Computational and experimental analyses of alanine racemase suggest new avenues for developing allosteric small-molecule antibiotics

被引:1
作者
van Wieren, Arie [1 ,5 ]
Durrant, Jacob D. [2 ,3 ]
Majumdar, Sudipta [1 ,4 ]
机构
[1] Indiana Univ Penn, Madia Dept Chem Biochem Phys & Engn, Indiana, PA USA
[2] Univ Pittsburgh, Dept Biol Sci, Pittsburgh, PA USA
[3] Univ Pittsburgh, Dept Biol Sci, Pittsburgh, PA 15260 USA
[4] Indiana Univ Penn, Madia Dept Chem Biochem Phys & Engn, Indiana, PA 15705 USA
[5] Johns Hopkins Univ, Sch Med, Baltimore, MD USA
基金
美国国家卫生研究院;
关键词
alanine racemase; antibiotic; computer-aided drug design; drug discovery; enzyme kinetics; protein structure-function; ESCHERICHIA-COLI; CRYSTAL-STRUCTURE; PSEUDOMONAS-AERUGINOSA; PROTEIN; STEAROTHERMOPHILUS; DIMERIZATION; INHIBITORS; MECHANISM; CONTAINS; ENTRYWAY;
D O I
10.1002/ddr.22068
中图分类号
R914 [药物化学];
学科分类号
100701 ;
摘要
Given the ever-present threat of antibacterial resistance, there is an urgent need to identify new antibacterial drugs and targets. One such target is alanine racemase (Alr), an enzyme required for bacterial cell-wall biosynthesis. Alr is an attractive drug target because it is essential for bacterial survival but is absent in humans. Existing drugs targeting Alr lack specificity and have severe side effects. We here investigate alternative mechanisms of Alr inhibition. Alr functions exclusively as an obligate homodimer, so we probed seven conserved interactions on the dimer interface, distant from the enzymatic active site, to identify possible allosteric influences on activity. Using the Alr from Mycobacterium tuberculosis (MT) as a model, we found that the Lys261/Asp135 salt bridge is critical for catalytic activity. The Lys261Ala mutation completely inactivated the enzyme, and the Asp135Ala mutation reduced catalytic activity eight-fold. Further investigation suggested a potential drug-binding site near the Lys261/Asp135 salt bridge that may be useful for allosteric drug discovery.
引用
收藏
页码:999 / 1007
页数:9
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