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首页> 外文期刊>Glycobiology. >Protein engineering of α2,3/2,6-sialyltransferase to improve the yield and productivity of in vitro sialyllactose synthesis
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Protein engineering of α2,3/2,6-sialyltransferase to improve the yield and productivity of in vitro sialyllactose synthesis

机译:α2,3/ 2,6-唾液酸转移酶的蛋白质工程可提高体外唾液乳糖合成的产量和生产率

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In the large-quantity production of α2,3- and α2,6- sialyllactose (Neu5Ac(α2,3)Galβ1,4Glc (3′-SL) and Neu5Ac(α2,6)Galβ1,4Glc (6′-SL)) using sialyltransferases (STs), there are major hurdles to overcome for further improvement in yield and productivity of the enzyme reactions. Specifically, Pasteurella multocida α2,3-sialyltransferase (α2,3PST) forms a by-product to a certain extent, owing to its multifunctional activity at pH below 7.0, and Photobacterium damselae α2,6-sialyltransferase (α2,6PdST) shows relatively low ST activity. In this study, α2,3PST and α2,6PdST were successfully engineered using a hybrid approach that combines rational design with site-saturation mutagenesis. Narrowly focused on the substrate-binding pocket of the STs, putative functional residues were selected by multiple sequence alignment and alanine scanning, and subsequently subjected to site-saturation mutagenesis. In the case of α2,3PST, R313N single mutation improved its activity slightly (by a factor of 1.5), and further improvement was obtained by making the double mutants (R313N/T265S and R313H/T265S) resulting in an overall 2-fold improvement in its specific α2,3 ST activity, which is mainly caused by the increase in kcat. It was revealed that the R313 mutations to N, D, Y, H or T greatly reduced the α2,6 ST side-reaction activity of α2,3PST at below pH 7.0. In the case of α2,6PdST, single-mutation L433S/T and double-mutation I411T/L433T exhibited 3- and 5-fold enhancement of the α2,6 ST-specific activity compared with the wild-type, respectively, via increase in kcat values. Our results show a very good model system for enhancing ST activity and demonstrate that the generated mutants could be used efficiently for the mass production of 3′-SL and 6′-SL with enhanced productivity and yield.
机译:在大批量生产α2,3-和α2,6-唾液乳糖中(Neu5Ac(α2,3)Galβ1,4Glc(3'-SL)和Neu5Ac(α2,6)Galβ1,4Glc(6'-SL))使用唾液酸转移酶(ST),需要进一步克服主要障碍,以进一步提高酶反应的产率和生产率。具体而言,多杀性巴斯德氏菌α2,3-唾液酸转移酶(α2,3PST)在pH低于7.0时具有多功能活性,在一定程度上形成了副产物,而damselae damselaeα2,6-唾液酸转移酶(α2,6PdST)相对较低。 ST活动。在这项研究中,使用结合了合理设计和位点饱和诱变的混合方法成功地设计了α2,3PST和α2,6PdST。狭窄地集中在STs的底物结合口袋上,通过多重序列比对和丙氨酸扫描选择推定的功能残基,然后进行位点饱和诱变。在α2,3PST的情况下,R313N单突变稍微改善了其活性(提高了1.5倍),并且通过制作双突变(R313N / T265S和R313H / T265S)获得了进一步的改进,导致总体提高了2倍其特定的α2,3ST活性,主要是由于kcat的增加所致。发现在pH 7.0以下,R313突变为N,D,Y,H或T大大降低了α2,3PST的α2,6ST副反应活性。在α2,6PdST的情况下,单突变L433S / T和双突变I411T / L433T与野生型相比,通过增加,分别表现出α2,6ST比活性的3倍和5倍增强。 kcat值。我们的结果显示了一个非常好的用于增强ST活性的模型系统,并证明了所产生的突变体可以有效地用于3'-SL和6'-SL的大规模生产,并提高了生产率和产量。

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