Gaspar Ricardo, Lund Mikael, Sparr Emma, Linse Sara
Department of Physical Chemistry, Lund University, Lund, Sweden.
Department of Biochemistry and Structural Biology, Lund University, Lund, Sweden.
QRB Discov. 2020 Aug 6;1:e2. doi: 10.1017/qrd.2020.7. eCollection 2020.
α-Synuclein (α-syn) is an intrinsically disordered protein with a highly asymmetric charge distribution, whose aggregation is linked to Parkinson's disease. The effect of ionic strength was investigated at mildly acidic pH (5.5) in the presence of catalytic surfaces in the form of α-syn seeds or anionic lipid vesicles using thioflavin T fluorescence measurements. Similar trends were observed with both surfaces: increasing ionic strength reduced the rate of α-syn aggregation although the surfaces as well as α-syn have a net negative charge at pH 5.5. This anomalous salt dependence implies that short-range attractive electrostatic interactions are critical for secondary nucleation as well as heterogeneous primary nucleation. Such interactions were confirmed in Monte Carlo simulations of α-syn monomers interacting with surface-grafted C-terminal tails, and found to be weakened in the presence of salt. Thus, nucleation of α-syn aggregation depends critically on an attractive electrostatic component that is screened by salt to the extent that it outweighs the screening of the long-range repulsion between negatively charged monomers and negative surfaces. Interactions between the positively charged N-termini of α-syn monomers on the one hand, and the negatively C-termini of α-syn on fibrils or vesicles surfaces on the other hand, are thus critical for nucleation.
α-突触核蛋白(α-syn)是一种内在无序的蛋白质,电荷分布高度不对称,其聚集与帕金森病有关。在轻度酸性pH(5.5)条件下,以α-syn种子或阴离子脂质囊泡形式存在的催化表面存在时,使用硫黄素T荧光测量法研究了离子强度的影响。在两种表面上都观察到了类似的趋势:尽管在pH 5.5时表面以及α-syn都带净负电荷,但增加离子强度会降低α-syn聚集的速率。这种异常的盐依赖性意味着短程吸引性静电相互作用对于二次成核以及异质一次成核至关重要。在α-syn单体与表面接枝的C末端尾巴相互作用的蒙特卡罗模拟中证实了这种相互作用,并且发现在有盐存在的情况下这种相互作用会减弱。因此,α-syn聚集的成核关键取决于一种有吸引力的静电成分,盐对其屏蔽的程度超过了对带负电荷的单体与负表面之间长程排斥的屏蔽。因此,一方面α-syn单体带正电荷的N末端与另一方面原纤维或囊泡表面上α-syn带负电荷的C末端之间的相互作用对于成核至关重要。