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Molecular Evolution of a Viral Non-Coding Sequence under the Selective Pressure of amiRNA-Mediated Silencing

Plant microRNAs (miRNA) guide cleavage of target mRNAs by DICER-like proteins, thereby reducing mRNA abundance. Native precursor miRNAs can be redesigned to target RNAs of interest, and one application of such artificial microRNA (amiRNA) technology is to generate plants resistant to pathogenic viru...

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Autores principales: Lin, Shih-Shun, Wu, Hui-Wen, Elena, Santiago F., Chen, Kuan-Chun, Niu, Qi-Wen, Yeh, Shyi-Dong, Chen, Chin-Chih, Chua, Nam-Hai
Formato: Texto
Lenguaje:English
Publicado: Public Library of Science 2009
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2642722/
https://www.ncbi.nlm.nih.gov/pubmed/19247440
http://dx.doi.org/10.1371/journal.ppat.1000312
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author Lin, Shih-Shun
Wu, Hui-Wen
Elena, Santiago F.
Chen, Kuan-Chun
Niu, Qi-Wen
Yeh, Shyi-Dong
Chen, Chin-Chih
Chua, Nam-Hai
author_facet Lin, Shih-Shun
Wu, Hui-Wen
Elena, Santiago F.
Chen, Kuan-Chun
Niu, Qi-Wen
Yeh, Shyi-Dong
Chen, Chin-Chih
Chua, Nam-Hai
author_sort Lin, Shih-Shun
collection PubMed
description Plant microRNAs (miRNA) guide cleavage of target mRNAs by DICER-like proteins, thereby reducing mRNA abundance. Native precursor miRNAs can be redesigned to target RNAs of interest, and one application of such artificial microRNA (amiRNA) technology is to generate plants resistant to pathogenic viruses. Transgenic Arabidopsis plants expressing amiRNAs designed to target the genome of two unrelated viruses were resistant, in a highly specific manner, to the appropriate virus. Here, we pursued two different goals. First, we confirmed that the 21-nt target site of viral RNAs is both necessary and sufficient for resistance. Second, we studied the evolutionary stability of amiRNA-mediated resistance against a genetically plastic RNA virus, TuMV. To dissociate selective pressures acting upon protein function from those acting at the RNA level, we constructed a chimeric TuMV harboring a 21-nt, amiRNA target site in a non-essential region. In the first set of experiments designed to assess the likelihood of resistance breakdown, we explored the effect of single nucleotide mutation within the target 21-nt on the ability of mutant viruses to successfully infect amiRNA-expressing plants. We found non-equivalency of the target nucleotides, which can be divided into three categories depending on their impact in virus pathogenicity. In the second set of experiments, we investigated the evolution of the virus mutants in amiRNA-expressing plants. The most common outcome was the deletion of the target. However, when the 21-nt target was retained, viruses accumulated additional substitutions on it, further reducing the binding/cleavage ability of the amiRNA. The pattern of substitutions within the viral target was largely dominated by G to A and C to U transitions.
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spelling pubmed-26427222009-02-27 Molecular Evolution of a Viral Non-Coding Sequence under the Selective Pressure of amiRNA-Mediated Silencing Lin, Shih-Shun Wu, Hui-Wen Elena, Santiago F. Chen, Kuan-Chun Niu, Qi-Wen Yeh, Shyi-Dong Chen, Chin-Chih Chua, Nam-Hai PLoS Pathog Research Article Plant microRNAs (miRNA) guide cleavage of target mRNAs by DICER-like proteins, thereby reducing mRNA abundance. Native precursor miRNAs can be redesigned to target RNAs of interest, and one application of such artificial microRNA (amiRNA) technology is to generate plants resistant to pathogenic viruses. Transgenic Arabidopsis plants expressing amiRNAs designed to target the genome of two unrelated viruses were resistant, in a highly specific manner, to the appropriate virus. Here, we pursued two different goals. First, we confirmed that the 21-nt target site of viral RNAs is both necessary and sufficient for resistance. Second, we studied the evolutionary stability of amiRNA-mediated resistance against a genetically plastic RNA virus, TuMV. To dissociate selective pressures acting upon protein function from those acting at the RNA level, we constructed a chimeric TuMV harboring a 21-nt, amiRNA target site in a non-essential region. In the first set of experiments designed to assess the likelihood of resistance breakdown, we explored the effect of single nucleotide mutation within the target 21-nt on the ability of mutant viruses to successfully infect amiRNA-expressing plants. We found non-equivalency of the target nucleotides, which can be divided into three categories depending on their impact in virus pathogenicity. In the second set of experiments, we investigated the evolution of the virus mutants in amiRNA-expressing plants. The most common outcome was the deletion of the target. However, when the 21-nt target was retained, viruses accumulated additional substitutions on it, further reducing the binding/cleavage ability of the amiRNA. The pattern of substitutions within the viral target was largely dominated by G to A and C to U transitions. Public Library of Science 2009-02-27 /pmc/articles/PMC2642722/ /pubmed/19247440 http://dx.doi.org/10.1371/journal.ppat.1000312 Text en Lin et al. http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Lin, Shih-Shun
Wu, Hui-Wen
Elena, Santiago F.
Chen, Kuan-Chun
Niu, Qi-Wen
Yeh, Shyi-Dong
Chen, Chin-Chih
Chua, Nam-Hai
Molecular Evolution of a Viral Non-Coding Sequence under the Selective Pressure of amiRNA-Mediated Silencing
title Molecular Evolution of a Viral Non-Coding Sequence under the Selective Pressure of amiRNA-Mediated Silencing
title_full Molecular Evolution of a Viral Non-Coding Sequence under the Selective Pressure of amiRNA-Mediated Silencing
title_fullStr Molecular Evolution of a Viral Non-Coding Sequence under the Selective Pressure of amiRNA-Mediated Silencing
title_full_unstemmed Molecular Evolution of a Viral Non-Coding Sequence under the Selective Pressure of amiRNA-Mediated Silencing
title_short Molecular Evolution of a Viral Non-Coding Sequence under the Selective Pressure of amiRNA-Mediated Silencing
title_sort molecular evolution of a viral non-coding sequence under the selective pressure of amirna-mediated silencing
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2642722/
https://www.ncbi.nlm.nih.gov/pubmed/19247440
http://dx.doi.org/10.1371/journal.ppat.1000312
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