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通过定点诱变技术构建的半乳糖/N-乙酰半乳糖胺特异性C型凝集素CEL-I的甘露糖识别突变体。

Mannose-recognition mutant of the galactose/N-acetylgalactosamine-specific C-type lectin CEL-I engineered by site-directed mutagenesis.

作者信息

Moriuchi Hiromi, Unno Hideaki, Goda Shuichiro, Tateno Hiroaki, Hirabayashi Jun, Hatakeyama Tomomitsu

机构信息

Laboratory of Biomolecular Chemistry, Graduate School of Engineering, Nagasaki University, 1-14 Bunkyo-machi, Nagasaki 852-8521, Japan.

Research Center for Stem Cell Engineering, National Institute of Advanced Industrial Science and Technology, Tsukuba 305-8568, Japan.

出版信息

Biochim Biophys Acta. 2015 Jul;1850(7):1457-65. doi: 10.1016/j.bbagen.2015.04.004. Epub 2015 Apr 11.

Abstract

BACKGROUND

CEL-I is a galactose/N-acetylgalactosamine-specific C-type lectin isolated from the sea cucumber Cucumaria echinata. Its carbohydrate-binding site contains a QPD (Gln-Pro-Asp) motif, which is generally recognized as the galactose specificity-determining motif in the C-type lectins. In our previous study, replacement of the QPD motif by an EPN (Glu-Pro-Asn) motif led to a weak binding affinity for mannose. Therefore, we examined the effects of an additional mutation in the carbohydrate-binding site on the specificity of the lectin.

METHODS

Trp105 of EPN-CEL-I was replaced by a histidine residue using site-directed mutagenesis, and the binding affinity of the resulting mutant, EPNH-CEL-I, was examined by sugar-polyamidoamine dendrimer assay, isothermal titration calorimetry, and glycoconjugate microarray analysis. Tertiary structure of the EPNH-CEL-I/mannose complex was determined by X-ray crystallographic analysis.

RESULTS

Sugar-polyamidoamine dendrimer assay and glycoconjugate microarray analysis revealed a drastic change in the specificity of EPNH-CEL-I from galactose/N-acetylgalactosamine to mannose. The association constant of EPNH-CEL-I for mannose was determined to be 3.17×10(3) M(-1) at 25°C. Mannose specificity of EPNH-CEL-I was achieved by stabilization of the binding of mannose in a correct orientation, in which the EPN motif can form proper hydrogen bonds with 3- and 4-hydroxy groups of the bound mannose.

CONCLUSIONS

Specificity of CEL-I can be engineered by mutating a limited number of amino acid residues in addition to the QPD/EPN motifs.

GENERAL SIGNIFICANCE

Versatility of the C-type carbohydrate-recognition domain structure in the recognition of various carbohydrate chains could become a promising platform to develop novel molecular recognition proteins.

摘要

背景

CEL-I是一种从刺参中分离得到的半乳糖/N-乙酰半乳糖胺特异性C型凝集素。其碳水化合物结合位点包含一个QPD(谷氨酰胺-脯氨酸-天冬氨酸)基序,该基序通常被认为是C型凝集素中决定半乳糖特异性的基序。在我们之前的研究中,用EPN(谷氨酸-脯氨酸-天冬酰胺)基序取代QPD基序导致对甘露糖的结合亲和力较弱。因此,我们研究了碳水化合物结合位点上的另一个突变对凝集素特异性的影响。

方法

使用定点诱变将EPN-CEL-I的色氨酸105替换为组氨酸残基,并通过糖-聚酰胺胺树枝状大分子分析、等温滴定量热法和糖缀合物微阵列分析来检测所得突变体EPNH-CEL-I的结合亲和力。通过X射线晶体学分析确定EPNH-CEL-I/甘露糖复合物的三级结构。

结果

糖-聚酰胺胺树枝状大分子分析和糖缀合物微阵列分析显示EPNH-CEL-I的特异性从半乳糖/N-乙酰半乳糖胺急剧转变为甘露糖。在25°C下,EPNH-CEL-I对甘露糖的缔合常数测定为3.17×10³ M⁻¹。EPNH-CEL-I的甘露糖特异性是通过将甘露糖以正确方向结合来实现的,其中EPN基序可以与结合的甘露糖的3-和4-羟基形成适当的氢键。

结论

除了QPD/EPN基序外,通过突变有限数量的氨基酸残基可以改造CEL-I的特异性。

普遍意义

C型碳水化合物识别结构域结构在识别各种碳水化合物链方面的多功能性可能成为开发新型分子识别蛋白的一个有前景的平台。

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