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2
miRVIT: A Novel miRNA Database and Its Application to Uncover Responses to Infection.miRVIT:一个新型的微小RNA数据库及其在揭示感染反应中的应用。
Front Plant Sci. 2018 Jul 17;9:1034. doi: 10.3389/fpls.2018.01034. eCollection 2018.
3
The Biogenesis, Functions, and Challenges of Circular RNAs.环状 RNA 的生成、功能和挑战。
Mol Cell. 2018 Aug 2;71(3):428-442. doi: 10.1016/j.molcel.2018.06.034. Epub 2018 Jul 26.
4
Re-analysis of long non-coding RNAs and prediction of circRNAs reveal their novel roles in susceptible tomato following TYLCV infection.长非编码 RNA 的重新分析和 circRNA 的预测揭示了它们在感病番茄感染 TYLCV 后的新作用。
BMC Plant Biol. 2018 Jun 4;18(1):104. doi: 10.1186/s12870-018-1332-3.
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psRNATarget: a plant small RNA target analysis server (2017 release).psRNATarget:一个植物小 RNA 靶标分析服务器(2017 年版)。
Nucleic Acids Res. 2018 Jul 2;46(W1):W49-W54. doi: 10.1093/nar/gky316.
6
A 360° view of circular RNAs: From biogenesis to functions.环状 RNA 的全景:从生物发生到功能。
Wiley Interdiscip Rev RNA. 2018 Jul;9(4):e1478. doi: 10.1002/wrna.1478. Epub 2018 Apr 14.
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葡萄环状 RNA 的鉴定与特征分析揭示了与抗寒相关的.

Characterization and Cloning of Grape Circular RNAs Identified the Cold Resistance-Related .

机构信息

Department of Plant Science, School of Agriculture and Biology, Shanghai Jiao Tong University, Shanghai, People's Republic of China.

Institute of Agro-food Science and Technology/Key Laboratory of Agro-products Processing Technology of Shandong, Shandong Academy of Agricultural Sciences, Jinan 250100, People's Republic of China.

出版信息

Plant Physiol. 2019 Jun;180(2):966-985. doi: 10.1104/pp.18.01331. Epub 2019 Apr 8.

DOI:10.1104/pp.18.01331
PMID:30962290
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC6548266/
Abstract

Circular RNAs (circRNAs) are widely distributed and play essential roles in a series of developmental processes, although none have been identified or characterized in grapevines (). In this study, we characterized the function of grape circRNA and uncovered thousands of putative back-splicing sites by global transcriptome analysis. Our results indicated that several reported circRNA prediction algorithms should be used simultaneously to obtain comprehensive and reliable circRNA predictions in plants. Furthermore, the length of introns flanking grape circRNAs was closely related to exon circularization. Although the longer introns flanking grape circRNAs appeared to circularize more efficiently, a 20- to 50-nt region seemed large enough to drive grape circRNA biogenesis. In addition, the endogenous introns flanking circularized exon(s) in conjunction with reverse complementary sequences could support the accurate and efficient circularization of various exons in grape, which constitutes a new tool for exploring the functional consequences caused by circRNA expression. Finally, we identified 475 differentially expressed circRNAs in grape leaves under cold stress. Overexpression of , a circRNA derived from , improved cold tolerance in Arabidopsis (), while the linear RNA derived from the same sequence cannot. These results indicate the functional difference between circRNA and linear RNA, and provide new insight into plant abiotic stress resistance.

摘要

环状 RNA(circRNAs)广泛分布,在一系列发育过程中发挥着重要作用,但尚未在葡萄()中鉴定或表征。在这项研究中,我们通过全转录组分析表征了葡萄环状 RNA 的功能,并发现了数千个假定的反向剪接位点。我们的结果表明,应该同时使用几种已报道的环状 RNA 预测算法,以在植物中获得全面可靠的环状 RNA 预测。此外,葡萄环状 RNA 侧翼内含子的长度与外显子环化密切相关。虽然侧翼葡萄环状 RNA 的较长内含子似乎更有效地进行环化,但 20-50nt 的区域似乎足以驱动葡萄环状 RNA 的生物发生。此外,与反向互补序列一起环绕圆形外显子的内源性内含子可以支持葡萄中各种外显子的准确和高效环化,这构成了探索环状 RNA 表达引起的功能后果的新工具。最后,我们在冷胁迫下的葡萄叶片中鉴定出 475 个差异表达的 circRNA。来自的 circRNA 的过表达提高了拟南芥()的耐冷性,而来自同一序列的线性 RNA 则不能。这些结果表明了 circRNA 和线性 RNA 之间的功能差异,并为植物非生物胁迫抗性提供了新的见解。