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Glycobiology. 2021 Sep 20;31(9):1192-1203. doi: 10.1093/glycob/cwab043.
Bioconjugate vaccines, consisting of polysaccharides attached to carrier proteins, are enzymatically generated using prokaryotic glycosylation systems in a process termed bioconjugation. Key to bioconjugation are a group of enzymes known as oligosaccharyltransferases (OTases) that transfer polysaccharides to engineered carrier proteins containing conserved amino acid sequences known as sequons. The most recently discovered OTase, PglS, has been shown to have the broadest substrate scope, transferring many different types of bacterial glycans including those with glucose at the reducing end. However, PglS is currently the least understood in terms of the sequon it recognizes. PglS is a pilin-specific O-linking OTase that naturally glycosylates a single protein, ComP. In addition to ComP, we previously demonstrated that an engineered carrier protein containing a large fragment of ComP is also glycosylated by PglS. Here we sought to identify the minimal ComP sequon sufficient for PglS glycosylation. We tested >100 different ComP fragments individually fused to Pseudomonas aeruginosa exotoxin A (EPA), leading to the identification of an 11-amino acid sequence sufficient for robust glycosylation by PglS. We also demonstrate that the placement of the ComP sequon on the carrier protein is critical for stability and subsequent glycosylation. Moreover, we identify novel sites on the surface of EPA that are amenable to ComP sequon insertion and find that Cross-Reactive Material 197 fused to a ComP fragment is also glycosylated. These results represent a significant expansion of the glycoengineering toolbox as well as our understanding of bacterial O-linking sequons.
生物共轭疫苗由与载体蛋白结合的多糖组成,通过在称为生物共轭的过程中使用原核糖基化系统酶促生成。生物共轭的关键是一组称为寡糖基转移酶 (OTases) 的酶,它们将多糖转移到含有保守氨基酸序列的工程载体蛋白上,这些序列称为 sequons。最近发现的 OTase PglS 已被证明具有最广泛的底物范围,可转移许多不同类型的细菌聚糖,包括具有还原端葡萄糖的聚糖。然而,就其识别的 sequon 而言,PglS 目前是了解最少的。PglS 是一种特异性连接 O 链接的 OTase,它天然糖基化单个蛋白质 ComP。除了 ComP,我们之前还证明含有 ComP 大片段的工程载体蛋白也被 PglS 糖基化。在这里,我们试图确定 PglS 糖基化所需的最小 ComP sequon。我们单独测试了 >100 种不同的 ComP 片段融合到铜绿假单胞菌外毒素 A (EPA) 中,从而确定了一个 11 个氨基酸序列足以进行稳健的 PglS 糖基化。我们还证明了 ComP sequon 在载体蛋白上的位置对于稳定性和随后的糖基化至关重要。此外,我们确定了 EPA 表面上可用于 ComP sequon 插入的新位点,并发现与 ComP 片段融合的交叉反应物质 197 也被糖基化。这些结果代表了糖工程工具箱以及我们对细菌 O 链接 sequon 的理解的重大扩展。