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Published on: December 20, 2010
A Census of Human Methionine-Rich Prion-like Domain-Containing Proteins
1Department of Molecular Biology and Biochemistry, University of Malaga, 29071 Malaga, Spain.
Abstract:
Methionine-rich prion-like proteins can regulate liquid-liquid phase separation processes in response to stresses. To date, however, very few proteins have been identified as methionine-rich prion-like. Herein, we have performed a computational survey of the human proteome to search for methionine-rich prion-like domains. We present a census of 51 manually curated methionine-rich prion-like proteins. Our results show that these proteins tend to be modular in nature, with molecular sizes significantly greater than those we would expect due to random sampling effects. These proteins also exhibit a remarkably high degree of spatial compaction when compared to average human proteins, even when protein size is accounted for. Computational evidence suggests that such a high degree of compactness might be due to the aggregation of methionine residues, pointing to a potential redox regulation of compactness. Gene ontology and network analyses, performed to shed light on the biological processes in which these proteins might participate, indicate that methionine-rich and non-methionine-rich prion-like proteins share gene ontology terms related to the regulation of transcription and translation but, more interestingly, these analyses also reveal that proteins from the methionine-rich group tend to share more gene ontology terms among them than they do with their non-methionine-rich prion-like counterparts.
Insights
Researchers identified 51 methionine-rich prion-like proteins in the human proteome. These proteins are larger, more compact, and potentially redox-regulated, suggesting unique roles in cellular processes.
Area of Science:
- Biochemistry
- Proteomics
- Computational Biology
Background:
- Methionine-rich prion-like proteins regulate stress-induced liquid-liquid phase separation.
- Few such proteins have been previously identified.
Purpose of the Study:
- To computationally survey the human proteome for methionine-rich prion-like domains.
- To create a census of these proteins and analyze their characteristics and biological roles.
Main Methods:
- Computational survey of the human proteome.
- Manual curation of identified proteins.
- Analysis of protein size, spatial compaction, and aggregation.
- Gene ontology and network analyses.
Main Results:
- A census of 51 manually curated methionine-rich prion-like proteins was established.
- These proteins are significantly larger and more spatially compact than expected.
- Methionine residue aggregation may cause compactness, suggesting potential redox regulation.
- Methionine-rich proteins share more gene ontology terms, indicating specialized biological functions.
Conclusions:
- The human proteome contains a significant number of methionine-rich prion-like proteins with unique structural and functional properties.
- These proteins likely play specialized roles in cellular regulation, potentially influenced by redox state.
- Further research into these proteins could reveal novel mechanisms in stress response and gene regulation.
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