Literature DB >> 29177640

Heat stress alters genome-wide profiles of circular RNAs in Arabidopsis.

Ting Pan1,2,3, Xiuqiang Sun1,3, Yangxuan Liu1,3, Hui Li1, Guangbin Deng1, Honghui Lin2, Songhu Wang4,5.   

Abstract

KEY MESSAGE: 1599 novel circRNAs and 1583 heat stress-specific circRNAs were identified in Arabidopsis. Heat stress enhanced accumulation of circRNAs remarkably. Heat stress altered the sizes of circRNAs, numbers of circularized exons and alterative circularization events. A putative circRNA-mediated ceRNA networks under heat stress was established. Heat stress retards plant growth and destabilizes crop yield. The noncoding RNAs were demonstrated to be involved in plant response to heat stress. As a newly-characterized class of noncoding RNAs, circular RNAs (circRNAs) play important roles in transcriptional and post-transcriptional regulation. A few recent investigations indicated that plant circRNAs were differentially expressed under abiotic stress. However, little is known about how heat stress mediates biogenesis of circRNAs in plants. Here, we uncovered 1599 previously-unknown circRNAs and 1583 heat-specific circRNAs, by RNA-sequencing and bioinformatic analysis. Our results indicated that much more circRNAs were expressed under heat stress than in control condition. Besides, heat stress also increased the length of circRNAs, the quantity of circularized exons, and alternative circularization events. Moreover, we observed a positive correlation between expression patterns of some circRNAs and their parental genes. The prediction of ceRNA (competing endogenous RNA) networks indicated that differentially-expressed circRNAs could influence expression of many important genes, that participate in response to heat stress, hydrogen peroxide, and phytohormone signaling pathways, by interacting with the corresponding microRNAs. Together, our observations indicated that heat stress had great impacts on the biogenesis of circRNAs. Heat-induced circRNAs might participate in plant response to heat stress through the circRNA-mediated ceRNA networks.

Entities:  

Keywords:  Biogenesis; CircRNA-mediated ceRNA network; Heat stress; Plant circRNAs

Mesh:

Substances:

Year:  2017        PMID: 29177640     DOI: 10.1007/s11103-017-0684-7

Source DB:  PubMed          Journal:  Plant Mol Biol        ISSN: 0167-4412            Impact factor:   4.076


  59 in total

1.  Arabidopsis miR156 Regulates Tolerance to Recurring Environmental Stress through SPL Transcription Factors.

Authors:  Anna Stief; Simone Altmann; Karen Hoffmann; Bikram Datt Pant; Wolf-Rüdiger Scheible; Isabel Bäurle
Journal:  Plant Cell       Date:  2014-04-25       Impact factor: 11.277

2.  An siRNA pathway prevents transgenerational retrotransposition in plants subjected to stress.

Authors:  Hidetaka Ito; Hervé Gaubert; Etienne Bucher; Marie Mirouze; Isabelle Vaillant; Jerzy Paszkowski
Journal:  Nature       Date:  2011-03-13       Impact factor: 49.962

3.  Circular RNAs in the Mammalian Brain Are Highly Abundant, Conserved, and Dynamically Expressed.

Authors:  Agnieszka Rybak-Wolf; Christin Stottmeister; Petar Glažar; Marvin Jens; Natalia Pino; Sebastian Giusti; Mor Hanan; Mikaela Behm; Osnat Bartok; Reut Ashwal-Fluss; Margareta Herzog; Luisa Schreyer; Panagiotis Papavasileiou; Andranik Ivanov; Marie Öhman; Damian Refojo; Sebastian Kadener; Nikolaus Rajewsky
Journal:  Mol Cell       Date:  2015-04-23       Impact factor: 17.970

4.  Detecting and characterizing circular RNAs.

Authors:  William R Jeck; Norman E Sharpless
Journal:  Nat Biotechnol       Date:  2014-05       Impact factor: 54.908

5.  Circular intronic long noncoding RNAs.

Authors:  Yang Zhang; Xiao-Ou Zhang; Tian Chen; Jian-Feng Xiang; Qing-Fei Yin; Yu-Hang Xing; Shanshan Zhu; Li Yang; Ling-Ling Chen
Journal:  Mol Cell       Date:  2013-09-12       Impact factor: 17.970

6.  Transcriptome-wide discovery of circular RNAs in Archaea.

Authors:  Miri Danan; Schraga Schwartz; Sarit Edelheit; Rotem Sorek
Journal:  Nucleic Acids Res       Date:  2011-12-02       Impact factor: 16.971

7.  Transcriptome-wide investigation of circular RNAs in rice.

Authors:  Tingting Lu; Lingling Cui; Yan Zhou; Chuanrang Zhu; Danlin Fan; Hao Gong; Qiang Zhao; Congcong Zhou; Yan Zhao; Danfeng Lu; Jianghong Luo; Yongchun Wang; Qilin Tian; Qi Feng; Tao Huang; Bin Han
Journal:  RNA       Date:  2015-10-13       Impact factor: 4.942

8.  Exon Skipping Is Correlated with Exon Circularization.

Authors:  Steven Kelly; Chris Greenman; Peter R Cook; Argyris Papantonis
Journal:  J Mol Biol       Date:  2015-02-26       Impact factor: 5.469

9.  starBase v2.0: decoding miRNA-ceRNA, miRNA-ncRNA and protein-RNA interaction networks from large-scale CLIP-Seq data.

