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Use of combinatorial genetic libraries to humanize N-linked glycosylation in the yeast Pichia pastoris

机译:利用组合遗传文库将巴斯德毕赤酵母中的N-联糖基化人源化

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摘要

The secretory pathway of Pichia pastoris was genetically re-engineered to perform sequential glycosylation reactions that mimic early processing of N-glycans in humans and other higher mammals. After eliminating nonhuman glycosylation by deleting the initiating α-1,6-mannosyltransferase gene from P. pastoris, several combinatorial genetic libraries were constructed to localize active α-1,2-mannosidase and human β-1,2-N-acetylglucosaminyltransferase I (GnTI) in the secretory pathway. First, >32 N-terminal leader sequences of fungal type II membrane proteins were cloned to generate a leader library. Two additional libraries encoding catalytic domains of α-1,2-mannosidases and GnTI from mammals, insects, amphibians, worms, and fungi were cloned to generate catalytic domain libraries. In-frame fusions of the respective leader and catalytic domain libraries resulted in several hundred chimeric fusions of fungal targeting domains and catalytic domains. Although the majority of strains transformed with the mannosidase/leader library displayed only modest in vivo [i.e., low levels of mannose (Man)5-(GlcNAc)2] activity, we were able to isolate several yeast strains that produce almost homogenous N-glycans of the (Man)5-(GlcNAc)2 type. Transformation of these strains with a UDP-GlcNAc transporter and screening of a GnTI leader fusion library allowed for the isolation of strains that produce GlcNAc-(Man)5-(GlcNAc)2 in high yield. Recombinant expression of a human reporter protein in these engineered strains led to the formation of a glycoprotein with GlcNAc-(Man)5-(GlcNAc)2 as the primary N-glycan. Here we report a yeast able to synthesize hybrid glycans in high yield and open the door for engineering yeast to perform complex human-like glycosylation.
机译:巴斯德毕赤酵母的分泌途径经过基因改造,可进行顺序的糖基化反应,以模拟人类和其他高等哺乳动物中N-聚糖的早期加工。在通过删除巴斯德毕赤酵母中的起始α-1,6-甘露糖基转移酶基因消除非人类糖基化之后,构建了一些组合遗传文库以定位活性α-1,2-甘露糖苷酶和人类β-1,2-N-乙酰氨基葡糖基转移酶I( GnTI)。首先,克隆> 32个真菌II型膜蛋白的N-末端前导序列以产生前导文库。克隆了另外两个编码来自哺乳动物,昆虫,两栖动物,蠕虫和真菌的α-1,2-甘露糖苷酶和GnTI催化域的文库,以生成催化域文库。相应的前导区和催化结构域文库的框内融合导致真菌靶向结构域和催化结构域的数百个嵌合融合。尽管使用甘露糖苷酶/前导库转化的大多数菌株在体内仅表现出适度的活性(即低水平的甘露糖(Man)5-(GlcNAc)2]活性,但我们能够分离出几种产生几乎同质N-的酵母菌株(Man)5-(GlcNAc)2类型的聚糖。用UDP-GlcNAc转运蛋白转化这些菌株并筛选GnTI前导融合文库可以分离出高产GlcNAc-(Man)5-(GlcNAc)2的菌株。人报道蛋白在这些工程菌株中的重组表达导致形成了以GlcNAc-(Man)5-(GlcNAc)2为主要N-聚糖的糖蛋白。在这里,我们报道了一种能够以高产率合成杂聚糖的酵母,为工程酵母执行复杂的类人糖基化打开了大门。

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