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Methods to Study Changes in Inherent Protein Aggregation with Age in Caenorhabditis elegans
Published on: November 26, 2017
Loss of mRNA surveillance pathways results in widespread protein aggregation
Nur Hidayah Jamar1,2, Paraskevi Kritsiligkou1, Chris M Grant3
1Division of Molecular and Cellular Function, School of Biological Sciences, Faculty of Biology Medicine and Health, Manchester Academic Health Science Centre, The University of Manchester, Manchester, M13 9PT, UK.
Abstract:
Eukaryotic cells contain translation-associated mRNA surveillance pathways which prevent the production of potentially toxic proteins from aberrant mRNA translation events. We found that loss of mRNA surveillance pathways in mutants deficient in nonsense-mediated decay (NMD), no-go decay (NGD) and nonstop decay (NSD) results in increased protein aggregation. We have isolated and identified the proteins that aggregate and our bioinformatic analyses indicates that increased aggregation of aggregation-prone proteins is a general occurrence in mRNA surveillance mutants, rather than being attributable to specific pathways. The proteins that aggregate in mRNA surveillance mutants tend to be more highly expressed, more abundant and more stable proteins compared with the wider proteome. There is also a strong correlation with the proteins that aggregate in response to nascent protein misfolding and an enrichment for proteins that are substrates of ribosome-associated Hsp70 chaperones, consistent with susceptibility for aggregation primarily occurring during translation/folding. We also identified a significant overlap between the aggregated proteins in mRNA surveillance mutants and ageing yeast cells suggesting that translation-dependent protein aggregation may be a feature of the loss of proteostasis that occurs in aged cell populations.
Insights
Loss of mRNA surveillance pathways, including nonsense-mediated decay (NMD), no-go decay (NGD), and nonstop decay (NSD), leads to increased protein aggregation. This aggregation involves highly expressed proteins and is linked to aging cells, impacting proteostasis.
Area of Science:
- Cell Biology
- Molecular Biology
- Proteostasis
Background:
- Eukaryotic cells possess mRNA surveillance pathways to prevent toxic protein production from aberrant mRNA.
- These pathways include nonsense-mediated decay (NMD), no-go decay (NGD), and nonstop decay (NSD).
Purpose of the Study:
- To investigate the consequences of impaired mRNA surveillance on protein aggregation.
- To identify the specific proteins that aggregate when these pathways are compromised.
Main Methods:
- Analysis of yeast mutants deficient in NMD, NGD, and NSD pathways.
- Protein isolation and identification from aggregated fractions.
- Bioinformatic analysis of aggregated protein characteristics.
- Comparison with protein aggregation in aging yeast cells.
Main Results:
- Loss of mRNA surveillance pathways significantly increases protein aggregation.
- Aggregated proteins are generally highly expressed, abundant, and stable.
- Aggregation susceptibility is linked to nascent protein misfolding and ribosome-associated Hsp70 chaperones.
- A significant overlap exists between aggregated proteins in surveillance mutants and aged cells.
Conclusions:
- Impaired mRNA surveillance broadly promotes protein aggregation, particularly of translationally susceptible proteins.
- Translation-dependent protein aggregation may contribute to the loss of proteostasis observed in cellular aging.
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