Identification of maize long non-coding RNAs responsive to drought stress.

Long non-coding RNAs (lncRNAs) represent a class of riboregulators that either directly act in long form or are processed to shorter miRNAs and siRNAs. Emerging evidence shows that lncRNAs participate in stress responsive regulation. In this study, to identify the putative maize lncRNAs responsive t...

Full description

Bibliographic Details
Main Authors: Wei Zhang, Zhaoxue Han, Qingli Guo, Yu Liu, Yuxian Zheng, Fangli Wu, Weibo Jin
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2014-01-01
Series:PLoS ONE
Online Access:http://europepmc.org/articles/PMC4044008?pdf=render
id doaj-1edf1551afe440ec8717e40341b04738
record_format Article
spelling doaj-1edf1551afe440ec8717e40341b047382020-11-25T01:09:29ZengPublic Library of Science (PLoS)PLoS ONE1932-62032014-01-0196e9895810.1371/journal.pone.0098958Identification of maize long non-coding RNAs responsive to drought stress.Wei ZhangZhaoxue HanQingli GuoYu LiuYuxian ZhengFangli WuWeibo JinLong non-coding RNAs (lncRNAs) represent a class of riboregulators that either directly act in long form or are processed to shorter miRNAs and siRNAs. Emerging evidence shows that lncRNAs participate in stress responsive regulation. In this study, to identify the putative maize lncRNAs responsive to drought stress, 8449 drought responsive transcripts were first uploaded to the Coding Potential Calculator website for classification as protein coding or non-coding RNAs, and 1724 RNAs were identified as potential non-coding RNAs. A Perl script was written to screen these 1724 ncRNAs and 664 transcripts were ultimately identified as drought-responsive lncRNAs. Of these 664 transcripts, 126 drought-responsive lncRNAs were highly similar to known maize lncRNAs; the remaining 538 transcripts were considered as novel lncRNAs. Among the 664 lncRNAs identified as drought responsive, 567 were upregulated and 97 were downregulated in drought-stressed leaves of maize. 8 lncRNAs were identified as miRNA precursor lncRNAs, 62 were classified as both shRNA and siRNA precursors, and 279 were classified as siRNA precursors. The remaining 315 lncRNAs were classified as other lncRNAs that are likely to function as longer molecules. Among these 315 lncRNAs, 10 are identified as antisense lncRNAs and 7 could pair with 17 CDS sequences with near-perfect matches. Finally, RT-qPCR results confirmed that all selected lncRNAs could respond to drought stress. These findings extend the current view on lncRNAs as ubiquitous regulators under stress conditions.http://europepmc.org/articles/PMC4044008?pdf=render
collection DOAJ
language English
format Article
sources DOAJ
author Wei Zhang
Zhaoxue Han
Qingli Guo
Yu Liu
Yuxian Zheng
Fangli Wu
Weibo Jin
spellingShingle Wei Zhang
Zhaoxue Han
Qingli Guo
Yu Liu
Yuxian Zheng
Fangli Wu
Weibo Jin
Identification of maize long non-coding RNAs responsive to drought stress.
PLoS ONE
author_facet Wei Zhang
Zhaoxue Han
Qingli Guo
Yu Liu
Yuxian Zheng
Fangli Wu
Weibo Jin
author_sort Wei Zhang
title Identification of maize long non-coding RNAs responsive to drought stress.
title_short Identification of maize long non-coding RNAs responsive to drought stress.
title_full Identification of maize long non-coding RNAs responsive to drought stress.
title_fullStr Identification of maize long non-coding RNAs responsive to drought stress.
title_full_unstemmed Identification of maize long non-coding RNAs responsive to drought stress.
title_sort identification of maize long non-coding rnas responsive to drought stress.
publisher Public Library of Science (PLoS)
series PLoS ONE
issn 1932-6203
publishDate 2014-01-01
description Long non-coding RNAs (lncRNAs) represent a class of riboregulators that either directly act in long form or are processed to shorter miRNAs and siRNAs. Emerging evidence shows that lncRNAs participate in stress responsive regulation. In this study, to identify the putative maize lncRNAs responsive to drought stress, 8449 drought responsive transcripts were first uploaded to the Coding Potential Calculator website for classification as protein coding or non-coding RNAs, and 1724 RNAs were identified as potential non-coding RNAs. A Perl script was written to screen these 1724 ncRNAs and 664 transcripts were ultimately identified as drought-responsive lncRNAs. Of these 664 transcripts, 126 drought-responsive lncRNAs were highly similar to known maize lncRNAs; the remaining 538 transcripts were considered as novel lncRNAs. Among the 664 lncRNAs identified as drought responsive, 567 were upregulated and 97 were downregulated in drought-stressed leaves of maize. 8 lncRNAs were identified as miRNA precursor lncRNAs, 62 were classified as both shRNA and siRNA precursors, and 279 were classified as siRNA precursors. The remaining 315 lncRNAs were classified as other lncRNAs that are likely to function as longer molecules. Among these 315 lncRNAs, 10 are identified as antisense lncRNAs and 7 could pair with 17 CDS sequences with near-perfect matches. Finally, RT-qPCR results confirmed that all selected lncRNAs could respond to drought stress. These findings extend the current view on lncRNAs as ubiquitous regulators under stress conditions.
url http://europepmc.org/articles/PMC4044008?pdf=render
work_keys_str_mv AT weizhang identificationofmaizelongnoncodingrnasresponsivetodroughtstress
AT zhaoxuehan identificationofmaizelongnoncodingrnasresponsivetodroughtstress
AT qingliguo identificationofmaizelongnoncodingrnasresponsivetodroughtstress
AT yuliu identificationofmaizelongnoncodingrnasresponsivetodroughtstress
AT yuxianzheng identificationofmaizelongnoncodingrnasresponsivetodroughtstress
AT fangliwu identificationofmaizelongnoncodingrnasresponsivetodroughtstress
AT weibojin identificationofmaizelongnoncodingrnasresponsivetodroughtstress
_version_ 1725178457365676032