Kamski-Hennekam Evelyn Rose, Huang Jinfeng, Ahmed Rashik, Melacini Giuseppe
Department of Chemistry and Chemical Biology, McMaster University Hamilton ON L8S 4M1 Canada
Department of Biochemistry and Biomedical Sciences, McMaster University Hamilton ON L8S 4M1 Canada.
Chem Sci. 2023 Aug 26;14(36):9933-9942. doi: 10.1039/d3sc03612j. eCollection 2023 Sep 20.
The ability of Adenosine Triphosphate (ATP) to modulate protein solubility establishes a critical link between ATP homeostasis and proteinopathies, such as Parkinson's (PD). The most significant risk factor for PD is aging, and ATP levels decline dramatically with age. However, the mechanism by which ATP interacts with alpha-synuclein (αS), whose aggregation is characteristic of PD, is currently not fully understood, as is ATP's effect on αS aggregation. Here, we use nuclear magnetic resonance spectroscopy as well as fluorescence, dynamic light scattering and microscopy to show that ATP affects multiple species in the αS self-association cascade. The triphosphate moiety of ATP disrupts long-range electrostatic intramolecular contacts in αS monomers to enhance initial aggregation, while also inhibiting the formation of late-stage β-sheet fibrils by disrupting monomer-fibril interactions. These effects are modulated by magnesium ions and early onset PD-related αS mutations, suggesting that loss of the ATP hydrotropic function on αS fibrillization may play a role in PD etiology.
三磷酸腺苷(ATP)调节蛋白质溶解度的能力在ATP稳态与蛋白质病(如帕金森病,PD)之间建立了关键联系。PD最显著的风险因素是衰老,且ATP水平会随着年龄的增长而急剧下降。然而,目前尚不完全清楚ATP与α-突触核蛋白(αS)相互作用的机制,αS的聚集是PD的特征,同样也不清楚ATP对αS聚集的影响。在这里,我们使用核磁共振光谱以及荧光、动态光散射和显微镜技术来表明,ATP会影响αS自聚集级联反应中的多个物种。ATP的三磷酸部分破坏了αS单体中的远程静电分子内接触,以增强初始聚集,同时还通过破坏单体-纤维相互作用来抑制晚期β-折叠纤维的形成。这些效应受到镁离子和早发性PD相关αS突变的调节,这表明ATP对αS纤维化的水溶助长功能丧失可能在PD病因学中起作用。