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平衡的静电和结构力引导与 T = 4 病毒成熟相关的大构象变化。

Balanced electrostatic and structural forces guide the large conformational change associated with maturation of T = 4 virus.

机构信息

Department of Molecular Biology, The Scripps Research Institute, La Jolla, California, USA.

出版信息

Biophys J. 2010 Apr 7;98(7):1337-43. doi: 10.1016/j.bpj.2009.12.4283.

Abstract

Nudaurelia capensis omega virus has a well-characterized T = 4 capsid that undergoes a pH-dependent large conformational changes (LCC) and associated auto-catalytic cleavage of the subunit. We examined previously the particle size at different pH values and showed that maturation occurred at pH 5.5. We now characterized the LCC with time-resolved small-angle x-ray scattering and showed that there were three kinetic stages initiated with an incremental drop in pH: 1), a rapid (<10 ms) collapse to an incrementally smaller particle; 2), a continuous size reduction over the next 5 s; and 3), a smaller final transition occurring in 2-3 min. Equilibrium measurements similar to those reported previously, but now more precise, showed that the particle dimension between pH 5.5 and 5 requires the autocatalytic cleavage to achieve its final compact size. A balance of electrostatic and structural forces shapes the energy landscape of the LCC with the latter requiring annealing of portions of the subunit. Equilibrium experiments showed that many intermediate states could be populated with a homogeneous ensemble of particles by carefully controlling the pH. A titration curve for the LCC was generated that showed that the virtual pK(a) (i.e., the composite of all titratable residues that contribute to the LCC) is 5.8.

摘要

南非裸盖菇素 ω 病毒具有特征明确的 T=4 衣壳,其经历依赖 pH 的大构象变化(LCC)和相关的亚基自动催化裂解。我们之前检查了不同 pH 值下的颗粒大小,并表明成熟发生在 pH 5.5。我们现在用时间分辨小角 X 射线散射来描述 LCC,并表明存在三个动力学阶段,起始于 pH 的逐渐下降:1)快速(<10 ms)坍塌成更小的颗粒;2)在接下来的 5 秒内连续减小尺寸;3)在 2-3 分钟内发生较小的最终转变。与之前报道的类似但更精确的平衡测量表明,pH 5.5 到 5 之间的颗粒尺寸需要自动催化裂解来达到其最终紧凑尺寸。静电和结构力的平衡塑造了 LCC 的能量景观,后者需要亚基部分的退火。平衡实验表明,通过仔细控制 pH,可以用均匀的颗粒混合物填充许多中间状态。生成了 LCC 的滴定曲线,表明虚拟 pK(a)(即,对 LCC 有贡献的所有可滴定残基的组合)为 5.8。

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