Loss of mitochondrial Ca2+ response and CaMKII/ERK activation by LRRK2R1441G mutation correlate with impaired depolarization-induced mitophagy

被引:3
作者
Chang, Eunice Eun-Seo [1 ]
Liu, Huifang [1 ]
Choi, Zoe Yuen-Kiu [1 ]
Malki, Yasine [5 ]
Zhang, Steffi Xi-Yue [5 ]
Pang, Shirley Yin-Yu [5 ]
Kung, Michelle Hiu-Wai [5 ]
Ramsden, David B. [6 ]
Ho, Shu-Leong [5 ]
Ho, Philip Wing-Lok [1 ,2 ,3 ,4 ]
机构
[1] Hong Kong Polytech Univ, Fac Hlth & Social Sci, Dept Rehabil Sci, Hong Kong, Peoples R China
[2] Hong Kong Polytech Univ, PolyU Acad Interdisciplinary Res, Mental Hlth Res Ctr, Hong Kong, Peoples R China
[3] Hong Kong Polytech Univ, Res Inst Smart Ageing, Hong Kong, Peoples R China
[4] City Univ Hong Kong, State Key Lab Marine Pollut, Hong Kong, Peoples R China
[5] Univ Hong Kong, Sch Clin Med, Dept Med, Div Neurol, Hong Kong, Peoples R China
[6] Univ Birmingham, Inst Metab & Syst Res, Birmingham, England
关键词
Parkinson disease; LRRK2; mutation; Mitophagy; Calcium-dependent pathways; Mitochondrial dysfunction; Cellular stress response; NCLX; PERMEABILITY TRANSITION PORE; PARKINSONS-DISEASE; CALCIUM IMBALANCE; ALPHA-SYNUCLEIN; CELL-DEATH; KINASE; LRRK2; PHOSPHORYLATION; AUTOPHAGY; ACCUMULATION;
D O I
10.1186/s12964-024-01844-y
中图分类号
Q2 [细胞生物学];
学科分类号
071009 ; 090102 ;
摘要
Background Stress-induced activation of ERK/Drp1 serves as a checkpoint in the segregation of damaged mitochondria for autophagic clearance (mitophagy). Elevated cytosolic calcium (Ca2+) activates ERK, which is pivotal to mitophagy initiation. This process is altered in Parkinson's disease (PD) with mutations in leucine-rich repeat kinase 2 (LRRK2), potentially contributing to mitochondrial dysfunction. Pathogenic LRRK2 mutation is linked to dysregulated cellular Ca2+ signaling but the mechanism involved remains unclear. Methods Mitochondrial damages lead to membrane depolarization. To investigate how LRRK2 mutation impairs cellular response to mitochondrial damages, mitochondrial depolarization was induced by artificial uncoupler (FCCP) in wild-type (WT) and LRRK2(R1441G) mutant knockin (KI) mouse embryonic fibroblasts (MEFs). The resultant cytosolic Ca2+ flux was assessed using live-cell Ca2+ imaging. The role of mitochondria in FCCP-induced cytosolic Ca2+ surge was confirmed by co-treatment with the mitochondrial sodium-calcium exchanger (NCLX) inhibitor. Cellular mitochondrial quality and function were evaluated by Seahorse (TM) real-time cell metabolic analysis, flow cytometry, and confocal imaging. Mitochondrial morphology was visualized using transmission electron microscopy (TEM). Activation (phosphorylation) of stress response pathways were assessed by immunoblotting. Results Acute mitochondrial depolarization induced by FCCP resulted in an immediate cytosolic Ca2+ surge in WT MEFs, mediated predominantly via mitochondrial NCLX. However, such cytosolic Ca2+ response was abolished in LRRK2 KI MEFs. This loss of response in KI was associated with impaired activation of Ca2+/calmodulin-dependent kinase II (CaMKII) and MEK, the two upstream kinases of ERK. Treatment of LRRK2 inhibitor did not rescue this phenotype indicating that it was not caused by mutant LRRK2 kinase hyperactivity. KI MEFs exhibited swollen mitochondria with distorted cristae, depolarized mitochondrial membrane potential, and reduced mitochondrial Ca2+ store and mitochondrial calcium uniporter (MCU) expression. These mutant cells also exhibited lower cellular ATP: ADP ratio albeit higher basal respiration than WT, indicating compensation for mitochondrial dysfunction. These defects may hinder cellular stress response and signals to Drp1-mediated mitophagy, as evident by impaired mitochondrial clearance in the mutant. Conclusions Pathogenic LRRK2(R1441G) mutation abolished mitochondrial depolarization-induced Ca2+ response and impaired the basal mitochondrial clearance. Inherent defects from LRRK2 mutation have weakened the cellular ability to scavenge damaged mitochondria, which may further aggravate mitochondrial dysfunction and neurodegeneration in PD.
