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大豆对高强度UV-B辐射响应的转录组分析揭示了胁迫防御信号。

Transcriptomic Profiling of Soybean in Response to High-Intensity UV-B Irradiation Reveals Stress Defense Signaling.

作者信息

Yoon Min Young, Kim Moon Young, Shim Sangrae, Kim Kyung Do, Ha Jungmin, Shin Jin Hee, Kang Sungtaeg, Lee Suk-Ha

机构信息

Department of Plant Science and Research Institute of Agriculture and Life Sciences, Seoul National University Seoul, South Korea.

Department of Plant Science and Research Institute of Agriculture and Life Sciences, Seoul National UniversitySeoul, South Korea; Plant Genomics and Breeding Institute, Seoul National UniversitySeoul, South Korea.

出版信息

Front Plant Sci. 2016 Dec 19;7:1917. doi: 10.3389/fpls.2016.01917. eCollection 2016.

DOI:10.3389/fpls.2016.01917
PMID:28066473
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC5165247/
Abstract

The depletion of the ozone layer in the stratosphere has led to a dramatic spike in ultraviolet B (UV-B) intensity and increased UV-B light levels. The direct absorption of high-intensity UV-B induces complex abiotic stresses in plants, including excessive light exposure, heat, and dehydration. However, UV-B stress signaling mechanisms in plants including soybean ( [L.]) remain poorly understood. Here, we surveyed the overall transcriptional responses of two soybean genotypes, UV-B-sensitive Cheongja 3 and UV-B-resistant Buseok, to continuous UV-B irradiation for 0 (control), 0.5, and 6 h using RNA-seq analysis. Homology analysis using UV-B-related genes from revealed differentially expressed genes (DEGs) likely involved in UV-B stress responses. Functional classification of the DEGs showed that the categories of immune response, stress defense signaling, and reactive oxygen species (ROS) metabolism were over-represented. UV-B-resistant Buseok utilized phosphatidic acid-dependent signaling pathways (based on subsequent reactions of phospholipase C and diacylglycerol kinase) rather than phospholipase D in response to UV-B exposure at high fluence rates, and genes involved in its downstream pathways, such as ABA signaling, mitogen-activated protein kinase cascades, and ROS overproduction, were upregulated in this genotype. In addition, the DEGs for TIR-NBS-LRR and heat shock proteins are positively activated. These results suggest that defense mechanisms against UV-B stress at high fluence rates are separate from the photomorphogenic responses utilized by plants to adapt to low-level UV light. Our study provides valuable information for deep understanding of UV-B stress defense mechanisms and for the development of resistant soybean genotypes that survive under high-intensity UV-B stress.

摘要

平流层中臭氧层的消耗导致紫外线B(UV-B)强度急剧上升,UV-B光照水平增加。高强度UV-B的直接吸收在植物中引发复杂的非生物胁迫,包括过度光照、高温和脱水。然而,包括大豆([L.])在内的植物中UV-B胁迫信号传导机制仍知之甚少。在此,我们使用RNA测序分析,研究了两种大豆基因型,即UV-B敏感型的청자3号和UV-B抗性型的부석,在连续UV-B照射0(对照)、0.5和6小时后的整体转录反应。通过对来自的UV-B相关基因进行同源性分析,发现了可能参与UV-B胁迫反应的差异表达基因(DEG)。对DEG的功能分类表明,免疫反应、胁迫防御信号传导和活性氧(ROS)代谢类别过度富集。UV-B抗性型的부석在高辐照率下响应UV-B暴露时,利用磷脂酸依赖性信号通路(基于磷脂酶C和二酰基甘油激酶的后续反应)而非磷脂酶D,并且该基因型中参与其下游通路的基因,如ABA信号传导、丝裂原活化蛋白激酶级联反应和ROS过量产生,均被上调。此外,TIR-NBS-LRR和热休克蛋白的DEG被正向激活。这些结果表明,植物在高辐照率下抵御UV-B胁迫的防御机制与植物用于适应低水平紫外线的光形态建成反应不同。我们的研究为深入了解UV-B胁迫防御机制以及培育在高强度UV-B胁迫下存活的抗性大豆基因型提供了有价值的信息。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3c6b/5165247/bc4c788b4ace/fpls-07-01917-g0006.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3c6b/5165247/fa3cd4cdce7a/fpls-07-01917-g0001.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3c6b/5165247/4e0c520812ec/fpls-07-01917-g0002.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3c6b/5165247/ea7f4e48d553/fpls-07-01917-g0003.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3c6b/5165247/5936950d8c94/fpls-07-01917-g0004.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3c6b/5165247/485301cfc206/fpls-07-01917-g0005.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3c6b/5165247/bc4c788b4ace/fpls-07-01917-g0006.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3c6b/5165247/fa3cd4cdce7a/fpls-07-01917-g0001.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3c6b/5165247/4e0c520812ec/fpls-07-01917-g0002.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3c6b/5165247/ea7f4e48d553/fpls-07-01917-g0003.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3c6b/5165247/5936950d8c94/fpls-07-01917-g0004.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3c6b/5165247/485301cfc206/fpls-07-01917-g0005.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3c6b/5165247/bc4c788b4ace/fpls-07-01917-g0006.jpg

