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Investigating the Spreading and Toxicity of Prion-like Proteins Using the Metazoan Model Organism C. elegans
Published on: January 8, 2015
Mutations in prion-like domains in hnRNPA2B1 and hnRNPA1 cause multisystem proteinopathy and ALS
Hong Joo Kim1, Nam Chul Kim, Yong-Dong Wang
1Department of Developmental Neurobiology, St Jude Children's Research Hospital, Memphis, Tennessee 38120, USA.
Abstract:
Algorithms designed to identify canonical yeast prions predict that around 250 human proteins, including several RNA-binding proteins associated with neurodegenerative disease, harbour a distinctive prion-like domain (PrLD) enriched in uncharged polar amino acids and glycine. PrLDs in RNA-binding proteins are essential for the assembly of ribonucleoprotein granules. However, the interplay between human PrLD function and disease is not understood. Here we define pathogenic mutations in PrLDs of heterogeneous nuclear ribonucleoproteins (hnRNPs) A2B1 and A1 in families with inherited degeneration affecting muscle, brain, motor neuron and bone, and in one case of familial amyotrophic lateral sclerosis. Wild-type hnRNPA2 (the most abundant isoform of hnRNPA2B1) and hnRNPA1 show an intrinsic tendency to assemble into self-seeding fibrils, which is exacerbated by the disease mutations. Indeed, the pathogenic mutations strengthen a 'steric zipper' motif in the PrLD, which accelerates the formation of self-seeding fibrils that cross-seed polymerization of wild-type hnRNP. Notably, the disease mutations promote excess incorporation of hnRNPA2 and hnRNPA1 into stress granules and drive the formation of cytoplasmic inclusions in animal models that recapitulate the human pathology. Thus, dysregulated polymerization caused by a potent mutant steric zipper motif in a PrLD can initiate degenerative disease. Related proteins with PrLDs should therefore be considered candidates for initiating and perhaps propagating proteinopathies of muscle, brain, motor neuron and bone.
Insights
Mutations in prion-like domains (PrLDs) of hnRNPA1 and hnRNPA2B1 proteins can cause inherited neurodegenerative diseases. These mutations promote protein self-assembly, leading to cellular inclusions and disease pathology.
Area of Science:
- Neuroscience
- Molecular Biology
- Genetics
Background:
- Prion-like domains (PrLDs) are found in human proteins, including RNA-binding proteins implicated in neurodegenerative diseases.
- The role of PrLDs in human disease pathogenesis is not fully understood.
Purpose of the Study:
- To investigate the role of pathogenic mutations in the PrLDs of heterogeneous nuclear ribonucleoproteins (hnRNPs) A2B1 and A1 in inherited degenerative diseases.
- To elucidate the mechanism by which these mutations lead to disease.
Main Methods:
- Identification of pathogenic mutations in hnRNPA2B1 and hnRNPA1 PrLDs in affected families.
- Analysis of the self-assembly properties of wild-type and mutant hnRNPA2 and hnRNPA1 proteins.
- Investigation of protein incorporation into stress granules and formation of cytoplasmic inclusions in animal models.
Main Results:
- Pathogenic mutations were identified in hnRNPA2B1 and hnRNPA1 PrLDs in families with inherited degeneration.
- Wild-type and mutant hnRNPA2 and hnRNPA1 proteins exhibit self-seeding fibril formation, exacerbated by mutations.
- Mutations strengthen a 'steric zipper' motif, accelerating fibril formation and cross-seeding of wild-type hnRNPs.
- Mutant proteins are excessively incorporated into stress granules, forming cytoplasmic inclusions in animal models.
Conclusions:
- Dysregulated protein polymerization, driven by mutant steric zipper motifs within PrLDs, can initiate degenerative diseases.
- Proteins with PrLDs are potential candidates for initiating and propagating proteinopathies affecting muscle, brain, motor neurons, and bone.
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