Systematic identification and characterization of circular RNAs involved in flag leaf senescence of rice

被引:30
作者
Huang, Xiaoping [1 ]
Zhang, Hongyu [1 ]
Guo, Rong [1 ]
Wang, Qiang [1 ]
Liu, Xuanzhi [1 ]
Kuang, Weigang [1 ]
Song, Haiyan [1 ]
Liao, Jianglin [1 ]
Huang, Yingjin [1 ]
Wang, Zhaohai [1 ]
机构
[1] Jiangxi Agr Univ, Key Lab Crop Physiol Ecol & Genet Breeding, Minist Educ PR China, Nanchang 330045, Jiangxi, Peoples R China
基金
中国国家自然科学基金;
关键词
Competing endogenous RNA (ceRNA); Circular RNAs (circRNAs); Leaf senescence; Rice; Weighted gene co-expression network analysis (WGCNA); TRANSCRIPTOME-WIDE IDENTIFICATION; FUNCTIONAL-CHARACTERIZATION; MESSENGER-RNA; GENE FAMILY; CELL-DEATH; EXPRESSION; CIRCRNAS; PATHWAY; BIOGENESIS; TRANSPORT;
D O I
10.1007/s00425-020-03544-6
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Circular RNAs (circRNAs) are a class of 3 '-5 ' head-to-tail covalently closed non-coding RNAs which have been proved to play important roles in various biological processes. However, no systematic identification of circRNAs associated with leaf senescence in rice has been studied. In this study, a genome-wide high-throughput sequencing analysis was performed using rice flag leaves developing from normal to senescence. Here, a total of 6612 circRNAs were identified, among which, 113 circRNAs were differentially expressed (DE) during the leaf senescence process. Moreover, 4601 (69.59%) circRNAs were derived from the exons or introns of their parental genes, while 2110 (71%) of the parental genes produced only one circRNA. The sequence alignment analysis showed that hundreds of rice circRNAs were conserved among different plant species. Gene Ontology (GO) enrichment analysis revealed that parental genes of DE circRNAs were enriched in many biological processes closely related to leaf senescence. Through weighted gene co-expression network analysis (WGCNA), six continuously down-expressed circRNAs, 18 continuously up-expressed circRNAs and 15 turn-point high-expressed circRNAs were considered to be highly associated with leaf senescence. Additionally, a total of 17 senescence-associated circRNAs were predicted to have parental genes, in which, regulations of three circRNAs to their parental genes were validated by qRT-PCR. The competing endogenous RNA (ceRNA) networks were also constructed. And a total of 11 senescence-associated circRNAs were predicted to act as miRNA sponges to regulate mRNAs, in which, regulation of two circRNAs to eight mRNAs was validated by qRT-PCR. It is discussed that senescence-associated circRNAs were involved in flag leaf senescence probably through mediating their parental genes and ceRNA networks, to participate in several well-studied senescence-associated processes, mainly including the processes of transcription, translation, and posttranslational modification (especially protein glycosylation), oxidation-reduction process, involvement of senescence-associated genes, hormone signaling pathway, proteolysis, and DNA damage repair. This study not only showed the systematic identification of circRNAs involved in leaf senescence of rice, but also laid a foundation for functional research on candidate circRNAs.
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页数:24
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共 80 条
[1]   Targeting of NAT10 enhances healthspan in a mouse model of human accelerated aging syndrome [J].
Balmus, Gabriel ;
Larrieu, Delphine ;
Barros, Ana C. ;
Collins, Casey ;
Abrudan, Monica ;
Demir, Mukerrem ;
Geisler, Nicola J. ;
Lelliott, Christopher J. ;
White, Jacqueline K. ;
Karp, Natasha A. ;
Atkinson, James ;
Kirton, Andrea ;
Jacobsen, Matt ;
Clift, Dean ;
Rodriguez, Raphael ;
Adams, David J. ;
Jackson, Stephen P. .
NATURE COMMUNICATIONS, 2018, 9
[2]   Functional characterization of ObgC in ribosome biogenesis during chloroplast development [J].
Bang, Woo Young ;
Chen, Ji ;
Jeong, In Sil ;
Kim, Sam Woong ;
Kim, Chul Wook ;
Jung, Hyun Suk ;
Lee, Kyoung Hwan ;
Kweon, Hee-Seok ;
Yoko, Ishizaki ;
Shiina, Takashi ;
Bahk, Jeong Dong .
PLANT JOURNAL, 2012, 71 (01) :122-134
[3]   Circular RNAs: analysis, expression and potential functions [J].
Barrett, Steven P. ;
Salzman, Julia .
DEVELOPMENT, 2016, 143 (11) :1838-1847
[4]   Genome-Wide Identification of Circular RNAs in Arabidopsis thaliana [J].
Chen, Gang ;
Cui, Jiawen ;
Wang, Li ;
Zhu, Yingfang ;
Lu, Zhaogeng ;
Jin, Biao .
FRONTIERS IN PLANT SCIENCE, 2017, 8
[5]   Circular RNA profile identifies circPVT1 as a proliferative factor and prognostic marker in gastric cancer [J].
Chen, Jie ;
Li, Yan ;
Zheng, Qiupeng ;
Bao, Chunyang ;
He, Jian ;
Chen, Bin ;
Lyu, Dongbin ;
Zheng, Biqiang ;
Xu, Yu ;
Long, Ziwen ;
Zhou, Ye ;
Zhu, Huiyan ;
Wang, Yanong ;
He, Xianghuo ;
Shi, Yingqiang ;
Huang, Shenglin .
CANCER LETTERS, 2017, 388 :208-219
[6]   The biogenesis and emerging roles of circular RNAs [J].
Chen, Ling-Ling .
NATURE REVIEWS MOLECULAR CELL BIOLOGY, 2016, 17 (04) :205-211
[7]   A lariat-derived circular RNA is required for plant development in Arabidopsis [J].
Cheng, Jinping ;
Zhang, Yong ;
Li, Ziwei ;
Wang, Taiyun ;
Zhang, Xiaotuo ;
Zheng, Binglian .
SCIENCE CHINA-LIFE SCIENCES, 2018, 61 (02) :204-213
[8]   A circRNA from SEPALLATA3 regulates splicing of its cognate mRNA through R-loop formation [J].
Conn, Vanessa M. ;
Hugouvieux, Veronique ;
Nayak, Aditya ;
Conos, Stephanie A. ;
Capovilla, Giovanna ;
Cildir, Gokhan ;
Jourdain, Agnes ;
Tergaonkar, Vinay ;
Schmid, Markus ;
Zubieta, Chloe ;
Conn, Simon J. .
NATURE PLANTS, 2017, 3 (05)
[9]   psRNATarget: a plant small RNA target analysis server (2017 release) [J].
Dai, Xinbin ;
Zhuang, Zhaohong ;
Zhao, Patrick Xuechun .
NUCLEIC ACIDS RESEARCH, 2018, 46 (W1) :W49-W54
[10]   Plant senescence and proteolysis: two processes with one destiny [J].
Diaz-Mendoza, Mercedes ;
Velasco-Arroyo, Blanca ;
Estrella Santamaria, M. ;
Gonzalez-Melendi, Pablo ;
Martinez, Manuel ;
Diaz, Isabel .
GENETICS AND MOLECULAR BIOLOGY, 2016, 39 (03) :329-338