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本文引用的文献

1
Review: Molecular response of plant cells to UV-B stress.综述:植物细胞对UV-B胁迫的分子响应。
Funct Plant Biol. 2002 Aug;29(8):909-916. doi: 10.1071/FP02062.
2
A meta-analysis of plant field studies simulating stratospheric ozone depletion.一项模拟平流层臭氧损耗的植物田间研究的荟萃分析。
Oecologia. 2001 Mar;127(1):1-10. doi: 10.1007/s004420000592. Epub 2001 Mar 1.
3
Seed Biofortification and Phytic Acid Reduction: A Conflict of Interest for the Plant?种子生物强化与植酸减少:植物的利益冲突?
野生植物对紫外线-C照射的转录组反应揭示了参与一般植物防御和引发作用的基因。
Plants (Basel). 2022 Feb 2;11(3):408. doi: 10.3390/plants11030408.
4
Olive Varieties under UV-B Stress Show Distinct Responses in Terms of Antioxidant Machinery and Isoform/Activity of RubisCO.UV-B 胁迫下的油橄榄品种在抗氧化机制和 Rubisco 同工酶/活性方面表现出明显的响应。
Int J Mol Sci. 2021 Oct 18;22(20):11214. doi: 10.3390/ijms222011214.
5
Genome-Wide Association Study for Ultraviolet-B Resistance in Soybean ( L.).大豆(L.)抗紫外线B的全基因组关联研究
Plants (Basel). 2021 Jun 29;10(7):1335. doi: 10.3390/plants10071335.
6
A Comparison of the Transcriptomes of Cowpeas in Response to Two Different Ionizing Radiations.两种不同电离辐射下豇豆转录组的比较
Plants (Basel). 2021 Mar 17;10(3):567. doi: 10.3390/plants10030567.
7
Different regulations of cell-type transcription by UV-B in multicellular green alga .UV-B 对多细胞绿藻细胞类型转录的不同调控。
Plant Signal Behav. 2019;14(11):1657339. doi: 10.1080/15592324.2019.1657339. Epub 2019 Aug 26.
8
QTL Analysis of Resistance to High-Intensity UV-B Irradiation in Soybean ( [L.] Merr.).大豆([L.] Merr.)对高强度 UV-B 辐射抗性的 QTL 分析。
Int J Mol Sci. 2019 Jul 4;20(13):3287. doi: 10.3390/ijms20133287.
9
The Role of UV-B light on Small RNA Activity During Grapevine Berry Development.UV-B光在葡萄浆果发育过程中对小RNA活性的作用
G3 (Bethesda). 2019 Mar 7;9(3):769-787. doi: 10.1534/g3.118.200805.
10
Extrapolation of significant genes and transcriptional regulatory networks involved in Zea mays in response in UV-B stress.参与玉米对UV-B胁迫响应的重要基因及转录调控网络的推断
Genes Genomics. 2018 Sep;40(9):973-990. doi: 10.1007/s13258-018-0705-1. Epub 2018 May 31.
Plants (Basel). 2015 Nov 20;4(4):728-55. doi: 10.3390/plants4040728.
4
Plant phospholipases D and C and their diverse functions in stress responses.植物磷脂酶 D 和 C 及其在应激反应中的多种功能。
Prog Lipid Res. 2016 Apr;62:55-74. doi: 10.1016/j.plipres.2016.01.002. Epub 2016 Jan 16.
5
Changing scenario in plant UV-B research:UV-B from a generic stressor to a specific regulator.植物UV - B研究中的变化情况:从一般应激源到特定调节因子的UV - B
J Photochem Photobiol B. 2015 Dec;153:334-43. doi: 10.1016/j.jphotobiol.2015.10.004. Epub 2015 Oct 22.
6
Lipid signalling in plant responses to abiotic stress.植物对非生物胁迫响应中的脂质信号传导
Plant Cell Environ. 2016 May;39(5):1029-48. doi: 10.1111/pce.12666. Epub 2016 Feb 12.
7
Plant phospholipase C family: Regulation and functional role in lipid signaling.植物磷脂酶C家族:脂质信号传导中的调控及功能作用
Cell Calcium. 2015 Aug;58(2):139-46. doi: 10.1016/j.ceca.2015.04.003. Epub 2015 Apr 17.
8
Footprints of the sun: memory of UV and light stress in plants.阳光的足迹:植物中 UV 和光应激的记忆
Front Plant Sci. 2014 Sep 16;5:474. doi: 10.3389/fpls.2014.00474. eCollection 2014.
9
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Plant Cell. 2014 Jan;26(1):21-37. doi: 10.1105/tpc.113.119446. Epub 2014 Jan 30.
10
Simultaneous application of heat, drought, and virus to Arabidopsis plants reveals significant shifts in signaling networks.同时对拟南芥植株施加高温、干旱和病毒处理,揭示了信号网络的显著变化。
Plant Physiol. 2013 Aug;162(4):1849-66. doi: 10.1104/pp.113.221044. Epub 2013 Jun 10.