Liepold Lars O, Revis Jennifer, Allen Mark, Oltrogge Luke, Young Mark, Douglas Trevor
Department of Chemistry & Biochemistry, Montana State University, Bozeman, MT 59717, USA.
Phys Biol. 2005 Nov 9;2(4):S166-72. doi: 10.1088/1478-3975/2/4/S11.
Viral capsids act as molecular containers for the encapsulation of genomic nucleic acid. These protein cages can also be used as constrained reaction vessels for packaging and entrapment of synthetic cargos. The icosahedral Cowpea chlorotic mottle virus (CCMV) is an excellent model for understanding the encapsulation and packaging of both genomic and synthetic materials. High-resolution structural information of the CCMV capsid has been invaluable for evaluating structure-function relationships in the assembled capsid but does not allow insight into the capsid dynamics. The dynamic nature of the CCMV capsid might play an important role in the biological function of the virus. The CCMV capsid undergoes a pH and metal ion dependent reversible structural transition where 60 separate pores in the capsid open or close, exposing the interior of the protein cage to the bulk medium. In addition, the highly basic N-terminal domain of the capsid, which is disordered in the crystal structure, plays a significant role in packaging the viral cargo. Interestingly, in limited proteolysis and mass spectrometry experiments the N-terminal domain is the first part of the subunit to be cleaved, confirming its dynamic nature. Based on our fundamental understanding of the capsid dynamics in CCMV, we have utilized these aspects to direct packaging of a range of synthetic materials including drugs and inorganic nanoparticles.
病毒衣壳作为封装基因组核酸的分子容器。这些蛋白质笼也可用作受限反应容器,用于封装和截留合成货物。二十面体豇豆花叶病毒(CCMV)是理解基因组材料和合成材料的封装与包装的极佳模型。CCMV衣壳的高分辨率结构信息对于评估组装衣壳中的结构-功能关系非常宝贵,但无法深入了解衣壳动力学。CCMV衣壳的动态性质可能在病毒的生物学功能中发挥重要作用。CCMV衣壳经历pH和金属离子依赖性的可逆结构转变,衣壳中的60个独立孔打开或关闭,使蛋白质笼的内部暴露于大量介质中。此外,衣壳高度碱性的N端结构域在晶体结构中是无序的,在包装病毒货物中起重要作用。有趣的是,在有限蛋白酶解和质谱实验中,N端结构域是亚基中第一个被切割的部分,证实了其动态性质。基于我们对CCMV衣壳动力学的基本理解,我们利用这些方面来指导一系列合成材料的包装,包括药物和无机纳米颗粒。