Phosphatidylinositol-3,4,5-trisphosphate interacts with alpha-synuclein and initiates its aggregation and formation of Parkinson’s disease-related fibril polymorphism
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Published:2023-03-20
Issue:5
Volume:145
Page:573-595
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ISSN:0001-6322
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Container-title:Acta Neuropathologica
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language:en
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Short-container-title:Acta Neuropathol
Author:
Choong Chi-Jing, Aguirre César, Kakuda Keita, Beck Goichi, Nakanishi Hiroki, Kimura Yasuyoshi, Shimma Shuichi, Nabekura Kei, Hideshima Makoto, Doi Junko, Yamaguchi Keiichi, Nakajima Kichitaro, Wadayama Tomoya, Hayakawa Hideki, Baba Kousuke, Ogawa Kotaro, Takeuchi Toshihide, Badawy Shaymaa Mohamed Mohamed, Murayama Shigeo, Nagano Seiichi, Goto Yuji, Miyanoiri Yohei, Nagai Yoshitaka, Mochizuki Hideki, Ikenaka KensukeORCID
Abstract
AbstractLipid interaction with α-synuclein (αSyn) has been long implicated in the pathogenesis of Parkinson’s disease (PD). However, it has not been fully determined which lipids are involved in the initiation of αSyn aggregation in PD. Here exploiting genetic understanding associating the loss-of-function mutation in Synaptojanin 1 (SYNJ1), a phosphoinositide phosphatase, with familial PD and analysis of postmortem PD brains, we identified a novel lipid molecule involved in the toxic conversion of αSyn and its relation to PD. We first established a SYNJ1 knockout cell model and found SYNJ1 depletion increases the accumulation of pathological αSyn. Lipidomic analysis revealed SYNJ1 depletion elevates the level of its substrate phosphatidylinositol-3,4,5-trisphosphate (PIP3). We then employed Caenorhabditis elegans model to examine the effect of SYNJ1 defect on the neurotoxicity of αSyn. Mutations in SYNJ1 accelerated the accumulation of αSyn aggregation and induced locomotory defects in the nematodes. These results indicate that functional loss of SYNJ1 promotes the pathological aggregation of αSyn via the dysregulation of its substrate PIP3, leading to the aggravation of αSyn-mediated neurodegeneration. Treatment of cultured cell line and primary neurons with PIP3 itself or with PIP3 phosphatase inhibitor resulted in intracellular formation of αSyn inclusions. Indeed, in vitro protein–lipid overlay assay validated that phosphoinositides, especially PIP3, strongly interact with αSyn. Furthermore, the aggregation assay revealed that PIP3 not only accelerates the fibrillation of αSyn, but also induces the formation of fibrils sharing conformational and biochemical characteristics similar to the fibrils amplified from the brains of PD patients. Notably, the immunohistochemical and lipidomic analyses on postmortem brain of patients with sporadic PD showed increased PIP3 level and its colocalization with αSyn. Taken together, PIP3 dysregulation promotes the pathological aggregation of αSyn and increases the risk of developing PD, and PIP3 represents a potent target for intervention in PD.
Funder
Core Research for Evolutional Science and Technology Brain Mapping by Integrated Neuroethologies for Disease Studies (Brain/MINDS) from Japan Agency for Medical Research and development Japan Society for the Promotion of Science Project Medical Evolution Expedited Tackle (MEET), Osaka University Graduate School of Medicine, and Mitsubishi Tanabe Pharma Corporation Osaka University
Publisher
Springer Science and Business Media LLC
Subject
Cellular and Molecular Neuroscience,Neurology (clinical),Pathology and Forensic Medicine
Reference63 articles.
1. Alcalay RN, Levy OA, Wolf P, Oliva P, Zhang XK, Waters CH et al (2016) SCARB2 variants and glucocerebrosidase activity in Parkinson’s disease. NPJ Parkinsons Dis 2:16004. https://doi.org/10.1038/npjparkd.2016.4 2. Alcalay RN, Mallett V, Vanderperre B, Tavassoly O, Dauvilliers Y, Wu RYJ et al (2019) SMPD1 mutations, activity, and α-synuclein accumulation in Parkinson’s disease. Mov Disord 34:526–535. https://doi.org/10.1002/MDS.27642 3. Araki K, Yagi N, Ikemoto Y, Yagi H, Choong C-J, Hayakawa H et al (2015) Synchrotron FTIR micro-spectroscopy for structural analysis of Lewy bodies in the brain of Parkinson’s disease patients. Sci Rep 5:17625. https://doi.org/10.1038/srep17625 4. Araki K, Yagi N, Nakatani R, Sekiguchi H, So M, Yagi H et al (2016) A small-angle X-ray scattering study of alpha-synuclein from human red blood cells. Sci Rep 6:30473. https://doi.org/10.1038/srep30473 5. Awa S, Suzuki G, Masuda-Suzukake M, Nonaka T, Saito M, Hasegawa M (2022) Phosphorylation of endogenous α-synuclein induced by extracellular seeds initiates at the pre-synaptic region and spreads to the cell body. Sci Rep 12:1163. https://doi.org/10.1038/s41598-022-04780-4
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