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Resistance to Sri Lankan Cassava Mosaic Virus (SLCMV) in Genetically Engineered Cassava cv. KU50 through RNA Silencing

Cassava ranks fifth among the starch producing crops of the world, its annual bioethanol yield is higher than for any other crop. Cassava cultivar KU50, the most widely grown cultivar for non-food purposes is susceptible to Sri Lankan cassava mosaic virus (SLCMV). The objective of this work was to e...

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Autores principales: Ntui, Valentine Otang, Kong, Kynet, Khan, Raham Sher, Igawa, Tomoko, Janavi, Gnanaguru Janaky, Rabindran, Ramalingam, Nakamura, Ikuo, Mii, Masahiro
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4406713/
https://www.ncbi.nlm.nih.gov/pubmed/25901740
http://dx.doi.org/10.1371/journal.pone.0120551
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author Ntui, Valentine Otang
Kong, Kynet
Khan, Raham Sher
Igawa, Tomoko
Janavi, Gnanaguru Janaky
Rabindran, Ramalingam
Nakamura, Ikuo
Mii, Masahiro
author_facet Ntui, Valentine Otang
Kong, Kynet
Khan, Raham Sher
Igawa, Tomoko
Janavi, Gnanaguru Janaky
Rabindran, Ramalingam
Nakamura, Ikuo
Mii, Masahiro
author_sort Ntui, Valentine Otang
collection PubMed
description Cassava ranks fifth among the starch producing crops of the world, its annual bioethanol yield is higher than for any other crop. Cassava cultivar KU50, the most widely grown cultivar for non-food purposes is susceptible to Sri Lankan cassava mosaic virus (SLCMV). The objective of this work was to engineer resistance to SLCMV by RNA interference (RNAi) in order to increase biomass yield, an important aspect for bioethanol production. Here, we produced transgenic KU50 lines expressing dsRNA homologous to the region between the AV2 and AV1 of DNA A of SLCMV. High level expression of dsRNA of SLCMV did not induce any growth abnormality in the transgenic plants. Transgenic lines displayed high levels of resistance to SLCMV compared to the wild-type plants and no virus load could be detected in uninoculated new leaves of the infected resistant lines after PCR amplification and RT-PCR analysis. The agronomic performance of the transgenic lines was unimpaired after inoculation with the virus as the plants presented similar growth when compared to the mock inoculated control plants and revealed no apparent reduction in the amount and weight of tubers produced. We show that the resistance is correlated with post-transcriptional gene silencing because of the production of transgene specific siRNA. The results demonstrate that transgenic lines exhibited high levels of resistance to SLCMV. This resistance coupled with the desirable yield components in the transgenic lines makes them better candidates for exploitation in the production of biomass as well as bioethanol.
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spelling pubmed-44067132015-05-07 Resistance to Sri Lankan Cassava Mosaic Virus (SLCMV) in Genetically Engineered Cassava cv. KU50 through RNA Silencing Ntui, Valentine Otang Kong, Kynet Khan, Raham Sher Igawa, Tomoko Janavi, Gnanaguru Janaky Rabindran, Ramalingam Nakamura, Ikuo Mii, Masahiro PLoS One Research Article Cassava ranks fifth among the starch producing crops of the world, its annual bioethanol yield is higher than for any other crop. Cassava cultivar KU50, the most widely grown cultivar for non-food purposes is susceptible to Sri Lankan cassava mosaic virus (SLCMV). The objective of this work was to engineer resistance to SLCMV by RNA interference (RNAi) in order to increase biomass yield, an important aspect for bioethanol production. Here, we produced transgenic KU50 lines expressing dsRNA homologous to the region between the AV2 and AV1 of DNA A of SLCMV. High level expression of dsRNA of SLCMV did not induce any growth abnormality in the transgenic plants. Transgenic lines displayed high levels of resistance to SLCMV compared to the wild-type plants and no virus load could be detected in uninoculated new leaves of the infected resistant lines after PCR amplification and RT-PCR analysis. The agronomic performance of the transgenic lines was unimpaired after inoculation with the virus as the plants presented similar growth when compared to the mock inoculated control plants and revealed no apparent reduction in the amount and weight of tubers produced. We show that the resistance is correlated with post-transcriptional gene silencing because of the production of transgene specific siRNA. The results demonstrate that transgenic lines exhibited high levels of resistance to SLCMV. This resistance coupled with the desirable yield components in the transgenic lines makes them better candidates for exploitation in the production of biomass as well as bioethanol. Public Library of Science 2015-04-22 /pmc/articles/PMC4406713/ /pubmed/25901740 http://dx.doi.org/10.1371/journal.pone.0120551 Text en © 2015 Ntui 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
Ntui, Valentine Otang
Kong, Kynet
Khan, Raham Sher
Igawa, Tomoko
Janavi, Gnanaguru Janaky
Rabindran, Ramalingam
Nakamura, Ikuo
Mii, Masahiro
Resistance to Sri Lankan Cassava Mosaic Virus (SLCMV) in Genetically Engineered Cassava cv. KU50 through RNA Silencing
title Resistance to Sri Lankan Cassava Mosaic Virus (SLCMV) in Genetically Engineered Cassava cv. KU50 through RNA Silencing
title_full Resistance to Sri Lankan Cassava Mosaic Virus (SLCMV) in Genetically Engineered Cassava cv. KU50 through RNA Silencing
title_fullStr Resistance to Sri Lankan Cassava Mosaic Virus (SLCMV) in Genetically Engineered Cassava cv. KU50 through RNA Silencing
title_full_unstemmed Resistance to Sri Lankan Cassava Mosaic Virus (SLCMV) in Genetically Engineered Cassava cv. KU50 through RNA Silencing
title_short Resistance to Sri Lankan Cassava Mosaic Virus (SLCMV) in Genetically Engineered Cassava cv. KU50 through RNA Silencing
title_sort resistance to sri lankan cassava mosaic virus (slcmv) in genetically engineered cassava cv. ku50 through rna silencing
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4406713/
https://www.ncbi.nlm.nih.gov/pubmed/25901740
http://dx.doi.org/10.1371/journal.pone.0120551
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