Bacterial glycobiotechnology: A biosynthetic route for the production of biopharmaceutical glycans

代谢工程 糖复合物 聚糖 糖基化 合成生物学 代谢途径 生化工程 计算生物学 生物制药 定向进化 生物化学 生物过程 蛋白质工程 生物 糖蛋白 生物技术 工程类 基因 古生物学 突变体
作者
Balwant Singh Paliya,Vivek Sharma,Maria G. Tuohy,Harikesh Bahadur Singh,Mattheos A. G. Koffas,Rachid Benhida,Brijesh K. Tiwari,Deepak M. Kalaskar,Brahma N. Singh,Vijai Kumar Gupta
出处
期刊:Biotechnology Advances [Elsevier]
卷期号:67: 108180-108180 被引量:4
标识
DOI:10.1016/j.biotechadv.2023.108180
摘要

The recent advancement in the human glycome and progress in the development of an inclusive network of glycosylation pathways allow the incorporation of suitable machinery for protein modification in non-natural hosts and explore novel opportunities for constructing next-generation tailored glycans and glycoconjugates. Fortunately, the emerging field of bacterial metabolic engineering has enabled the production of tailored biopolymers by harnessing living microbial factories (prokaryotes) as whole-cell biocatalysts. Microbial catalysts offer sophisticated means to develop a variety of valuable polysaccharides in bulk quantities for practical clinical applications. Glycans production through this technique is highly efficient and cost-effective, as it does not involve expensive initial materials. Metabolic glycoengineering primarily focuses on utilizing small metabolite molecules to alter biosynthetic pathways, optimization of cellular processes for glycan and glycoconjugate production, characteristic to a specific organism to produce interest tailored glycans in microbes, using preferably cheap and simple substrate. However, metabolic engineering faces one of the unique challenges, such as the need for an enzyme to catalyze desired substrate conversion when natural native substrates are already present. So, in metabolic engineering, such challenges are evaluated, and different strategies have been developed to overcome them. The generation of glycans and glycoconjugates via metabolic intermediate pathways can still be supported by glycol modeling achieved through metabolic engineering. It is evident that modern glycans engineering requires adoption of improved strain engineering strategies for creating competent glycoprotein expression platforms in bacterial hosts, in the future. These strategies include logically designing and introducing orthogonal glycosylation pathways, identifying metabolic engineering targets at the genome level, and strategically improving pathway performance (for example, through genetic modification of pathway enzymes). Here, we highlight current strategies, applications, and recent progress in metabolic engineering for producing high-value tailored glycans and their applications in biotherapeutics and diagnostics.
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