The role of TDP-43 mislocalization in amyotrophic lateral sclerosis

被引:258
作者
Suk, Terry R. [1 ,2 ]
Rousseaux, Maxime W. C. [1 ,2 ,3 ,4 ]
机构
[1] Univ Ottawa, Brain & Mind Res Inst, Ottawa, ON, Canada
[2] Univ Ottawa, Dept Cellular & Mol Med, Ottawa, ON, Canada
[3] Eric Poulin Ctr Neuromuscular Dis, Ottawa, ON, Canada
[4] Ottawa Inst Syst Biol, Ottawa, ON, Canada
关键词
ALS; TDP-43; Mislocalization; Pathology; Nucleocytoplasmic shuttling; DNA-BINDING PROTEIN; FRONTOTEMPORAL LOBAR DEGENERATION; NUCLEAR FACTOR TDP-43; 43 KDA TDP-43; TARDBP GENE-MUTATIONS; MOTOR-NEURON DISEASE; MESSENGER-RNA; AXONAL-TRANSPORT; REPEAT EXPANSION; REGULATES TDP-43;
D O I
10.1186/s13024-020-00397-1
中图分类号
Q189 [神经科学];
学科分类号
071006 ;
摘要
Since its discovery as a primary component in cytoplasmic aggregates in post-mortem tissue of patients with Amyotrophic Lateral Sclerosis (ALS), TAR DNA Binding Protein 43 kDa (TDP-43) has remained a central focus to understand the disease. TDP-43 links both familial and sporadic forms of ALS as mutations are causative for disease and cytoplasmic aggregates are a hallmark of nearly all cases, regardless of TDP-43 mutational status. Research has focused on the formation and consequences of cytosolic protein aggregates as drivers of ALS pathology through both gain- and loss-of-function mechanisms. Not only does aggregation sequester the normal function of TDP-43, but these aggregates also actively block normal cellular processes inevitably leading to cellular demise in a short time span. Although there may be some benefit to therapeutically targeting TDP-43 aggregation, this step may be too late in disease development to have substantial therapeutic benefit. However, TDP-43 pathology appears to be tightly linked with its mislocalization from the nucleus to the cytoplasm, making it difficult to decouple the consequences of nuclear-to-cytoplasmic mislocalization from protein aggregation. Studies focusing on the effects of TDP-43 mislocalization have demonstrated both gain- and loss-of-function consequences including altered splicing regulation, over responsiveness to cellular stressors, increases in DNA damage, and transcriptome-wide changes. Additionally, mutations inTARDBPconfer a baseline increase in cytoplasmic TDP-43 thus suggesting that small changes in the subcellular localization of TDP-43 could in fact drive early pathology. In this review, we bring forth the theme of protein mislocalization as a key mechanism underlying ALS, by highlighting the importance of maintaining subcellular proteostasis along with the gain- and loss-of-functional consequences when TDP-43 localization is dysregulated. Additional research, focusing on early events in TDP-43 pathogenesis (i.e. to the protein mislocalization stage) will provide insight into disease mechanisms, therapeutic targets, and novel biomarkers for ALS.
引用
收藏
页数:16
相关论文
共 288 条
[91]   Pathological 43-kDa Transactivation Response DNA-Binding Protein in Older Adults With and Without Severe Mental Illness [J].
Geser, Felix ;
Robinson, John L. ;
Malunda, Joseph A. ;
Xie, Sharon X. ;
Clark, Chris M. ;
Kwong, Linda K. ;
Moberg, Paul J. ;
Moore, Erika M. ;
Van Deerlin, Vivianna M. ;
Lee, Virginia M-Y ;
Arnold, Steven E. ;
Trojanowski, John Q. .
ARCHIVES OF NEUROLOGY, 2010, 67 (10) :1238-1250
[92]   Plasma Concentration of the Neurofilament Light Protein (NFL) is a Biomarker of CNS Injury in HIV Infection: A Cross-Sectional Study [J].
Gisslen, Magnus ;
Price, Richard W. ;
Andreasson, Ulf ;
Norgren, Niklas ;
Nilsson, Staffan ;
Hagberg, Lars ;
Fuchs, Dietmar ;
Spudich, Serena ;
Blennow, Kaj ;
Zetterberg, Henrik .
EBIOMEDICINE, 2016, 3 :135-140
[93]   TDP-43 A315T mutation in familial motor neuron disease [J].
