The Parkinson's Institute, Sunnyvale, California 94085, USA.
J Neurochem. 2012 Jan;120(1):37-45. doi: 10.1111/j.1471-4159.2011.07537.x. Epub 2011 Nov 11.
Mutations in leucine-rich repeat kinase 2 (LRRK2) are the most common cause of familial Parkinson's disease. An amino terminal cluster of constitutively phosphorylated residues, serines 860, 910, 935, 955, and 973, appears to be biologically relevant. Phosphorylation of serines 910 and 935 is regulated in response to LRRK2 kinase activity and is responsible for interaction with 14-3-3 and maintaining LRRK2 in a non-aggregated state. We examined the phosphorylation status of two other constitutive phosphorylation sites, serines 955 and 973. Treatment of LRRK2 expressing cells with the selective LRRK2 inhibitor LRRK2-IN1 revealed that, like Ser910/Ser935, phosphorylation of Ser955 and Ser973 is disrupted by acute inhibition of LRRK2 kinase activity. Additionally, phosphorylation of Ser955 and 973 is disrupted in the context of several Parkinson's disease associated mutations [R1441G/C, Y1699C, and I2020T]. We observed that modification of Ser973 is dependent on the modification of Ser910/Ser935. Ser955Ala and Ser973Ala mutations do not induce relocalization of LRRK2; however, all phosphomutants exhibited similar localization patterns when exposed to LRRK2-IN1. We conclude that the mechanisms of regulation of Ser910/935/955/973 phosphorylation are similar and physiologically relevant. These sites can be utilized as biomarkers for LRRK2 activity as well as starting points for the elucidation of upstream and downstream enzymes that regulate LRRK2.
LRRK2 中的亮氨酸丰富重复激酶 2 (LRRK2) 突变是家族性帕金森病最常见的原因。一个氨基末端的组成性磷酸化残基簇,丝氨酸 860、910、935、955 和 973,似乎具有生物学相关性。丝氨酸 910 和 935 的磷酸化受 LRRK2 激酶活性的调节,负责与 14-3-3 相互作用,并使 LRRK2 保持非聚集状态。我们检查了另外两个组成性磷酸化位点丝氨酸 955 和 973 的磷酸化状态。用选择性 LRRK2 抑制剂 LRRK2-IN1 处理表达 LRRK2 的细胞后发现,与 Ser910/Ser935 一样,LRRK2 激酶活性的急性抑制会破坏 Ser955 和 Ser973 的磷酸化。此外,几种帕金森病相关突变[R1441G/C、Y1699C 和 I2020T]的情况下,Ser955 和 973 的磷酸化也会受到破坏。我们观察到 Ser973 的修饰依赖于 Ser910/Ser935 的修饰。Ser955Ala 和 Ser973Ala 突变不会导致 LRRK2 重新定位;然而,当暴露于 LRRK2-IN1 时,所有磷酸化突变体都表现出相似的定位模式。我们得出结论,Ser910/935/955/973 磷酸化的调节机制是相似的,具有生理相关性。这些位点可以用作 LRRK2 活性的生物标志物,也可以作为阐明调节 LRRK2 的上游和下游酶的起点。