences, substrate positioning and specificity. The analysis of diversified pockets, volumes, and ligand positions was determined between orthologues that could aid in selective inhibitor development. Thenceforth, a complex-based pharmacophore model was generated and subjected to virtual screening to identify compounds with similar pharmacophoric properties. Docking and general Born-volume integral (GBVI) studies demonstrated 10 best lead compounds with selective inhibition properties with essential residues in the pocket. For biological access, these scaffolds complied with the Lipinski rule, no toxicity and drug likeness properties, and were considered as lead compounds. Hence, these scaffolds could be helpful for the development of potential selective PaLpxA inhibitors.
机译:多药耐药性是抑制剂设计中明显且持续的主要障碍。在尿苷二磷酸中,N-乙酰氨基葡萄糖(UDP-GlcNAc)乙酰基转移酶(PaLpxA)是脂质A生物合成所必需的酶,并且是有吸引力的药物靶标。 PaLpxA是同型三聚体,其底物UDP-GlcNAc的结合口袋位于单体A-单体B界面之间。尿嘧啶部分结合一个单体A,GlcNAc部分结合另一种单体B,并且二磷酸酯与两个单体形成键。催化残基是保守的,并且在直向同源物中显示出相似的催化机理,但是在口袋大小,残基差异,底物位置和特异性之间存在一些区别。在直向同源物之间确定了多种口袋,体积和配体位置的分析,这有助于选择性抑制剂的开发。此后,生成了基于复合物的药效团模型,并进行了虚拟筛选,以鉴定具有相似药效团特性的化合物。对接和一般的Born-Volume体积积分(GBVI)研究表明,十种最佳的铅化合物具有选择性抑制特性,并且在口袋中具有基本残留物。在生物学上,这些支架符合Lipinski规则,无毒性和相似药物性质,被认为是先导化合物。因此,这些支架可能有助于潜在的选择性PaLpxA抑制剂的发展。

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