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RNA Cis-Elements Involved in Animal Virus Stop Codon Readthrough: Stop Codon Context and Downstream RNA Structures
Nobuhiko Kamoshita1,2,3
1Department of Biochemistry, Jichi Medical University, 3311-1 Yakushiji, Shimotsuke-shi 329-0498, Tochigi-ken, Japan.
Abstract:
Stop codon readthrough is a noncanonical translation strategy employed by certain RNA viruses, in which a viral termination codon is either decoded by host near-cognate tRNAs or canonically recognized by the class I release factor (RF, eRF1 in eukaryotes). Ribosomal A-site competition between near-cognate tRNAs and eRF can shift decoding toward near-cognate tRNAs, thereby promoting non-canonical decoding events by transiently pausing termination and favoring readthrough. This review focuses on two viral cis-elements that modulate readthrough across four viral genera in which this decoding event has been experimentally validated: (i) primary sequences surrounding the stop codon (stop codon context), and (ii) downstream RNA structures. Effects of stop codon context have been observed more broadly in cellular genes, including nonsense suppression in bacteria, with mechanisms including inefficient RF association or tRNA interactions at adjacent sense codons. In eukaryotic systems, interactions with the ribosomal mRNA entry channel have been suggested. Diverse downstream structures, including gammaretroviral pseudoknots and specific structures in alpha- and coltiviruses, further stimulate readthrough in a location- and structure-sensitive manner. This effect has not been consistently observed in chikungunya and triatoviral structures, suggesting a strong dependence on local sequence and structural context. Compared with the larger number of cellular readthrough occurrences that can be detected at low efficiency by ribosome profiling, viral readthrough in mammalian systems is consistently high (>2%). Understanding the interplay between viral RNA elements and host translational machinery, including potential kinetic trapping at the termination codon, provides insights into this unusual elongation mechanism. These findings may have implications for antiviral strategies targeting these RNA elements.
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