Department of Biomolecular Nanotechnology, MESA+ Institute for Nanotechnology, University of Twente , 7500 AE Enschede, The Netherlands.
Department of Structure of Macromolecules, Centro Nacional de Biotecnología/CSIC , Cantoblanco, 28049 Madrid, Spain.
J Am Chem Soc. 2017 Feb 1;139(4):1512-1519. doi: 10.1021/jacs.6b10948. Epub 2017 Jan 20.
The packaging of proteins into discrete compartments is an essential feature for cellular efficiency. Inspired by Nature, we harness virus-like assemblies as artificial nanocompartments for enzyme-catalyzed cascade reactions. Using the negative charges of nucleic acid tags, we develop a versatile strategy to promote an efficient noncovalent co-encapsulation of enzymes within a single protein cage of cowpea chlorotic mottle virus (CCMV) at neutral pH. The encapsulation results in stable 21-22 nm sized CCMV-like particles, which is characteristic of an icosahedral T = 1 symmetry. Cryo-EM reconstruction was used to demonstrate the structure of T = 1 assemblies templated by biological soft materials as well as the extra-swelling capacity of these T = 1 capsids. Furthermore, the specific sequence of the DNA tag is capable of operating as a secondary biocatalyst as well as bridging two enzymes for co-encapsulation in a single capsid while maintaining their enzymatic activity. Using CCMV-like particles to mimic nanocompartments can provide valuable insight on the role of biological compartments in enhancing metabolic efficiency.
将蛋白质包装到离散的隔室中是细胞效率的一个重要特征。受自然启发,我们利用病毒样组装体作为人工纳米隔室,用于酶催化级联反应。利用核酸标签的负电荷,我们开发了一种通用策略,以促进在中性 pH 值下,酶在单个豇豆花叶病毒(CCMV)蛋白笼中的有效非共价共包封。包封导致稳定的 21-22nm 大小的 CCMV 样颗粒,其特征为二十面体 T = 1 对称性。冷冻电镜重建用于证明由生物软物质模板化的 T = 1 组装体的结构以及这些 T = 1 衣壳的额外膨胀能力。此外,DNA 标签的特定序列能够作为二次生物催化剂以及在单个衣壳中桥接两个酶以进行共包封,同时保持它们的酶活性。使用 CCMV 样颗粒模拟纳米隔室,可以深入了解生物隔室在提高代谢效率方面的作用。