ArticleThe Biochemical journal2022
PKC isoforms activate LRRK1 kinase by phosphorylating conserved residues (Ser1064, Ser1074 and Thr1075) within the CORB GTPase domain.
Article in The Biochemical journal, 2022. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 11 papers.
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11 citing papers in PubMed, 12 citations in OpenAlex.
- LRRK2: Molecular Mechanisms in Parkinson's Disease.International journal of molecular sciences · 2026Review
- Circadian transcriptomic disruptions in the hippocampus precede cognitive deficits in a mouse model of Alzheimer's disease.Neural regeneration research · 2026Article
- Preformed fibrils of α-synuclein rapidly activate LRRK2 on early endosomes, driving Rab5 phosphorylation and disrupting endolysosomal and synaptic function.NPJ Parkinson's disease · 2026Article
- Selectivity profiles and substrate recognition of Rab-phosphorylating kinases.The Biochemical journal · 2025Article
- Structural biology of Parkinson's disease-associated leucine-rich repeat kinase 2 (LRRK2).The Journal of biological chemistry · 2025Review
- A Brief Overview of Uveal Melanoma Treatment Methods with a Focus on the Latest Advances.Journal of clinical medicine · 2025Article
- Phosphorylation-driven effector switching of Rab7 and Rab12 by the leucine-rich repeat kinase 1 in mast cells.Frontiers in immunology · 2025Article
- Structure of LRRK1 and mechanisms of autoinhibition and activation.Nature structural & molecular biology · 2023Article
- Structure and regulation of full-length human leucine-rich repeat kinase 1.Nature communications · 2023Article
- Protein kinase C showcases allosteric control: activation of LRRK1.The Biochemical journal · 2023Article
- LRRK1-mediated NDEL1 phosphorylation promotes cilia disassembly via dynein-2-driven retrograde intraflagellar transport.Journal of cell science · 2022Article
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11 authors at 3 institutions in 3 countries.
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Abstract
Leucine-rich-repeat-kinase 1 (LRRK1) and its homolog LRRK2 are multidomain kinases possessing a ROC-CORA-CORB containing GTPase domain and phosphorylate distinct Rab proteins. LRRK1 loss of function mutations cause the bone disorder osteosclerotic metaphyseal dysplasia, whereas LRRK2 missense mutations that enhance kinase activity cause Parkinson's disease. Previous work suggested that LRRK1 but not LRRK2, is activated via a Protein Kinase C (PKC)-dependent mechanism. Here we demonstrate that phosphorylation and activation of LRRK1 in HEK293 cells is blocked by PKC inhibitors including LXS-196 (Darovasertib), a compound that has entered clinical trials. We show multiple PKC isoforms phosphorylate and activate recombinant LRRK1 in a manner reversed by phosphatase treatment. PKCα unexpectedly does not activate LRRK1 by phosphorylating the kinase domain, but instead phosphorylates a cluster of conserved residues (Ser1064, Ser1074 and Thr1075) located within a region of the CORB domain of the GTPase domain. These residues are positioned at the equivalent region of the LRRK2 DK helix reported to stabilize the kinase domain αC-helix in the active conformation. Thr1075 represents an optimal PKC site phosphorylation motif and its mutation to Ala, blocked PKC-mediated activation of LRRK1. A triple Glu mutation of Ser1064/Ser1074/Thr1075 to mimic phosphorylation, enhanced LRRK1 kinase activity ∼3-fold. From analysis of available structures, we postulate that phosphorylation of Ser1064, Ser1074 and Thr1075 activates LRRK1 by promoting interaction and stabilization of the αC-helix on the kinase domain. This study provides new fundamental insights into the mechanism controlling LRRK1 activity and reveals a novel unexpected activation mechanism.
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