The dynamic switch mechanism that leads to activation of LRRK2 is embedded in the DFGψ motif in the kinase domain

被引:58
作者
Schmidt, Sven H. [1 ]
Knape, Matthias J. [1 ]
Boassa, Daniela [2 ,3 ]
Mumdey, Natascha [1 ]
Kornev, Alexandr P. [4 ]
Ellisman, Mark H. [2 ,3 ]
Taylor, Susan S. [4 ]
Herberg, Friedrich W. [1 ]
机构
[1] Univ Kassel, Dept Biochem, D-34132 Kassel, Germany
[2] Univ Calif San Diego, Natl Ctr Microscopy & Imaging Res, La Jolla, CA 92093 USA
[3] Univ Calif San Diego, Dept Neurosci, La Jolla, CA 92093 USA
[4] Univ Calif San Diego, Dept Pharmacol, La Jolla, CA 92093 USA
关键词
kinase architecture; LRRK2; Parkinson's disease; DFG motif; Leucine-rich repeat kinase 2; TAU PHOSPHORYLATION; MUTATION I2020T; PROTEIN; BINDING; LOCALIZATION; ARCHITECTURE; INHIBITION; NEURONS; RAS;
D O I
10.1073/pnas.1900289116
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
Leucine-rich repeat kinase 2 (LRRK2) is a large multidomain protein, and LRRK2 mutants are recognized risk factors for Parkinson's disease (PD). Although the precise mechanisms that control LRRK2 regulation and function are unclear, the importance of the kinase domain is strongly implicated, since 2 of the 5 most common familial LRRK2 mutations (G2019S and I2020T) are localized to the conserved DFGL psi motif in the kinase core, and kinase inhibitors are under development. Combining the concept of regulatory (R) and catalytic (C) spines with kinetic and cell-based assays, we discovered a major regulatory mechanism embedded within the kinase domain and show that the DFG motif serves as a conformational switch that drives LRRK2 activation. LRRK2 is quite unusual in that the highly conserved Phe in the DFG psi motif, which is 1 of the 4 R-spine residues, is replaced with tyrosine (DY(2018)GI). A Y2018F mutation creates a hyperactive phenotype similar to the familial mutation G20195. The hydroxyl moiety of Y2018 thus serves as a "brake" that stabilizes an inactive conformation; simply removing it destroys a key hydrogen-bonding node. Y2018F, like the pathogenic mutant I2020T, spontaneously forms LRRK2-decorated microtubules in cells, while the wild type and G20195 require kinase inhibitors to form filaments. We also explored 3 different mechanisms that create kinase-dead pseudokinases, including D2017A, which further emphasizes the highly synergistic role of key hydrophobic and hydrophilic/charged residues in the assembly of active LRRK2. We thus hypothesize that LRRK2 harbors a classical protein kinase switch mechanism that drives the dynamic activation of full-length LRRK2.
引用
收藏
页码:14979 / 14988
页数:10
相关论文
共 57 条
[1]   Briefly Bound to Activate: Transient Binding of a Second Catalytic Magnesium Activates the Structure and Dynamics of CDK2 Kinase for Catalysis [J].
Bao, Zhao Qin ;
Jacobsen, Douglas M. ;
Young, Matthew A. .
STRUCTURE, 2011, 19 (05) :675-690
[2]   Membrane Localization of LRRK2 Is Associated with Increased Formation of the Highly Active LRRK2 Dimer and Changes in Its Phosphorylation [J].
Berger, Zdenek ;
Smith, Kelsey A. ;
LaVoie, Matthew J. .
BIOCHEMISTRY, 2010, 49 (26) :5511-5523
[3]   GTP binding regulates cellular localization of Parkinson's disease-associated LRRK2 [J].
Blanca Ramirez, Marian ;
Lara Ordonez, Antonio Jesus ;
Fdez, Elena ;
Madero-Perez, Jesus ;
Gonnelli, Adriano ;
Drouyer, Matthieu ;
Chartier-Harlin, Marie-Christine ;
Taymans, Jean-Marc ;
Bubacco, Luigi ;
Greggio, Elisa ;
Hilfiker, Sabine .
HUMAN MOLECULAR GENETICS, 2017, 26 (14) :2747-2767
[4]  
BRADFORD MM, 1976, ANAL BIOCHEM, V72, P248, DOI 10.1016/0003-2697(76)90527-3
[5]   Leucine-rich repeat kinase 2 functionally interacts with microtubules and kinase-dependently modulates cell migration [J].
Caesar, Mareike ;
Zach, Susanne ;
Carlson, Coby B. ;
Brockmann, Kathrin ;
Gasser, Thomas ;
Gillardon, Frank .
NEUROBIOLOGY OF DISEASE, 2013, 54 :280-288
[6]   Identification of a Major Determinant for Serine-Threonine Kinase Phosphoacceptor Specificity [J].
Chen, Catherine ;
Ha, Byung Hak ;
Thevenin, Anastasia F. ;
Lou, Hua Jane ;
Zhang, Rong ;
Yip, Kevin Y. ;
Peterson, Jeffrey R. ;
Gerstein, Mark ;
Kim, Philip M. ;
Filippakopoulos, Panagis ;
Knapp, Stefan ;
Boggon, Titus J. ;
Turk, Benjamin E. .
MOLECULAR CELL, 2014, 53 (01) :140-147
[7]   PAK6 Phosphorylates 14-3-3γ to Regulate Steady State Phosphorylation of LRRK2 [J].
Civiero, Laura ;
Cogo, Susanna ;
Kiekens, Anneleen ;
Morganti, Claudia ;
Tessari, Isabella ;
Lobbestael, Evy ;
Baekelandt, Veerle ;
Taymans, Jean-Marc ;
Chartier-Harlin, Marie-Christine ;
Franchin, Cinzia ;
Arrigoni, Giorgio ;
Lewis, Patrick A. ;
Piccoli, Giovanni ;
Bubacco, Luigi ;
Cookson, Mark P. ;
Pinton, Paolo ;
Greggio, Elisa .
FRONTIERS IN MOLECULAR NEUROSCIENCE, 2017, 10
[8]   Genetic, Structural, and Molecular Insights into the Function of Ras of Complex Proteins Domains [J].
Civiero, Laura ;
Dihanich, Sybille ;
Lewis, Patrick A. ;
Greggio, Elisa .
CHEMISTRY & BIOLOGY, 2014, 21 (07) :809-818
[9]   GTP binding controls complex formation by the human ROCO protein MASL1 [J].
Dihanich, Sybille ;
Civiero, Laura ;
Manzoni, Claudia ;
Mamais, Adamantios ;
Bandopadhyay, Rina ;
Greggio, Elisa ;
Lewis, Patrick A. .
FEBS JOURNAL, 2014, 281 (01) :261-274
[10]   Inhibition of LRRK2 kinase activity leads to dephosphorylation of Ser910/Ser935, disruption of 14-3-3 binding and altered cytoplasmic localization [J].
Dzamko, Nicolas ;
Deak, Maria ;
Hentati, Faycal ;
Reith, Alastair D. ;
Prescott, Alan R. ;
Alessi, Dario R. ;
Nichols, R. Jeremy .
BIOCHEMICAL JOURNAL, 2010, 430 :405-413