Literature DB >> 34914695

Mutations in LRRK2 linked to Parkinson disease sequester Rab8a to damaged lysosomes and regulate transferrin-mediated iron uptake in microglia.

Adamantios Mamais1,2, Jillian H Kluss1, Luis Bonet-Ponce1, Natalie Landeck1, Rebekah G Langston1, Nathan Smith3, Alexandra Beilina1, Alice Kaganovich1, Manik C Ghosh4, Laura Pellegrini5, Ravindran Kumaran1, Ioannis Papazoglou6, George R Heaton1, Rina Bandopadhyay7, Nunziata Maio4, Changyoun Kim8, Matthew J LaVoie2, David C Gershlick9, Mark R Cookson1.   

Abstract

Mutations in leucine-rich repeat kinase 2 (LRRK2) cause autosomal dominant Parkinson disease (PD), while polymorphic LRRK2 variants are associated with sporadic PD. PD-linked mutations increase LRRK2 kinase activity and induce neurotoxicity in vitro and in vivo. The small GTPase Rab8a is a LRRK2 kinase substrate and is involved in receptor-mediated recycling and endocytic trafficking of transferrin, but the effect of PD-linked LRRK2 mutations on the function of Rab8a is poorly understood. Here, we show that gain-of-function mutations in LRRK2 induce sequestration of endogenous Rab8a to lysosomes in overexpression cell models, while pharmacological inhibition of LRRK2 kinase activity reverses this phenotype. Furthermore, we show that LRRK2 mutations drive association of endocytosed transferrin with Rab8a-positive lysosomes. LRRK2 has been nominated as an integral part of cellular responses downstream of proinflammatory signals and is activated in microglia in postmortem PD tissue. Here, we show that iPSC-derived microglia from patients carrying the most common LRRK2 mutation, G2019S, mistraffic transferrin to lysosomes proximal to the nucleus in proinflammatory conditions. Furthermore, G2019S knock-in mice show a significant increase in iron deposition in microglia following intrastriatal LPS injection compared to wild-type mice, accompanied by striatal accumulation of ferritin. Our data support a role of LRRK2 in modulating iron uptake and storage in response to proinflammatory stimuli in microglia.

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Year:  2021        PMID: 34914695      PMCID: PMC8675653          DOI: 10.1371/journal.pbio.3001480

Source DB:  PubMed          Journal:  PLoS Biol        ISSN: 1544-9173            Impact factor:   8.029


  75 in total

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Journal:  Proc Natl Acad Sci U S A       Date:  2014-12-22       Impact factor: 11.205

4.  Decreased ferritin levels in brain in Parkinson's disease.

Authors:  D T Dexter; A Carayon; M Vidailhet; M Ruberg; F Agid; Y Agid; A J Lees; F R Wells; P Jenner; C D Marsden
Journal:  J Neurochem       Date:  1990-07       Impact factor: 5.372

5.  Mitochondrial quality control mediated by PINK1 and PRKN: links to iron metabolism and tumor immunity.

Authors:  Rui Kang; Yangchun Xie; Herbert J Zeh; Daniel J Klionsky; Daolin Tang
Journal:  Autophagy       Date:  2018-10-08       Impact factor: 16.016

6.  Role and mechanism of microglial activation in iron-induced selective and progressive dopaminergic neurodegeneration.

Authors:  Wei Zhang; Zhao-fen Yan; Jun-hua Gao; Li Sun; Xi-yan Huang; Zhuo Liu; Shu-yang Yu; Chen-Jie Cao; Li-jun Zuo; Ze-Jie Chen; Yang Hu; Fang Wang; Jau-shyong Hong; Xiao-min Wang
Journal:  Mol Neurobiol       Date:  2013-11-26       Impact factor: 5.590

7.  Quantitative Susceptibility Mapping in Parkinson's Disease.

Authors:  Christian Langkammer; Lukas Pirpamer; Stephan Seiler; Andreas Deistung; Ferdinand Schweser; Sebastian Franthal; Nina Homayoon; Petra Katschnig-Winter; Mariella Koegl-Wallner; Tamara Pendl; Eva Maria Stoegerer; Karoline Wenzel; Franz Fazekas; Stefan Ropele; Jürgen Rainer Reichenbach; Reinhold Schmidt; Petra Schwingenschuh
Journal:  PLoS One       Date:  2016-09-06       Impact factor: 3.240

8.  LRRK2 levels in immune cells are increased in Parkinson's disease.

Authors:  D A Cook; G T Kannarkat; A F Cintron; Laura M Butkovich; Kyle B Fraser; J Chang; N Grigoryan; S A Factor; Andrew B West; J M Boss; M G Tansey
Journal:  NPJ Parkinsons Dis       Date:  2017-03-28

9.  Preclinical modeling of chronic inhibition of the Parkinson's disease associated kinase LRRK2 reveals altered function of the endolysosomal system in vivo.

Authors:  Jillian H Kluss; Melissa Conti Mazza; Yan Li; Claudia Manzoni; Patrick A Lewis; Mark R Cookson; Adamantios Mamais
Journal:  Mol Neurodegener       Date:  2021-03-19       Impact factor: 14.195

10.  LRRK2 and its substrate Rab GTPases are sequentially targeted onto stressed lysosomes and maintain their homeostasis.

Authors:  Tomoya Eguchi; Tomoki Kuwahara; Maria Sakurai; Tadayuki Komori; Tetta Fujimoto; Genta Ito; Shin-Ichiro Yoshimura; Akihiro Harada; Mitsunori Fukuda; Masato Koike; Takeshi Iwatsubo
Journal:  Proc Natl Acad Sci U S A       Date:  2018-09-12       Impact factor: 11.205

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6.  Correction: Mutations in LRRK2 linked to Parkinson disease sequester Rab8a to damaged lysosomes and regulate transferrin-mediated iron uptake in microglia.

Authors:  Adamantios Mamais; Jillian H Kluss; Luis Bonet-Ponce; Natalie Landeck; Rebekah G Langston; Nathan Smith; Alexandra Beilina; Alice Kaganovich; Manik C Ghosh; Laura Pellegrini; Ravindran Kumaran; Ioannis Papazoglou; George R Heaton; Kirsten Harvey; Rina Bandopadhyay; Nunziata Maio; Changyoun Kim; Matthew J LaVoie; David C Gershlick; Mark R Cookson
Journal:  PLoS Biol       Date:  2022-05-04       Impact factor: 8.029

7.  A Phosphosite Mutant Approach on LRRK2 Links Phosphorylation and Dephosphorylation to Protective and Deleterious Markers, Respectively.

Authors:  Antoine Marchand; Alessia Sarchione; Panagiotis S Athanasopoulos; Hélène Bauderlique-Le Roy; Liesel Goveas; Romain Magnez; Matthieu Drouyer; Marco Emanuele; Franz Y Ho; Maxime Liberelle; Patricia Melnyk; Nicolas Lebègue; Xavier Thuru; R Jeremy Nichols; Elisa Greggio; Arjan Kortholt; Thierry Galli; Marie-Christine Chartier-Harlin; Jean-Marc Taymans
Journal:  Cells       Date:  2022-03-17       Impact factor: 6.600

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