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OP 蛋白笼:一种多功能的分子递药平台。

The OP Protein Cage: A Versatile Molecular Delivery Platform.

机构信息

Laboratory of Organic Chemistry, ETH Zurich, 8093 Zurich, Switzerland.

Laboratory of Organic Chemistry, ETH Zurich, 8093 Zurich, Switzerland;, Email:

出版信息

Chimia (Aarau). 2021 Apr 28;75(4):323-328. doi: 10.2533/chimia.2021.323.

DOI:10.2533/chimia.2021.323
PMID:33902803
Abstract

Well-defined containers constructed from multiple protein subunits are a unique class of nanomaterial useful in supramolecular chemistry and biology. These protein cages are widespread in nature, where they are responsible for a diversity of important tasks. As such, producing our own designer protein cages, complete with bespoke functionalities, is a promising avenue to new nanodevices, biotechnology and therapies. Herein, we describe how an artificial, computationally designed protein cage can be rationally engineered using supramolecular intuition to produce new functional capsules. Positive supercharging the interior cavity of this porous protein cage enables the efficient encapsulation of oligonucleotides by electrostatically-driven self-assembly. Moreover, the resulting cargo-loaded cages enter mammalian cells and release their cargo, for example siRNA which modulates gene expression. To expand the cargo scope of this proteinaceous container, a higher level of supramolecular complexity can also be introduced. Encapsulation of anionic surfactants affords protein-scaffolded micelles, which are capable of sequestering poorly water-soluble small molecules within their hydrophobic cores. These hybrid particles stably carry bioactive cargo and deliver it intracellularly, thereby increasing potency. Further development of these genetically-encoded materials is ongoing towards specific applications ranging from cell biology to medicine.

摘要

由多个蛋白质亚基构建的定义明确的容器是一类独特的纳米材料,在超分子化学和生物学中非常有用。这些蛋白质笼在自然界中广泛存在,它们负责多种重要任务。因此,生产我们自己的设计蛋白笼,具有定制的功能,是开发新的纳米器件、生物技术和疗法的有前途的途径。在这里,我们描述了如何使用基于超分子的直觉,对人工设计的蛋白质笼进行合理的工程设计,以产生新的功能性胶囊。通过对这个多孔蛋白质笼的内部腔室进行正电荷超充电,可以通过静电驱动的自组装有效地封装寡核苷酸。此外,负载货物的笼进入哺乳动物细胞并释放其货物,例如可以调节基因表达的 siRNA。为了扩大这种蛋白质容器的货物范围,还可以引入更高水平的超分子复杂性。阴离子表面活性剂的封装提供了蛋白质支架的胶束,这些胶束能够将疏水性小分子隔离在其疏水核心内。这些混合颗粒稳定地携带生物活性货物并将其递送到细胞内,从而提高了功效。这些基因编码材料的进一步开发正在进行中,以应用于从细胞生物学到医学的特定领域。

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1
The OP Protein Cage: A Versatile Molecular Delivery Platform.OP 蛋白笼:一种多功能的分子递药平台。
Chimia (Aarau). 2021 Apr 28;75(4):323-328. doi: 10.2533/chimia.2021.323.
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Two-tier supramolecular encapsulation of small molecules in a protein cage.小分子在蛋白质笼中的双层超分子包封。
Nat Commun. 2020 Oct 26;11(1):5410. doi: 10.1038/s41467-020-19112-1.
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Polyelectrolyte Encapsulation and Confinement within Protein Cage-Inspired Nanocompartments.聚电解质在受蛋白质笼启发的纳米隔室中的包封与受限
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Controllable coordination-driven self-assembly: from discrete metallocages to infinite cage-based frameworks.可控配位驱动自组装:从离散金属笼到无限基于笼的框架。
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Diversification of Protein Cage Structure Using Circularly Permuted Subunits.利用环状排列的亚基实现蛋白质笼结构的多样化。
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Rational Engineering of a Designed Protein Cage for siRNA Delivery.理性设计的蛋白笼用于 siRNA 递呈
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Functional Capsules via Subcomponent Self-Assembly.通过亚组分自组装制备功能性胶囊
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Protein cages and synthetic polymers: a fruitful symbiosis for drug delivery applications, bionanotechnology and materials science.蛋白质笼和合成聚合物:药物传递应用、生物纳米技术和材料科学的富有成效的共生体。
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