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De novo Identification of Actively Translated Open Reading Frames with Ribosome Profiling Data
Published on: February 18, 2022
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Analysis of computational codon usage models and their association with translationally slow codons
Gabriel Wright1, Anabel Rodriguez2, Jun Li3
1Department of Computer Science & Engineering, University of Notre Dame, Notre Dame, IN, United States of America.
Plos One
|May 1, 2020
Summary
Computational models accurately predict protein translation slowdowns. However, ribosome footprinting data shows low reproducibility, suggesting models may be more reliable for estimating translation rates.
Area of Science:
- Molecular Biology
- Computational Biology
- Genomics
Background:
- Accurate prediction of protein translation rates is crucial for understanding co-translational folding.
- Synonymous codons translate at different rates, necessitating computational models that analyze codon usage bias (CUB).
- Existing models use genome-wide CUB or CUB from highly expressed genes to infer translation rates.
Purpose of the Study:
- To evaluate five computational models for their ability to predict translational slowdowns.
- To compare model predictions against ribosome footprint (RFP) data from S. cerevisiae.
- To assess the reliability of RFP data for estimating translation rates.
Main Methods:
- Evaluated five distinct computational translation models.
- Utilized two independent ribosome footprint (RFP) count experiments in S. cerevisiae.
- Assessed the association between model predictions and RFP-derived translational slowdowns.
Main Results:
- All five evaluated models showed strong associations with RFP data, indicating potential for predicting translational slowdowns.
- A weak correlation was observed between RFP counts from independent experiments for the same genes.
- This suggests limitations in the current experimental estimation of translation rates using RFP data.
Conclusions:
- Computational models show promise for estimating translation rates and identifying slowdowns.
- The low reproducibility of RFP data raises concerns about its efficacy as a sole measure of translation rates.
- Computational models may offer a more robust approach to understanding translation dynamics.
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