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Two Novel Motifs of Watermelon Silver Mottle Virus NSs Protein Are Responsible for RNA Silencing Suppression and Pathogenicity

The NSs protein of Watermelon silver mottle virus (WSMoV) is the RNA silencing suppressor and pathogenicity determinant. In this study, serial deletion and point-mutation mutagenesis of conserved regions (CR) of NSs protein were performed, and the silencing suppression function was analyzed through...

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Autores principales: Huang, Chung-Hao, Hsiao, Weng-Rong, Huang, Ching-Wen, Chen, Kuan-Chun, Lin, Shih-Shun, Chen, Tsung-Chi, Raja, Joseph A. J., Wu, Hui-Wen, Yeh, Shyi-Dong
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4439075/
https://www.ncbi.nlm.nih.gov/pubmed/25993336
http://dx.doi.org/10.1371/journal.pone.0126161
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author Huang, Chung-Hao
Hsiao, Weng-Rong
Huang, Ching-Wen
Chen, Kuan-Chun
Lin, Shih-Shun
Chen, Tsung-Chi
Raja, Joseph A. J.
Wu, Hui-Wen
Yeh, Shyi-Dong
author_facet Huang, Chung-Hao
Hsiao, Weng-Rong
Huang, Ching-Wen
Chen, Kuan-Chun
Lin, Shih-Shun
Chen, Tsung-Chi
Raja, Joseph A. J.
Wu, Hui-Wen
Yeh, Shyi-Dong
author_sort Huang, Chung-Hao
collection PubMed
description The NSs protein of Watermelon silver mottle virus (WSMoV) is the RNA silencing suppressor and pathogenicity determinant. In this study, serial deletion and point-mutation mutagenesis of conserved regions (CR) of NSs protein were performed, and the silencing suppression function was analyzed through agroinfiltration in Nicotiana benthamiana plants. We found two amino acid (aa) residues, H113 and Y398, are novel functional residues for RNA silencing suppression. Our further analyses demonstrated that H113 at the common epitope (CE) ((109)KFTMHNQ(117)), which is highly conserved in Asia type tospoviruses, and the benzene ring of Y398 at the C-terminal β-sheet motif ((397)IYFL(400)) affect NSs mRNA stability and protein stability, respectively, and are thus critical for NSs RNA silencing suppression. Additionally, protein expression of other six deleted (ΔCR1-ΔCR6) and five point-mutated (Y15A, Y27A, G180A, R181A and R212A) mutants were hampered and their silencing suppression ability was abolished. The accumulation of the mutant mRNAs and proteins, except Y398A, could be rescued or enhanced by co-infiltration with potyviral suppressor HC-Pro. When assayed with the attenuated Zucchini yellow mosaic virus vector in squash plants, the recombinants carrying individual seven point-mutated NSs proteins displayed symptoms much milder than the recombinant carrying the wild type NSs protein, suggesting that these aa residues also affect viral pathogenicity by suppressing the host silencing mechanism.
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spelling pubmed-44390752015-05-29 Two Novel Motifs of Watermelon Silver Mottle Virus NSs Protein Are Responsible for RNA Silencing Suppression and Pathogenicity Huang, Chung-Hao Hsiao, Weng-Rong Huang, Ching-Wen Chen, Kuan-Chun Lin, Shih-Shun Chen, Tsung-Chi Raja, Joseph A. J. Wu, Hui-Wen Yeh, Shyi-Dong PLoS One Research Article The NSs protein of Watermelon silver mottle virus (WSMoV) is the RNA silencing suppressor and pathogenicity determinant. In this study, serial deletion and point-mutation mutagenesis of conserved regions (CR) of NSs protein were performed, and the silencing suppression function was analyzed through agroinfiltration in Nicotiana benthamiana plants. We found two amino acid (aa) residues, H113 and Y398, are novel functional residues for RNA silencing suppression. Our further analyses demonstrated that H113 at the common epitope (CE) ((109)KFTMHNQ(117)), which is highly conserved in Asia type tospoviruses, and the benzene ring of Y398 at the C-terminal β-sheet motif ((397)IYFL(400)) affect NSs mRNA stability and protein stability, respectively, and are thus critical for NSs RNA silencing suppression. Additionally, protein expression of other six deleted (ΔCR1-ΔCR6) and five point-mutated (Y15A, Y27A, G180A, R181A and R212A) mutants were hampered and their silencing suppression ability was abolished. The accumulation of the mutant mRNAs and proteins, except Y398A, could be rescued or enhanced by co-infiltration with potyviral suppressor HC-Pro. When assayed with the attenuated Zucchini yellow mosaic virus vector in squash plants, the recombinants carrying individual seven point-mutated NSs proteins displayed symptoms much milder than the recombinant carrying the wild type NSs protein, suggesting that these aa residues also affect viral pathogenicity by suppressing the host silencing mechanism. Public Library of Science 2015-05-20 /pmc/articles/PMC4439075/ /pubmed/25993336 http://dx.doi.org/10.1371/journal.pone.0126161 Text en © 2015 Huang 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
Huang, Chung-Hao
Hsiao, Weng-Rong
Huang, Ching-Wen
Chen, Kuan-Chun
Lin, Shih-Shun
Chen, Tsung-Chi
Raja, Joseph A. J.
Wu, Hui-Wen
Yeh, Shyi-Dong
Two Novel Motifs of Watermelon Silver Mottle Virus NSs Protein Are Responsible for RNA Silencing Suppression and Pathogenicity
title Two Novel Motifs of Watermelon Silver Mottle Virus NSs Protein Are Responsible for RNA Silencing Suppression and Pathogenicity
title_full Two Novel Motifs of Watermelon Silver Mottle Virus NSs Protein Are Responsible for RNA Silencing Suppression and Pathogenicity
title_fullStr Two Novel Motifs of Watermelon Silver Mottle Virus NSs Protein Are Responsible for RNA Silencing Suppression and Pathogenicity
title_full_unstemmed Two Novel Motifs of Watermelon Silver Mottle Virus NSs Protein Are Responsible for RNA Silencing Suppression and Pathogenicity
title_short Two Novel Motifs of Watermelon Silver Mottle Virus NSs Protein Are Responsible for RNA Silencing Suppression and Pathogenicity
title_sort two novel motifs of watermelon silver mottle virus nss protein are responsible for rna silencing suppression and pathogenicity
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4439075/
https://www.ncbi.nlm.nih.gov/pubmed/25993336
http://dx.doi.org/10.1371/journal.pone.0126161
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