Multi-omics profiling identifies a deregulated FUS-MAP1B axis in ALS/FTD–associated UBQLN2 mutants

Author:

Strohm Laura1ORCID,Hu Zehan2,Suk Yongwon3,Rühmkorf Alina4,Sternburg Erin3,Gattringer Vanessa1,Riemenschneider Henrick15,Berutti Riccardo6,Graf Elisabeth7,Weishaupt Jochen H8,Brill Monika S910ORCID,Harbauer Angelika B1149ORCID,Dormann Dorothee312ORCID,Dengjel Jörn2,Edbauer Dieter15,Behrends Christian1ORCID

Affiliation:

1. Munich Cluster for Systems Neurology, Medical Faculty, Ludwig-Maximilians-University München, Munich, Germany

2. Department of Biology, University of Fribourg, Fribourg, Switzerland

3. Institute for Molecular Physiology, Johannes Gutenberg-University Mainz, Mainz, Germany

4. Max Planck Institute of Neurobiology, Martinsried, Germany

5. German Center for Neurodegenerative Diseases Munich, Munich, Germany

6. Institute of Human Genetics, Helmholtz Zentrum München, Neuherberg, Germany

7. Institut für Humangenetik, Klinikum Rechts der Isar der Technischen Universität München, Munich, Germany

8. Division of Neurodegenerative Disorders, Department of Neurology, Medical Faculty Mannheim, Mannheim Center for Translational Neurosciences, Heidelberg University, Mannheim, Germany

9. Munich Cluster for Systems Neurology, Munich, Germany

10. Institute of Neuronal Cell Biology, Technische Universität München, Munich, Germany

11. Institute of Neuronal Cell Biology, Technical University of Munich, Munich, Germany

12. Institute of Molecule Biology, Mainz, Germany

Abstract

Ubiquilin-2 (UBQLN2) is a ubiquitin-binding protein that shuttles ubiquitinated proteins to proteasomal and autophagic degradation. UBQLN2 mutations are genetically linked to the neurodegenerative disorders amyotrophic lateral sclerosis and frontotemporal dementia (ALS/FTD). However, it remains elusive how UBQLN2 mutations cause ALS/FTD. Here, we systematically examined proteomic and transcriptomic changes in patient-derived lymphoblasts and CRISPR/Cas9–engineered HeLa cells carrying ALS/FTD UBQLN2 mutations. This analysis revealed a strong up-regulation of the microtubule-associated protein 1B (MAP1B) which was also observed in UBQLN2 knockout cells and primary rodent neurons depleted of UBQLN2, suggesting that a UBQLN2 loss-of-function mechanism is responsible for the elevated MAP1B levels. Consistent with MAP1B’s role in microtubule binding, we detected an increase in total and acetylated tubulin. Furthermore, we uncovered that UBQLN2 mutations result in decreased phosphorylation of MAP1B and of the ALS/FTD–linked fused in sarcoma (FUS) protein at S439 which is critical for regulating FUS-RNA binding and MAP1B protein abundance. Together, our findings point to a deregulated UBQLN2-FUS-MAP1B axis that may link protein homeostasis, RNA metabolism, and cytoskeleton dynamics, three molecular pathomechanisms of ALS/FTD.

Funder

Deutsche Forschungsgemeinschaft

Collaborative Research Center

Publisher

Life Science Alliance, LLC

Subject

Health, Toxicology and Mutagenesis,Plant Science,Biochemistry, Genetics and Molecular Biology (miscellaneous),Ecology

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