Authors:  Jun-Hao Li; Shun Liu; Hui Zhou; Liang-Hu Qu; Jian-Hua Yang
Journal:  Nucleic Acids Res       Date:  2013-12-01       Impact factor: 16.971

10.  Combinatorial control of Drosophila circular RNA expression by intronic repeats, hnRNPs, and SR proteins.

Authors:  Marianne C Kramer; Dongming Liang; Deirdre C Tatomer; Beth Gold; Zachary M March; Sara Cherry; Jeremy E Wilusz
Journal:  Genes Dev       Date:  2015-10-08       Impact factor: 11.361

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  25 in total

Review 1.  Plant Noncoding RNAs: Hidden Players in Development and Stress Responses.

Authors:  Yu Yu; Yuchan Zhang; Xuemei Chen; Yueqin Chen
Journal:  Annu Rev Cell Dev Biol       Date:  2019-08-12       Impact factor: 13.827

Review 2.  Crosstalk between abscisic acid and nitric oxide under heat stress: exploring new vantage points.

Authors:  Noushina Iqbal; Shahid Umar; Nafees A Khan; Francisco J Corpas
Journal:  Plant Cell Rep       Date:  2021-04-28       Impact factor: 4.570

Review 3.  CircRNA accumulation: A new hallmark of aging?

Authors:  David Knupp; Pedro Miura
Journal:  Mech Ageing Dev       Date:  2018-05-16       Impact factor: 5.432

4.  Identification and characterization of circular RNAs during wood formation of poplars in acclimation to low nitrogen availability.

Authors:  Huimin Liu; Wanwen Yu; Jiangting Wu; Zhuorong Li; Hui Li; Jing Zhou; Jingjing Hu; Yan Lu
Journal:  Planta       Date:  2020-01-10       Impact factor: 4.116

5.  Circular RNA architecture and differentiation during leaf bud to young leaf development in tea (Camellia sinensis).

Authors:  Wei Tong; Jie Yu; Yan Hou; Fangdong Li; Qiying Zhou; Chaoling Wei; Jeffrey L Bennetzen
Journal:  Planta       Date:  2018-08-20       Impact factor: 4.116

6.  LLLI promotes BMSC proliferation through circRNA_0001052/miR-124-3p.

Authors:  Na Liu; Weiwei Lu; Xiaowen Qu; Chongtao Zhu
Journal:  Lasers Med Sci       Date:  2021-04-21       Impact factor: 3.161

7.  Identification of circularRNAs and their targets in Gossypium under Verticillium wilt stress based on RNA-seq.

Authors:  Liuxin Xiang; Chaowei Cai; Jieru Cheng; Lu Wang; Chaofeng Wu; Yuzhen Shi; Jingzhi Luo; Lin He; Yushan Deng; Xiao Zhang; Youlu Yuan; Yingfan Cai
Journal:  PeerJ       Date:  2018-03-16       Impact factor: 2.984

8.  Circular RNAs acting as ceRNAs mediated by miRNAs may be involved in the synthesis of soybean fatty acids.

Authors:  Bohan Ma; Zhanzhu Liu; Wei Yan; Lixue Wang; Haobo He; Aijing Zhang; Zeyuan Li; Qiuzhu Zhao; Mingming Liu; Shuyan Guan; Siyan Liu; Jing Qu; Dan Yao; Jun Zhang
Journal:  Funct Integr Genomics       Date:  2021-06-19       Impact factor: 3.410

9.  NGS Methodologies and Computational Algorithms for the Prediction and Analysis of Plant Circular RNAs.

Authors:  Laura Carmen Terrón-Camero; Eduardo Andrés-León
Journal:  Methods Mol Biol       Date:  2021

10.  Systematic Identification and Analysis of Light-Responsive Circular RNA and Co-expression Networks in Lettuce (Lactuca sativa).

Authors:  Zhenchao Yang; Zhao Yang; Yingge Xie; Qi Liu; Yanhao Mei; Yongjun Wu
Journal:  G3 (Bethesda)       Date:  2020-07-07       Impact factor: 3.154

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