Department of Chemistry and Chemical Biology, Indian Institute of Technology (ISM) Dhanbad, Dhanbad, 826004, India.
Chemphyschem. 2023 Nov 2;24(21):e202300306. doi: 10.1002/cphc.202300306. Epub 2023 Aug 31.
Mutations in multi-domain leucine-rich repeat kinase 2 (LRRK2) have been an interest to researchers as these mutations are associated with Parkinson's disease. G2019S mutation in LRRK2 kinase domain leads to the formation of additional hydrogen bonds by S2019 which results in stabilization of the active state of the kinase, thereby increasing kinase activity. Two additional hydrogen bonds of S2019 are reported separately. Here, a mechanistic picture of the formation of additional hydrogen bonds of S2019 with Q1919 (also with E1920) is presented using 'active' Roco4 kinase as a homology model and its relationship with the stabilization of the 'active' G2019S LRRK2 kinase. A conformational flipping of residue Q1919 was found which helped to form stable hydrogen bond with S2019 and made 'active' state more stable in G2019S LRRK2. Two different states were found within the 'active' kinase with respect to the conformational change (flipping) in Q1919. Two doubly-mutated systems, G2019S/Q1919A and G2019S/E1920 K, were studied separately to check the effect of Q1919 and E1920. For both cases, the stable S2 state was not formed, leading to a decrease in kinase activity. These results indicate that both the additional hydrogen bonds of S2019 (with Q1919 and E1920) are necessary to stabilize the active G2019S LRRK2.
LRRK2 多结构域亮氨酸丰富重复激酶中的突变一直是研究人员关注的焦点,因为这些突变与帕金森病有关。LRRK2 激酶结构域中的 G2019S 突变导致 S2019 形成额外的氢键,从而稳定激酶的活性状态,从而增加激酶活性。已经分别报道了 S2019 的另外两个氢键。在这里,使用“活性”Roco4 激酶作为同源模型,提出了 S2019 与 Q1919(也与 E1920)形成额外氢键的机制图,及其与“活性”G2019S LRRK2 激酶稳定的关系。发现残基 Q1919 的构象翻转有助于与 S2019 形成稳定的氢键,并使 G2019S LRRK2 中的“活性”状态更加稳定。在“活性”激酶中,发现了两种不同的状态,这与 Q1919 的构象变化(翻转)有关。分别研究了 G2019S/Q1919A 和 G2019S/E1920K 两个双重突变系统,以检查 Q1919 和 E1920 的影响。对于两种情况,均未形成稳定的 S2 状态,导致激酶活性下降。这些结果表明,S2019 的两个额外氢键(与 Q1919 和 E1920)对于稳定活性 G2019S LRRK2 都是必需的。