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蛋白质笼用于基于相互作用的生物分子选择性包封。

Protein Cages Engineered for Interaction-Driven Selective Encapsulation of Biomolecules.

机构信息

Department of Chemistry, KAIST, 291 Daehak-ro, Yuseong-gu, Daejeon 34141, Republic of Korea.

出版信息

ACS Appl Mater Interfaces. 2022 Aug 10;14(31):35357-35365. doi: 10.1021/acsami.2c06924. Epub 2022 Aug 2.

Abstract

Hollow protein cages have become attractive drug delivery vehicles with high biocompatibility and precise functional/structural manipulability. However, difficulties in effective cargo loading inside the cages have been limiting further development of protein cage-based drug carriers. Here, we developed a specific interaction-driven encapsulation and cellular delivery strategy for various biomolecules by engineering a porous protein cage. The computationally designed hyperstable mi3 protein cage was circularly permuted to fuse the cancer targeting RGD tripeptide to the cage surface and SpyTag (ST), which forms a covalent bond with SpyCatcher (SC), to the cage inner cavity. SC-fused proteins with different sizes and charges could be stably and actively encapsulated in the engineered nanocage via the ST/SC reaction. Cargo protein encapsulation inside the cage was directly confirmed by cryo-electron microscopy (EM) structure determination. In addition, SC-fused monomeric avidin was added to the nanocage to encapsulate various biotinylated (nonprotein) cargos such as oligonucleotides and the anticancer drug doxorubicin. All cargo molecules loaded onto the engineered mi3 were effectively delivered to cells. This work introduces a highly versatile cargo loading/delivery strategy, where loading/delivery interactions, cargo molecules, and cell targeting moieties can be further varied for optimal cellular drug delivery.

摘要

中空蛋白笼由于具有高生物相容性和精确的功能/结构可操作性,已成为有吸引力的药物传递载体。然而,将有效载荷装入笼内的困难限制了基于蛋白笼的药物载体的进一步发展。在这里,我们通过工程化多孔蛋白笼开发了一种特定的基于相互作用的封装和细胞递药策略,用于各种生物分子。经计算机设计的超稳定 mi3 蛋白笼发生环化移位,将癌症靶向 RGD 三肽融合到笼表面,SpyTag(ST)融合到笼内腔,与 SpyCatcher(SC)形成共价键。通过 ST/SC 反应,不同大小和电荷的 SC 融合蛋白可以稳定且主动地封装在工程纳米笼内。通过冷冻电镜(Cryo-EM)结构测定直接证实了笼内货物蛋白的封装。此外,将 SC 融合的单体亲和素添加到纳米笼中,以封装各种生物素化(非蛋白)货物,如寡核苷酸和抗癌药物阿霉素。加载到工程化 mi3 上的所有货物分子都有效地递送到细胞内。这项工作引入了一种高度通用的货物加载/递药策略,其中加载/递药相互作用、货物分子和细胞靶向部分可以进一步变化,以实现最佳的细胞递药效果。

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