Design, synthesis, and structural elucidation of novel NmeNANAS inhibitors for the treatment of meningococcal infection

被引:16
作者
Alwassil, Osama, I [1 ,2 ]
Chandrashekharappa, Sandeep [3 ]
Nayak, Susanta K. [4 ]
Venugopala, Katharigatta N. [1 ,5 ]
机构
[1] King Faisal Univ, Coll Clin Pharm, Dept Pharmaceut Sci, Al Hasa, Saudi Arabia
[2] King Saud Bin Abdulaziz Univ Hlth Sci, Coll Pharm, Dept Pharmaceut Sci, Riyadh, Saudi Arabia
[3] GKVK, Inst Stem Cell Biol & Regenerat Med, TIFR, NCBS, Bangalore, Karnataka, India
[4] Visvesvaraya Natl Inst Technol, Dept Chem, Nagpur, Maharashtra, India
[5] Durban Univ Technol, Fac Appl Sci, Dept Biotechnol & Food Technol, Durban, South Africa
关键词
RESISTANT NEISSERIA-MENINGITIDIS; ACID SYNTHASE; INDOLIZINE ANALOGS; SIALIC ACIDS; PENICILLIN; PHOSPHOENOLPYRUVATE; SUSCEPTIBILITY; BIOSYNTHESIS; DISEASE;
D O I
10.1371/journal.pone.0223413
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
Neisseria meningitidis is the primary cause of bacterial meningitis in many parts of the world, with considerable mortality rates among neonates and adults. In Saudi Arabia, serious outbreaks of N. meningitidis affecting several hundreds of pilgrims attending Hajj in Makkah were recorded in the 2000-2001 season. Evidence shows increased rates of bacterial resistance to penicillin and other antimicrobial agents that are used in the treatment of the meningococcal disease. The host's immune system becomes unable to recognize the polysialic acid capsule of the resistant N. meningitidis that mimics the mammalian cell surface. The biosynthetic pathways of sialic acid (i.e., N-acetylneuraminic acid [NANA]) in bacteria, however, are somewhat different from those in mammals. The largest obstacle facing previously identified inhibitors of NANA synthase (NANAS) in N. meningitidis is that these inhibitors feature undesired chemical and pharmacological characteristics. To better comprehend the binding mechanism underlying these inhibitors at the catalytic site of NANAS, we performed molecular modeling studies to uncover essential structural aspects for the ultimate recognition at the catalytic site required for optimal inhibitory activity. Applying two virtual screening candidate molecules and one designed molecule showed promising structural scaffolds. Here, we report ethyl 3-benzoyl-2,7-dimethyl indolizine-1-carboxylate (INLZ) as a novel molecule with high energetic fitness scores at the catalytic site of the NmeNANAS enzyme. INLZ represents a promising scaffold for NmeNANAS enzyme inhibitors, with new prospects for further structural development and activity optimization.
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页数:19
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