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调节多杀性巴氏杆菌唾液酸转移酶的区域选择性以用于生物催化生产3'-和6'-唾液酸乳糖。

Modulating the regioselectivity of a Pasteurella multocida sialyltransferase for biocatalytic production of 3'- and 6'-sialyllactose.

作者信息

Guo Yao, Jers Carsten, Meyer Anne S, Li Haiying, Kirpekar Finn, Mikkelsen Jørn D

机构信息

Center for BioProcess Engineering, Department of Chemical and Biochemical Engineering, Building 229, Technical University of Denmark, 2800 Kgs. Lyngby, Denmark.

Center for BioProcess Engineering, Department of Chemical and Biochemical Engineering, Building 229, Technical University of Denmark, 2800 Kgs. Lyngby, Denmark.

出版信息

Enzyme Microb Technol. 2015 Oct;78:54-62. doi: 10.1016/j.enzmictec.2015.06.012. Epub 2015 Jun 20.

Abstract

Several bacterial sialyltransferases have been reported to be multifunctional also catalysing sialidase and trans-sialidase reactions. In this study, we examined the trans-sialylation efficacy and regioselectivity of mutants of the multifunctional Pasteurella multocida sialyltransferase (PmST) for catalysing the synthesis of 3'- and 6'-sialyllactose using casein glycomacropeptide as sialyl-donor and lactose as acceptor. The mutation P34H led to a 980-fold increase in α-2,6-sialyltransferase activity (with cytidine-5'-monophospho-N-acetylneuraminic acid as donor), while its α-2,3-sialyltransferase activity was abolished. Histidine in this position is conserved in α-2,6-sialyltransferases and has been suggested, and recently confirmed, to be the determinant for strict regiospecificity in the sialyltransferase reaction. Our data verified this theorem. In trans-sialidase reactions, the P34H mutant displayed a distinct preference for 6'-sialyllactose synthesis but low levels of 3'-sialyllactose were also produced. The sialyllactose yield was however lower than when using PmSTWT under optimal conditions for 6'-sialyllactose formation. The discrepancy in regiospecificity between the two reactions could indicate subtle differences in the substrate binding site in the two reactions. In contrast, the two mutations E271F and R313Y led to preferential synthesis of 3'-sialyllactose over 6'-sialyllactose and the double mutant (PmSTE271F/R313Y) exhibited the highest α-2,3-regioselectivity via reduced sialidase and α-2,6-trans-sialidase activity. The double mutant PmSTE271F/R313Y thus showed the highest α-2,3-regioselectivity and constitutes an interesting enzyme for regioselective synthesis of α-2,3-sialylated glycans. This study has expanded the understanding of the structure-function relationship of multifunctional, bacterial sialyltransferases and provided new enzymes for regioselective glycan sialylation.

摘要

据报道,几种细菌唾液酸转移酶具有多功能性,还能催化唾液酸酶和转唾液酸酶反应。在本研究中,我们以酪蛋白糖巨肽为唾液酸供体、乳糖为受体,检测了多功能多杀性巴氏杆菌唾液酸转移酶(PmST)突变体催化合成3'-唾液乳糖和6'-唾液乳糖的转唾液酸化效率和区域选择性。P34H突变导致α-2,6-唾液酸转移酶活性(以胞苷-5'-单磷酸-N-乙酰神经氨酸为供体)增加980倍,而其α-2,3-唾液酸转移酶活性丧失。该位置的组氨酸在α-2,6-唾液酸转移酶中保守,有人提出并于近期得到证实,它是唾液酸转移酶反应中严格区域特异性的决定因素。我们的数据验证了这一定理。在转唾液酸酶反应中,P34H突变体对6'-唾液乳糖合成表现出明显偏好,但也产生少量3'-唾液乳糖。然而,在6'-唾液乳糖形成的最佳条件下,唾液乳糖产量低于使用野生型PmST时的产量。两种反应在区域特异性上的差异可能表明两种反应中底物结合位点存在细微差异。相比之下,E271F和R313Y这两个突变导致3'-唾液乳糖的合成优先于6'-唾液乳糖,双突变体(PmSTE271F/R313Y)通过降低唾液酸酶和α-2,6-转唾液酸酶活性表现出最高的α-2,3-区域选择性。双突变体PmSTE271F/R313Y因此表现出最高的α-2,3-区域选择性,是一种用于区域选择性合成α-2,3-唾液酸化聚糖的有趣酶。本研究扩展了对多功能细菌唾液酸转移酶结构-功能关系的理解,并为区域选择性聚糖唾液酸化提供了新的酶。

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