引用
收藏
页数:19
相关论文
共 81 条
[1]   LRRK2 regulates autophagic activity and localizes to specific membrane microdomains in a novel human genomic reporter cellular model [J].
Alegre-Abarrategui, Javier ;
Christian, Helen ;
Lufino, Michele M. P. ;
Mutihac, Ruxandra ;
Venda, Lara Lourenco ;
Ansorge, Olaf ;
Wade-Martins, Richard .
HUMAN MOLECULAR GENETICS, 2009, 18 (21) :4022-4034
[2]   ERK1/2-mediated activation of DRP1 regulates mitochondrial dynamics and apoptosis in chondrocytes [J].
Ansari, M. Y. ;
Novak, K. ;
Haqqi, T. M. .
OSTEOARTHRITIS AND CARTILAGE, 2022, 30 (02) :315-328
[3]   Integrative genomics identifies MCU as an essential component of the mitochondrial calcium uniporter [J].
Baughman, Joshua M. ;
Perocchi, Fabiana ;
Girgis, Hany S. ;
Plovanich, Molly ;
Belcher-Timme, Casey A. ;
Sancak, Yasemin ;
Bao, X. Robert ;
Strittmatter, Laura ;
Goldberger, Olga ;
Bogorad, Roman L. ;
Koteliansky, Victor ;
Mootha, Vamsi K. .
NATURE, 2011, 476 (7360) :341-U111
[4]   Calcium Elevation in Mitochondria Is the Main Ca2+ Requirement for Mitochondrial Permeability Transition Pore (mPTP) Opening [J].
Baumgartner, Heidi K. ;
Gerasimenko, Julia V. ;
Thorne, Christopher ;
Ferdek, Pawel ;
Pozzan, Tullio ;
Tepikin, Alexei V. ;
Petersen, Ole H. ;
Sutton, Robert ;
Watson, Alastair J. M. ;
Gerasimenko, Oleg V. .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2009, 284 (31) :20796-20803
[5]   CaM Kinase: Still Inspiring at 40 [J].
Bayer, K. Ulrich ;
Schulman, Howard .
NEURON, 2019, 103 (03) :380-394
[6]   Increased LRRK2 kinase activity alters neuronal autophagy by disrupting the axonal transport of autophagosomes [J].
Boecker, C. Alexander ;
Goldsmith, Juliet ;
Dou, Dan ;
Cajka, Gregory G. ;
Holzbaur, Erika L. F. .
CURRENT BIOLOGY, 2021, 31 (10) :2140-+
[7]   The regulation of autophagy by calcium signals: Do we have a consensus? [J].
Bootman, Martin D. ;
Chehab, Tala ;
Bultynck, Geert ;
Parys, Jan B. ;
Rietdorf, Katja .
CELL CALCIUM, 2018, 70 :32-46
[8]   NCLX: The mitochondrial sodium calcium exchanger [J].
Boyman, Liron ;
Williams, George S. B. ;
Khananshvili, Daniel ;
Sekler, Israel ;
Lederer, W. J. .
JOURNAL OF MOLECULAR AND CELLULAR CARDIOLOGY, 2013, 59 :205-213
[9]   Amentoflavone protects dopaminergic neurons in MPTP-induced Parkinson's disease model mice through PI3K/Akt and ERK signaling pathways [J].
Cao, Qin ;
Qin, Liyue ;
Huang, Fei ;
Wang, Xiaoshuang ;
Yang, Liu ;
Shi, Hailian ;
Wu, Hui ;
Zhang, Beibei ;
Chen, Ziyu ;
Wu, Xiaojun .
TOXICOLOGY AND APPLIED PHARMACOLOGY, 2017, 319 :80-90
[10]   Essential Regulation of Cell Bioenergetics by Constitutive InsP3 Receptor Ca2+ Transfer to Mitochondria [J].
Cardenas, Cesar ;
Miller, Russell A. ;
Smith, Ian ;
Bui, Thi ;
Molgo, Jordi ;
Mueller, Marioly ;
Vais, Horia ;
Cheung, King-Ho ;
Yang, Jun ;
Parker, Ian ;
Thompson, Craig B. ;
Birnbaum, Morris J. ;
Hallows, Kenneth R. ;
Foskett, J. Kevin .
CELL, 2010, 142 (02) :270-283