化学
小角X射线散射
静水压力
二聚体
圆二色性
血红素
蛋白质亚单位
结晶学
离解(化学)
生物物理学
不稳定性
动力学
散射
生物化学
酶
有机化学
基因
光学
物理
热力学
生物
量子力学
作者
Kristian Le Vay,Benjamin M. Carter,Daniel W. Watkins,T.‐Y. Dora Tang,Valeska P. Ting,Helmut Cölfen,Robert P. Rambo,Andrew J. Smith,J. L. Ross Anderson,Adam W. Perriman
摘要
Controlling the assembly and disassembly of nanoscale protein cages for the capture and internalization of protein or non-proteinaceous components is fundamentally important to a diverse range of bionanotechnological applications. Here, we study the reversible, pressure-induced dissociation of a natural protein nanocage, E. coli bacterioferritin (Bfr), using synchrotron radiation small-angle X-ray scattering (SAXS) and circular dichroism (CD). We demonstrate that hydrostatic pressures of 450 MPa are sufficient to completely dissociate the Bfr 24-mer into protein dimers, and the reversibility and kinetics of the reassembly process can be controlled by selecting appropriate buffer conditions. We also demonstrate that the heme B prosthetic group present at the subunit dimer interface influences the stability and pressure lability of the cage, despite its location being discrete from the interdimer interface that is key to cage assembly. This indicates a major cage-stabilizing role for heme within this family of ferritins.
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