Mishra Pushpa, Choudhary Sinjan, Mukherjee Sujoy, Sengupta Disha, Sharma Shobhona, Hosur Ramakrishna V
Department of Chemical Sciences, Tata Institute of Fundamental Research, Mumbai 400005, Maharashtra, India.
UM-DAE Centre for Excellence in Basic Sciences, Mumbai University Campus, Mumbai 400098, Maharashtra, India.
Biochem Biophys Rep. 2015 Mar 30;1:97-107. doi: 10.1016/j.bbrep.2015.03.010. eCollection 2015 May.
The P2 protein in has a high tendency to oligomerize, which seems to drive many of its non-ribosomal functions. During nuclear division of the parasite inside RBC, P2 translocates to the RBC surface as a tetramer. From a systematic study using variety of biophysical techniques, NMR spectral characteristics and relaxation dispersion measurements under different conditions of pH and/or urea concentrations, we deduce that (i) PfP2, an almost entirely helical protein, forms a molten globule monomer at low pH, (ii) at physiological pH, and at micro-molar concentrations, PfP2 is a stable tetramer wherein two dimmers associate sideways with close packing of helices at the interface, and (iii) the molten globule characteristic of the monomer is preserved in the tetramer. This dynamism in the structure of PfP2 may have functional implications since it is known that different kinds of oligomers are transiently formed in the parasite.
疟原虫中的P2蛋白具有高度寡聚化的倾向,这似乎驱动了其许多非核糖体功能。在红细胞内寄生虫进行核分裂期间,P2以四聚体形式转运至红细胞表面。通过使用多种生物物理技术、不同pH值和/或尿素浓度条件下的核磁共振光谱特征及弛豫色散测量进行的系统研究,我们推断:(i)PfP2是一种几乎完全由螺旋结构组成的蛋白质,在低pH值下形成熔球态单体;(ii)在生理pH值和微摩尔浓度下,PfP2是一种稳定的四聚体,其中两个二聚体以螺旋结构在界面处紧密堆积的方式侧向结合;(iii)单体的熔球态特征在四聚体中得以保留。PfP2结构中的这种动态变化可能具有功能意义,因为已知在寄生虫中会短暂形成不同类型的寡聚体。