Loss of TDP‐43 oligomerization or RNA binding elicits distinct aggregation patterns

Author:

Pérez‐Berlanga Manuela1ORCID,Wiersma Vera I1ORCID,Zbinden Aurélie1ORCID,De Vos Laura1ORCID,Wagner Ulrich2,Foglieni Chiara3,Mallona Izaskun1ORCID,Betz Katharina M1ORCID,Cléry Antoine4ORCID,Weber Julien1,Guo Zhongning1,Rigort Ruben1ORCID,de Rossi Pierre1ORCID,Manglunia Ruchi1,Tantardini Elena1,Sahadevan Sonu1,Stach Oliver5,Hruska‐Plochan Marian1ORCID,Allain Frederic H‐T4,Paganetti Paolo3ORCID,Polymenidou Magdalini1ORCID

Affiliation:

1. Department of Quantitative Biomedicine University of Zurich Zurich Switzerland

2. Department of Pathology and Molecular Pathology, University Hospital Zurich University of Zurich Zurich Switzerland

3. Neurodegeneration Research Group, Laboratory for Biomedical Neurosciences, Neurocenter of Southern Switzerland, Ente Ospedaliero Cantonale Bellinzona Switzerland

4. Department of Biology, Institute of Biochemistry ETH Zurich Zurich Switzerland

5. Department of Biochemistry University of Zurich Zurich Switzerland

Abstract

AbstractAggregation of the RNA‐binding protein TAR DNA‐binding protein 43 (TDP‐43) is the key neuropathological feature of neurodegenerative diseases, including amyotrophic lateral sclerosis (ALS) and frontotemporal lobar degeneration (FTLD). In physiological conditions, TDP‐43 is predominantly nuclear, forms oligomers, and is contained in biomolecular condensates assembled by liquid–liquid phase separation (LLPS). In disease, TDP‐43 forms cytoplasmic or intranuclear inclusions. How TDP‐43 transitions from physiological to pathological states remains poorly understood. Using a variety of cellular systems to express structure‐based TDP‐43 variants, including human neurons and cell lines with near‐physiological expression levels, we show that oligomerization and RNA binding govern TDP‐43 stability, splicing functionality, LLPS, and subcellular localization. Importantly, our data reveal that TDP‐43 oligomerization is modulated by RNA binding. By mimicking the impaired proteasomal activity observed in ALS/FTLD patients, we found that monomeric TDP‐43 forms inclusions in the cytoplasm, whereas its RNA binding‐deficient counterpart aggregated in the nucleus. These differentially localized aggregates emerged via distinct pathways: LLPS‐driven aggregation in the nucleus and aggresome‐dependent inclusion formation in the cytoplasm. Therefore, our work unravels the origins of heterogeneous pathological species reminiscent of those occurring in TDP‐43 proteinopathy patients.

Funder

Amyotrophic Lateral Sclerosis Association

Nederlandse Organisatie voor Wetenschappelijk Onderzoek

Federation of European Biochemical Societies

Stavros Niarchos Foundation

Stiftung Synapsis - Alzheimer Forschung Schweiz AFS

Universität Zürich

Publisher

Springer Science and Business Media LLC

Subject

General Immunology and Microbiology,General Biochemistry, Genetics and Molecular Biology,Molecular Biology,General Neuroscience

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