Cell-based glycoengineering of extracellular vesicles through precise genome editing

IF 4.5 2区 生物学 Q1 BIOCHEMICAL RESEARCH METHODS
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Abstract

Engineering of extracellular vesicles (EVs) towards more efficient targeting and uptake to specific cells has large potentials for their application as therapeutics. Carbohydrates play key roles in various biological interactions and are essential for EV biology. The extent to which glycan modification of EVs can be achieved through genetic glycoengineering of their parental cells has not been explored yet. Here we introduce targeted glycan modification of EVs through cell-based glycoengineering via modification of various enzymes in the glycosylation machinery. In a “simple cell” strategy, we modified major glycosylation pathways by knocking-out (KO) essential genes for N-glycosylation (MGAT1), O-GalNAc glycosylation (C1GALT1C1), glycosphingolipids (B4GALT5/6), glycosaminoglycans (B4GALT7) and sialylation (GNE) involved in the elongation or biosynthesis of the glycans in HEK293F cells. The gene editing led to corresponding glycan changes on the cells as demonstrated by differential lectin staining. Small EVs (sEVs) isolated from the cells showed overall corresponding glycan changes, but also some unexpected differences to their parental cell including enrichment preference for certain glycan structures and absence of other glycan types. The genetic glycoengineering did not significantly impact sEVs production, size distribution, or syntenin-1 biomarker expression, while a clonal influence on sEVs production yields was observed. Our findings demonstrate the successful implementation of sEVs glycoengineering via genetic modification of the parental cell and a stable source for generation of glycoengineered sEVs. The utilization of glycoengineered sEVs offers a promising opportunity to study the role of glycosylation in EV biology, as well as to facilitate the optimization of sEVs for therapeutic purposes.

通过精确的基因组编辑实现基于细胞的细胞外囊泡糖工程
对细胞外囊泡(EVs)进行工程化改造,使其更有效地靶向和摄入特定细胞,对其作为治疗药物的应用具有巨大潜力。碳水化合物在各种生物相互作用中发挥着关键作用,对 EV 生物学至关重要。通过对 EVs 母本细胞进行遗传糖工程,可以在多大程度上对 EVs 进行糖修饰,目前还没有人进行过探索。在这里,我们介绍了通过对糖基化机制中的各种酶进行修饰,以细胞为基础的糖工程对 EVs 进行靶向糖修饰。在一种 "简单细胞 "策略中,我们在 HEK293F 细胞中通过敲除(KO)N-糖基化(MGAT1)、O-GalNAc 糖基化(C1GALT1C1)、糖磷脂(B4GALT5/6)、糖胺聚糖(B4GALT7)和参与聚糖延伸或生物合成的糖基化(GNE)的重要基因来修饰主要的糖基化途径。通过不同的凝集素染色,基因编辑导致了细胞上相应的聚糖变化。从细胞中分离出的小EVs(sEVs)总体上显示出相应的聚糖变化,但也与亲代细胞有一些意想不到的差异,包括某些聚糖结构的富集偏好和其他聚糖类型的缺失。遗传糖工程对 sEVs 的产量、大小分布或 syntenin-1 生物标记物的表达没有显著影响,但观察到克隆对 sEVs 产量的影响。我们的研究结果表明,通过对亲本细胞进行基因修饰,成功实现了 sEVs 糖工程,并为生成糖工程 sEVs 提供了稳定的来源。利用糖工程sEVs为研究糖基化在EV生物学中的作用提供了一个大有可为的机会,同时也促进了用于治疗目的的sEVs的优化。
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来源期刊
New biotechnology
New biotechnology 生物-生化研究方法
CiteScore
11.40
自引率
1.90%
发文量
77
审稿时长
1 months
期刊介绍: New Biotechnology is the official journal of the European Federation of Biotechnology (EFB) and is published bimonthly. It covers both the science of biotechnology and its surrounding political, business and financial milieu. The journal publishes peer-reviewed basic research papers, authoritative reviews, feature articles and opinions in all areas of biotechnology. It reflects the full diversity of current biotechnology science, particularly those advances in research and practice that open opportunities for exploitation of knowledge, commercially or otherwise, together with news, discussion and comment on broader issues of general interest and concern. The outlook is fully international. The scope of the journal includes the research, industrial and commercial aspects of biotechnology, in areas such as: Healthcare and Pharmaceuticals; Food and Agriculture; Biofuels; Genetic Engineering and Molecular Biology; Genomics and Synthetic Biology; Nanotechnology; Environment and Biodiversity; Biocatalysis; Bioremediation; Process engineering.
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