Division of Molecular Medicine, Bose Institute, P-1/12, C.I.T. Scheme VII (M), Kolkata 700054, India.
Department of Biophysics, Bose Institute, P-1/12 CIT Scheme VII (M), Kolkata 700054, India.
J Colloid Interface Sci. 2017 Jul 15;498:395-404. doi: 10.1016/j.jcis.2017.03.060. Epub 2017 Mar 16.
The interaction of lysozyme with the N-acetylmuramic acid (NAM) and N-acetylglucosamine (NAG) unit of peptidoglycan (PGN) polymer of the bacterial cell wall is of immense importance to understand the mechanism of lysozyme on PGN.
The synthesis of three novel NAM derivatives containing fused oxazinone ring to the NAM moiety has been achieved. The synthesized compounds were evaluated for their potential as a glycomimetic acceptor of lysozyme using different biophysical and computational methods such as H NMR, STD NMR, DOSY and Molecular docking.
Novel modified muramic acid derivatives have been synthesized in excellent yield containing fused cyclooxazine ring embedded on the muramic acid moiety using a newly developed hydrazinolysis reaction condition. From various biophysical studies, it has been established that the compound containing endo modified muramic acid moiety (compound 1) shows significant binding property for the lysozyme while the other isomer (compound 2) did not bind to the lysozyme. The catalytic residues Glu35 and Asp52 were found to be in the close proximity for the active molecule which justifies the selectivity of this molecule in conjunction to lysozyme enzymatic activity.
溶菌酶与细菌细胞壁肽聚糖(PGN)聚合物的 N-乙酰胞壁酸(NAM)和 N-乙酰葡萄糖胺(NAG)单元的相互作用对于理解溶菌酶对 PGN 的作用机制至关重要。
已经实现了三种新型 NAM 衍生物的合成,其中包含融合到 NAM 部分的噁嗪酮环。使用不同的生物物理和计算方法,如 H NMR、STD NMR、DOSY 和分子对接,评估了合成化合物作为溶菌酶糖模拟物受体的潜力。
使用新开发的肼解反应条件,以优异的收率合成了新型修饰的胞壁酸衍生物,其中包含嵌入在胞壁酸部分的融合环氧化合物。从各种生物物理研究中可以确定,含有内型修饰的胞壁酸部分的化合物(化合物 1)显示出与溶菌酶的显著结合特性,而另一种异构体(化合物 2)则未与溶菌酶结合。发现催化残基 Glu35 和 Asp52 与活性分子非常接近,这证明了该分子与溶菌酶酶活性结合的选择性。