4.5 Article

Mutation-dependent aggregation and toxicity in a Drosophila model for UBQLN2-associated ALS

Journal

HUMAN MOLECULAR GENETICS
Volume 27, Issue 2, Pages 322-337

Publisher

OXFORD UNIV PRESS
DOI: 10.1093/hmg/ddx403

Keywords

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Funding

  1. National Cancer Institute [R01CA180765-01]
  2. National Institute for Neurological Disorders and Stroke [1R21NS090313-01A1, 1R21NS101661-01-A1]
  3. ALS Association [Proteostatic regulation by Ubiquilins in ALS]
  4. ALS Association [Drosophila models for ubiquilin-associated ALS] [18-IIA-414]
  5. NIH [NS094921, R01NS081303, R21NS100055, R21NS098379]
  6. Robert Packard Center for ALS at Johns Hopkins
  7. Muscular Dystrophy Association

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Members of the conserved ubiquilin (UBQLN) family of ubiquitin (Ub) chaperones harbor an antipodal UBL (Ub-like)-UBA (Ub-associated) domain arrangement and participate in proteasome and autophagosome-mediated protein degradation. Mutations in a proline-rich-repeat region (PRR) of UBQLN2 cause amyotrophic lateral sclerosis (ALS)/frontotemporal dementia (FTD); however, neither the normal functions of the PRR nor impacts of ALS-associated mutations within it are well understood. In this study, we show that ALS mutations perturb UBQLN2 solubility and folding in a mutation-specific manner. Biochemical impacts of ALS mutations were additive, transferable to UBQLN1, and resulted in enhanced Ub association. A Drosophila melanogaster model for UBQLN2-associated ALS revealed that both wild-type and ALS-mutant UBQLN2 alleles disrupted Ub homeostasis; however, UBQLN2(ALS) mutants exhibited age-dependent aggregation and caused toxicity phenotypes beyond those seen for wild-type UBQLN2. Although UBQLN2 toxicity was not correlated with aggregation in the compound eye, aggregation-prone UBQLN2 mutants elicited climbing defects and neuromuscular junctions (NMJ) abnormalities when expressed in neurons. An UBA domain mutation that abolished Ub binding also diminished UBQLN2 toxicity, implicating Ub binding in the underlying pathomechanism. We propose that ALS-associated mutations in UBQLN2 disrupt folding and that both aggregated species and soluble oligomers instigate neuron autonomous toxicity through interference with Ub homeostasis.

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