GlycoBac, LLC, Laramie, Wyoming 82072, United States.
Department of Molecular Biology, University of Wyoming, Laramie, Wyoming 82071, United States.
ACS Chem Biol. 2021 Oct 15;16(10):1941-1950. doi: 10.1021/acschembio.0c00974. Epub 2021 Feb 17.
One attractive feature of the baculovirus-insect cell system (BICS) is the baculoviral genome has a large capacity for genetic cargo. This enables construction of viral vectors designed to accept multigene insertions, which has facilitated efforts to produce recombinant multisubunit protein complexes. However, the large genetic capacity of baculovirus vectors has not yet been exploited for multistep pathway engineering. Therefore, we created PolyBac, which is a novel baculovirus shuttle vector, or bacmid, that can be used for this purpose. PolyBac was designed to accept multiple transgene insertions by three different mechanisms at three different sites within the baculovirus genome. After constructing and characterizing PolyBac, we used it to isolate nine derivatives encoding various combinations of up to eight different protein -glycosylation pathway functions, or glycogenes. We then used these derivatives, which were designed to progressively extend the endogenous insect cell pathway, to assess PolyBac's utility for protein glycosylation pathway engineering. This assessment was enabled by engineering each derivative to produce a recombinant influenza hemagglutinin (rH5), which was used to probe the impact of each glycoengineered PolyBac derivative on the endogenous insect cell pathway. Genetic analyses of these derivatives confirmed PolyBac can accept large DNA insertions. Biochemical analyses of the rH5 products showed each had distinct -glycosylation profiles. Finally, the major -glycan on each rH5 product was the predicted end product of the engineered -glycosylation pathways encoded by each PolyBac derivative. These results generally indicate that PolyBac has utility for multistep metabolic pathway engineering and directly demonstrate that this new bacmid can be used for customized protein glycosylation pathway engineering in the BICS.
杆状病毒-昆虫细胞系统(BICS)的一个吸引人的特点是杆状病毒基因组具有很大的遗传负荷能力。这使得构建能够接受多基因插入的病毒载体成为可能,从而促进了重组多亚基蛋白复合物的产生。然而,杆状病毒载体的大容量遗传能力尚未被用于多步途径工程。因此,我们创建了 PolyBac,这是一种新型杆状病毒穿梭载体或 bacmid,可用于此目的。PolyBac 通过三种不同的机制在杆状病毒基因组的三个不同位点设计来接受多个转基因插入。在构建和表征 PolyBac 后,我们使用它来分离编码多达八种不同蛋白-糖基化途径功能或糖基因的 9 种衍生物。然后,我们使用这些衍生物,旨在逐步扩展内源性昆虫细胞途径,评估 PolyBac 在蛋白糖基化途径工程中的实用性。通过设计每个衍生物来产生重组流感血凝素(rH5)来实现这种评估,rH5 用于探测每个糖基化工程 PolyBac 衍生物对内源性昆虫细胞途径的影响。这些衍生物的遗传分析证实了 PolyBac 可以接受大的 DNA 插入。rH5 产物的生化分析表明,每个产物都具有不同的 -糖基化谱。最后,每个 rH5 产物上的主要 -聚糖是每个 PolyBac 衍生物编码的工程化 -糖基化途径的预测最终产物。这些结果总体表明,PolyBac 可用于多步代谢途径工程,并且直接证明这种新的 bacmid 可用于 BICS 中的定制蛋白糖基化途径工程。