Gitcho, Michael A. ;
Baloh, Robert H. ;
Chakraverty, Sumi ;
Mayo, Kevin ;
Norton, Joanne B. ;
Levitch, Denise ;
Hatanpaa, Kimmo J. ;
White, Charles L., III ;
Bigio, Eileen H. ;
Caselli, Richard ;
Baker, Matt ;
Al-Lozi, Muhammad T. ;
Morris, John C. ;
Pestronk, Alan ;
Rademakers, Rosa ;
Goate, Alison M. ;
Cairns, Nigel J. .
ANNALS OF NEUROLOGY, 2008, 63 (04) :535-538
[94]   Spatial transcriptomics identifies spatially dysregulated expression of GRM3 and USP47 in amyotrophic lateral sclerosis [J].
Gregory, J. M. ;
McDade, K. ;
Livesey, M. R. ;
Croy, I ;
de Proce, S. Marion ;
Aitman, T. ;
Chandran, S. ;
Smith, C. .
NEUROPATHOLOGY AND APPLIED NEUROBIOLOGY, 2020, 46 (05) :441-457
[95]   Clinical and Molecular Aspects of Senataxin Mutations in Amyotrophic Lateral Sclerosis 4 [J].
Grunseich, Christopher ;
Patankar, Aneesh ;
Amaya, Joshua ;
Watts, Jason A. ;
Li, Dongjun ;
Ramirez, Prisila ;
Schindler, Alice B. ;
Fischbeck, Kenneth H. ;
Cheung, Vivian G. .
ANNALS OF NEUROLOGY, 2020, 87 (04) :547-555
[96]   Amyotrophic lateral sclerosis-associated TDP-43 mutation Q331K prevents nuclear translocation of XRCC4-DNA ligase 4 complex and is linked to genome damage-mediated neuronal apoptosis [J].
Guerrero, Erika N. ;
Mitra, Joy ;
Wang, Haibo ;
Rangaswamy, Suganya ;
Hegde, Pavana M. ;
Basu, Priyadarshini ;
Rao, K. S. ;
Hegde, Muralidhar L. .
HUMAN MOLECULAR GENETICS, 2019, 28 (15) :2459-2476
[97]   Nuclear-Import Receptors Reverse Aberrant Phase Transitions of RNA-Binding Proteins with Prion-like Domains [J].
Guo, Lin ;
Kim, Hong Joo ;
Wang, Hejia ;
Monaghan, John ;
Freyermuth, Fernande ;
Sung, Julie C. ;
O'Donovan, Kevin ;
Fare, Charlotte M. ;
Diaz, Zamia ;
Singh, Nikita ;
Zhang, Zi Chao ;
Coughlin, Maura ;
Sweeny, Elizabeth A. ;
DeSantis, Morgan E. ;
Jackrel, Meredith E. ;
Rodell, Christopher B. ;
Burdick, Jason A. ;
King, Oliver D. ;
Gitler, Aaron D. ;
Lagier-Tourenne, Clotilde ;
Pandey, Udai Bhan ;
Chook, Yuh Min ;
Taylor, J. Paul ;
Shorter, James .
CELL, 2018, 173 (03) :677-+
[98]   Amyotrophic lateral sclerosis [J].
Hardiman, Orla ;
Al-Chalabi, Ammar ;
Chio, Adriano ;
Corr, Emma M. ;
Logroscino, Giancarlo ;
Robberecht, Wim ;
Shaw, Pamela J. ;
Simmons, Zachary ;
van den Berg, Leonard H. .
NATURE REVIEWS DISEASE PRIMERS, 2017, 3
[99]   Phosphorylated TDP-43 in frontotemporal lobar degeneration and amyotrophic lateral sclerosis [J].
Hasegawa, Masato ;
Ara, Tetsuaki ;
Nonaka, Takashi ;
Kametani, Fuyuki ;
Yoshida, Mari ;
Hashizume, Yoshio ;
Beach, Thomas G. ;
Buratti, Emanuele ;
Baralle, Francisco ;
Morita, Mitsuya ;
Nakano, Imaharu ;
Oda, Tatsuro ;
Tsuchiya, Kuniaki ;
Akiyama, Haruhiko .
ANNALS OF NEUROLOGY, 2008, 64 (01) :60-70
[100]   Modeling cell-autonomous motor neuron phenotypes in ALS using iPSCs [J].
Hawrot, James ;
Imhof, Sophie ;
Wainger, Brian J. .
NEUROBIOLOGY OF DISEASE, 2020, 134