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Posttranscriptional modification to the core of tRNAs modulates translational misreading errors
Sima Saleh1, Philip J Farabaugh2
1Department of Biological Sciences and Program in Molecular and Cell Biology, University of Maryland Baltimore County, Baltimore, Maryland 21250, USA.
Abstract:
Protein synthesis on the ribosome involves successive rapid recruitment of cognate aminoacyl-tRNAs and rejection of the much more numerous incorrect near- or non-cognates. The principal feature of translation elongation is that at every step, many incorrect aa-tRNAs unsuccessfully enter the A site for each cognate accepted. Normal levels of translational accuracy require that cognate tRNAs have relatively similar acceptance rates by the ribosome. To achieve that, tRNAs evolved to compensate for differences in amino acid properties and codon-anticodon strength that affect acceptance. Part of that response involved tRNA posttranscriptional modifications, which can affect tRNA decoding efficiency, accuracy, and structural stability. The most intensively modified regions of the tRNA are the anticodon loop and structural core of the tRNA. Anticodon loop modifications directly affect codon-anticodon pairing and therefore modulate accuracy. Core modifications have been thought to ensure consistent decoding rates principally by stabilizing tRNA structure to avoid degradation; however, degradation due to instability appears to only be a significant issue above normal growth temperatures. We suspected that the greater role of modification at normal temperatures might be to tune tRNAs to maintain consistent intrinsic rates of acceptance and peptide transfer and that hypomodification by altering these rates might degrade the process of discrimination, leading to increased translational errors. Here, we present evidence that most tRNA core modifications do modulate the frequency of misreading errors, suggesting that the need to maintain accuracy explains their deep evolutionary conservation.
Insights
Transfer RNAs (tRNAs) use core modifications to maintain high protein synthesis accuracy by regulating aminoacyl-tRNA acceptance rates. These modifications prevent translational errors, explaining their evolutionary conservation.
Area of Science:
- Molecular Biology
- Genetics
- Biochemistry
Background:
- Protein synthesis relies on accurate aminoacyl-tRNA (aa-tRNA) selection by the ribosome.
- tRNAs must compensate for variations in amino acid properties and codon-anticodon interactions to ensure high fidelity.
- Posttranscriptional modifications of tRNAs are crucial for decoding efficiency, accuracy, and stability.
Purpose of the Study:
- To investigate the role of tRNA core modifications in maintaining translational accuracy at normal temperatures.
- To determine if tRNA core modifications tune acceptance rates to prevent errors.
- To explore the evolutionary significance of tRNA core modifications in accuracy.
Main Methods:
- Analysis of tRNA structure and function.
- Investigating the impact of tRNA modifications on decoding efficiency and error rates.
- Comparative evolutionary analysis of tRNA modifications.
Main Results:
- Most tRNA core modifications significantly influence the frequency of translational misreading errors.
- Hypomodification of tRNAs leads to altered acceptance rates and increased errors.
- Evidence suggests core modifications are essential for accurate discrimination between cognate and non-cognate aa-tRNAs.
Conclusions:
- tRNA core modifications are vital for maintaining high fidelity in protein synthesis by regulating aa-tRNA selection.
- The deep evolutionary conservation of these modifications is driven by the necessity to preserve translational accuracy.
- Modifications fine-tune tRNA properties to ensure consistent performance and prevent errors during translation elongation.
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