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Unveiling the structural basis for translational ambiguity tolerance in a human fungal pathogen
Rita Rocha1, Pedro José Barbosa Pereira, Manuel A S Santos
1Instituto de Biologia Molecular e Celular, Universidade do Porto, 4150-180 Porto, Portugal.
Abstract:
In a restricted group of opportunistic fungal pathogens the universal leucine CUG codon is translated both as serine (97%) and leucine (3%), challenging the concept that translational ambiguity has a negative impact in living organisms. To elucidate the molecular mechanisms underlying the in vivo tolerance to a nonconserved genetic code alteration, we have undertaken an extensive structural analysis of proteins containing CUG-encoded residues and solved the crystal structures of the two natural isoforms of Candida albicans seryl-tRNA synthetase. We show that codon reassignment resulted in a nonrandom genome-wide CUG redistribution tailored to minimize protein misfolding events induced by the large-scale leucine-to-serine replacement within the CTG clade. Leucine or serine incorporation at the CUG position in C. albicans seryl-tRNA synthetase induces only local structural changes and, although both isoforms display tRNA serylation activity, the leucine-containing isoform is more active. Similarly, codon ambiguity is predicted to shape the function of C. albicans proteins containing CUG-encoded residues in functionally relevant positions, some of which have a key role in signaling cascades associated with morphological changes and pathogenesis. This study provides a first detailed analysis on natural reassignment of codon identity, unveiling a highly dynamic evolutionary pattern of thousands of fungal CUG codons to confer an optimized balance between protein structural robustness and functional plasticity.
Insights
Fungal pathogens tolerate genetic code changes by reassigning the CUG codon from leucine to serine. This reassignment minimizes protein misfolding, optimizing protein structure and function for survival.
Area of Science:
- Molecular Biology
- Genetics
- Structural Biology
Background:
- The universal leucine CUG codon is reassigned to serine in some fungal pathogens, challenging established genetic principles.
- Understanding the mechanisms of tolerance to altered genetic codes is crucial for studying fungal pathogenesis.
Purpose of the Study:
- To investigate the molecular basis for in vivo tolerance to genetic code alteration in fungal pathogens.
- To analyze the structural impact of CUG codon reassignment on protein function.
Main Methods:
- Extensive structural analysis of proteins with CUG-encoded residues.
- Crystal structure determination of Candida albicans seryl-tRNA synthetase isoforms.
- Computational prediction of codon ambiguity effects on protein function.
Main Results:
- Codon reassignment led to a nonrandom genome-wide CUG redistribution, minimizing protein misfolding.
- Serine or leucine incorporation at CUG positions in C. albicans seryl-tRNA synthetase induced only local structural changes.
- Both isoforms showed serylation activity, with the leucine-containing isoform being more active.
Conclusions:
- Fungal codon reassignment optimizes the balance between protein structural robustness and functional plasticity.
- Altered genetic codes can be tolerated and even utilized to shape protein function in signaling and pathogenesis.
- This study provides insights into the evolutionary dynamics of codon identity and genetic code variation.
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