High-throughput construction of intron-containing hairpin RNA vectors for RNAi in plants.
With the wide use of double-stranded RNA interference (RNAi) for the analysis of gene function in plants, a high-throughput system for making hairpin RNA (hpRNA) constructs is in great demand. Here, we describe a novel restriction-ligation approach that provides a simple but efficient construction o...
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2012-01-01
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doaj-640036c0d4a84ec0ad6d0f1ce04a96ae2020-11-25T02:20:09ZengPublic Library of Science (PLoS)PLoS ONE1932-62032012-01-0175e3818610.1371/journal.pone.0038186High-throughput construction of intron-containing hairpin RNA vectors for RNAi in plants.Pu YanWentao ShenXinZheng GaoXiaoying LiPeng ZhouJun DuanWith the wide use of double-stranded RNA interference (RNAi) for the analysis of gene function in plants, a high-throughput system for making hairpin RNA (hpRNA) constructs is in great demand. Here, we describe a novel restriction-ligation approach that provides a simple but efficient construction of intron-containing hpRNA (ihpRNA) vectors. The system takes advantage of the type IIs restriction enzyme BsaI and our new plant RNAi vector pRNAi-GG based on the Golden Gate (GG) cloning. This method requires only a single PCR product of the gene of interest flanked with BsaI recognition sequence, which can then be cloned into pRNAi-GG at both sense and antisense orientations simultaneously to form ihpRNA construct. The process, completed in one tube with one restriction-ligation step, produced a recombinant ihpRNA with high efficiency and zero background. We demonstrate the utility of the ihpRNA constructs generated with pRNAi-GG vector for the effective silencing of various individual endogenous and exogenous marker genes as well as two genes simultaneously. This method provides a novel and high-throughput platform for large-scale analysis of plant functional genomics.http://europepmc.org/articles/PMC3364983?pdf=render |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Pu Yan Wentao Shen XinZheng Gao Xiaoying Li Peng Zhou Jun Duan |
spellingShingle |
Pu Yan Wentao Shen XinZheng Gao Xiaoying Li Peng Zhou Jun Duan High-throughput construction of intron-containing hairpin RNA vectors for RNAi in plants. PLoS ONE |
author_facet |
Pu Yan Wentao Shen XinZheng Gao Xiaoying Li Peng Zhou Jun Duan |
author_sort |
Pu Yan |
title |
High-throughput construction of intron-containing hairpin RNA vectors for RNAi in plants. |
title_short |
High-throughput construction of intron-containing hairpin RNA vectors for RNAi in plants. |
title_full |
High-throughput construction of intron-containing hairpin RNA vectors for RNAi in plants. |
title_fullStr |
High-throughput construction of intron-containing hairpin RNA vectors for RNAi in plants. |
title_full_unstemmed |
High-throughput construction of intron-containing hairpin RNA vectors for RNAi in plants. |
title_sort |
high-throughput construction of intron-containing hairpin rna vectors for rnai in plants. |
publisher |
Public Library of Science (PLoS) |
series |
PLoS ONE |
issn |
1932-6203 |
publishDate |
2012-01-01 |
description |
With the wide use of double-stranded RNA interference (RNAi) for the analysis of gene function in plants, a high-throughput system for making hairpin RNA (hpRNA) constructs is in great demand. Here, we describe a novel restriction-ligation approach that provides a simple but efficient construction of intron-containing hpRNA (ihpRNA) vectors. The system takes advantage of the type IIs restriction enzyme BsaI and our new plant RNAi vector pRNAi-GG based on the Golden Gate (GG) cloning. This method requires only a single PCR product of the gene of interest flanked with BsaI recognition sequence, which can then be cloned into pRNAi-GG at both sense and antisense orientations simultaneously to form ihpRNA construct. The process, completed in one tube with one restriction-ligation step, produced a recombinant ihpRNA with high efficiency and zero background. We demonstrate the utility of the ihpRNA constructs generated with pRNAi-GG vector for the effective silencing of various individual endogenous and exogenous marker genes as well as two genes simultaneously. This method provides a novel and high-throughput platform for large-scale analysis of plant functional genomics. |
url |
http://europepmc.org/articles/PMC3364983?pdf=render |
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