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Design of a hyperstable 60-subunit protein icosahedron

机译:超稳定的60亚基蛋白质二十面体的设计

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摘要

The icosahedron and the dodecahedron are the largest of the Platonic solids, and icosahedral protein structures are widely utilized in biological systems for packaging and transport,. There has been considerable interest in repurposing such structures, for example, virus-like particles for the targeted delivery and vaccine design. The ability to design proteins that self assemble into precisely specified, highly ordered icosahedral structures would open the door to a new generation of protein 'containers' that could exhibit properties custom-made for various applications. In this manuscript, we describe the computational design of an icosahedral nano-cage that self-assembles from trimeric building blocks. Electron microscopy images of the designed protein expressed in E. coli reveals a homogenous population of icosahedral particles nearly identical to the design model. The particles are stable in 6.7 M guanidine hydrochloride at up to 80 °C, and undergo extremely abrupt, but reversible, disassembly between 2 M and 2.25 M guanidinium thiocyanate. The icosahedron is robust to genetic fusions: one or two copies of superfolder GFP can be fused to each of the 60 subunits to create highly fluorescent standard candles for light microscopy, and a designed protein pentamer can be placed in the center of each of the twenty pentameric faces to potentially gate macromolecule access to the nanocage interior. Such robust designed nanocages should have considerable utility for targeted drug delivery, vaccine design, and synthetic biology.
机译:二十面体和十二面体是柏拉图固体中最大的,二十面体蛋白质结构在生物系统中被广泛地用于包装和运输。重新利用这样的结构-引起了极大的兴趣,例如,针对目标递送和疫苗设计的病毒样颗粒。设计能够自我组装成精确指定的,高度有序的二十面体结构的蛋白质的能力将为新一代蛋白质“容器”打开一扇门,这种“容器”可以展现为各种应用量身定制的特性。在本手稿中,我们描述了由三聚体构件自组装的二十面体纳米笼的计算设计。在大肠杆菌中表达的设计蛋白质的电子显微镜图像显示,二十面体颗粒的均质群体几乎与设计模型相同。颗粒在高达80°C的6.7 M盐酸胍中是稳定的,并且在2 M和2.25 M硫氰酸胍之间发生非常突然但可逆的分解。二十面体对基因融合具有鲁棒性:可以将一两个拷贝的超级文件夹GFP融合到60个亚基中,以创建用于光学显微镜的高荧光标准蜡烛,并且可以将设计好的蛋白五聚体放置在二十个的中心五聚体面对潜在地限制大分子进入纳米笼内部的通道。这种坚固耐用的纳米笼在靶向药物输送,疫苗设计和合成生物学中应具有相当大的实用性。

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