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壳三糖与鸡蛋清溶菌酶结合的¹H-NMR研究。

1H-NMR study on the chitotrisaccharide binding to hen egg white lysozyme.

作者信息

Fukamizo T, Ikeda Y, Ohkawa T, Goto S

机构信息

Department of Biophysical Chemistry, Faculty of Agriculture, Kinki University, Japan.

出版信息

Eur J Biochem. 1992 Nov 15;210(1):351-7. doi: 10.1111/j.1432-1033.1992.tb17428.x.

Abstract

Interaction between hen egg white lysozyme and chitotrisaccharide was investigated by 1H-NMR spectroscopy using partially acetylated chitotrisaccharides and chemically modified lysozyme. Monoacetyl (GlcN-GlcN-GlcNAc), diacetyl (GlcN-GlcNAc-GlcNAc), or triacetyl chitotrisaccharide [(GlcNAc)3] was added to the lysozyme solution, and the changes in the 1H-NMR signals of the lysozyme were analyzed. Although many of the resonances were affected by addition of the saccharide, the most remarkable effect was seen on the signal of Trp28 C5H which is in a hydrophobic box adjacent to the saccharide-binding site. The signal shifted upfield by 0.2 ppm upon (GlcNAc)3 binding, whereas the chemical shift change of the signal resulting from binding of GlcN-GlcNAc-GlcNAc or GlcN-GlcN-GlcNAc was smaller than that resulting from (GlcNAc)3 binding. When the Asp101-modified lysozyme was used instead of the native lysozyme, the chemical shift change of the Trp28 C5H signal resulting from (GlcNAc)3 binding was also smaller than that for the native lysozyme. The chemical shift change of the signal reflects the conformational change of the hydrophobic box region which should synchronize with the movement of the binding site resulting from the saccharide binding. Therefore, the conformational change resulting from the saccharide binding might be reduced when the sugar residues located at binding subsites A and B of the lysozyme are deacetylated, as well as when Asp101 interacting with the sugar residues at the same subsites is modified.

摘要

利用部分乙酰化的壳三糖和化学修饰的溶菌酶,通过1H-NMR光谱研究了鸡蛋清溶菌酶与壳三糖之间的相互作用。将单乙酰化(GlcN-GlcN-GlcNAc)、二乙酰化(GlcN-GlcNAc-GlcNAc)或三乙酰化壳三糖[(GlcNAc)3]添加到溶菌酶溶液中,并分析溶菌酶1H-NMR信号的变化。尽管许多共振受到糖类添加的影响,但最显著的影响出现在Trp28 C5H的信号上,该信号位于与糖类结合位点相邻的疏水盒中。(GlcNAc)3结合后,该信号向高场移动了0.2 ppm,而GlcN-GlcNAc-GlcNAc或GlcN-GlcN-GlcNAc结合导致的信号化学位移变化小于(GlcNAc)3结合导致的变化。当使用Asp101修饰的溶菌酶代替天然溶菌酶时,(GlcNAc)3结合导致的Trp28 C5H信号化学位移变化也小于天然溶菌酶。信号的化学位移变化反映了疏水盒区域的构象变化,该变化应与糖类结合导致的结合位点移动同步。因此,当溶菌酶结合亚位点A和B处的糖残基去乙酰化时,以及当与相同亚位点处的糖残基相互作用的Asp101被修饰时,糖类结合导致的构象变化可能会减少。

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