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本文引用的文献

1
Quantification of Carotenoid Pathway Flux in Green and Nongreen Systems.定量分析绿色和非绿色系统中的类胡萝卜素代谢途径通量。
Methods Mol Biol. 2020;2083:279-291. doi: 10.1007/978-1-4939-9952-1_21.
2
Transportomics for the Characterization of Plant Apocarotenoid Transmembrane Transporters.植物类胡萝卜素跨膜转运蛋白的转运组学特征分析。
Methods Mol Biol. 2020;2083:89-99. doi: 10.1007/978-1-4939-9952-1_7.
3
Apocarotenoids Involved in Plant Development and Stress Response.参与植物发育和应激反应的类胡萝卜素衍生物
Front Plant Sci. 2019 Sep 27;10:1168. doi: 10.3389/fpls.2019.01168. eCollection 2019.
4
Reactive Carbonyl Species: A Missing Link in ROS Signaling.活性羰基化合物:ROS信号传导中缺失的一环。
Plants (Basel). 2019 Sep 30;8(10):391. doi: 10.3390/plants8100391.
5
ABCC Transporters Mediate the Vacuolar Accumulation of Crocins in Saffron Stigmas.ABCC 转运蛋白介导藏红花柱头中海马酮的液泡积累。
Plant Cell. 2019 Nov;31(11):2789-2804. doi: 10.1105/tpc.19.00193. Epub 2019 Sep 23.
6
UGT709G1: a novel uridine diphosphate glycosyltransferase involved in the biosynthesis of picrocrocin, the precursor of safranal in saffron (Crocus sativus).UGT709G1:一种新型的尿苷二磷酸糖基转移酶,参与藏红花(Crocus sativus)中苦藏花醛前体吡咯里西啶生物碱的生物合成。
New Phytol. 2019 Oct;224(2):725-740. doi: 10.1111/nph.16079. Epub 2019 Aug 29.
7
Sensing β-carotene oxidation in photosystem II to master plant stress tolerance.感知光合作用 II 中β-胡萝卜素的氧化,以掌握植物的应激耐受能力。
New Phytol. 2019 Sep;223(4):1776-1783. doi: 10.1111/nph.15924. Epub 2019 Jun 19.
8
Detoxification of Reactive Carbonyl Species by Glutathione Transferase Tau Isozymes.谷胱甘肽转移酶tau同工酶对活性羰基化合物的解毒作用。
Front Plant Sci. 2019 Apr 24;10:487. doi: 10.3389/fpls.2019.00487. eCollection 2019.
9
β-Cyclocitral is a conserved root growth regulator.β-环柠檬醛是一种保守的根生长调节剂。
Proc Natl Acad Sci U S A. 2019 May 21;116(21):10563-10567. doi: 10.1073/pnas.1821445116. Epub 2019 May 8.
10
Changing Form and Function through Carotenoids and Synthetic Biology.通过类胡萝卜素和合成生物学改变形态和功能。
Plant Physiol. 2019 Mar;179(3):830-843. doi: 10.1104/pp.18.01122. Epub 2018 Oct 25.

植物类胡萝卜素代谢利用防御机制来对抗活性羰基物种和异源生物。

Plant apocarotenoid metabolism utilizes defense mechanisms against reactive carbonyl species and xenobiotics.

机构信息

Faculty of Biology II, University of Freiburg, 79104 Freiburg, Germany.

Université de Strasbourg, INRAE, SVQV UMR-A 1131, F-68000 Colmar, France.

出版信息

Plant Physiol. 2021 Mar 15;185(2):331-351. doi: 10.1093/plphys/kiaa033.

DOI:10.1093/plphys/kiaa033
PMID:33721895
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC8133636/
Abstract

Carotenoid levels in plant tissues depend on the relative rates of synthesis and degradation of the molecules in the pathway. While plant carotenoid biosynthesis has been extensively characterized, research on carotenoid degradation and catabolism into apocarotenoids is a relatively novel field. To identify apocarotenoid metabolic processes, we characterized the transcriptome of transgenic Arabidopsis (Arabidopsis thaliana) roots accumulating high levels of β-carotene and, consequently, β-apocarotenoids. Transcriptome analysis revealed feedback regulation on carotenogenic gene transcripts suitable for reducing β-carotene levels, suggesting involvement of specific apocarotenoid signaling molecules originating directly from β-carotene degradation or after secondary enzymatic derivatizations. Enzymes implicated in apocarotenoid modification reactions overlapped with detoxification enzymes of xenobiotics and reactive carbonyl species (RCS), while metabolite analysis excluded lipid stress response, a potential secondary effect of carotenoid accumulation. In agreement with structural similarities between RCS and β-apocarotenoids, RCS detoxification enzymes also converted apocarotenoids derived from β-carotene and from xanthophylls into apocarotenols and apocarotenoic acids in vitro. Moreover, glycosylation and glutathionylation-related processes and translocators were induced. In view of similarities to mechanisms found in crocin biosynthesis and cellular deposition in saffron (Crocus sativus), our data suggest apocarotenoid metabolization, derivatization and compartmentalization as key processes in (apo)carotenoid metabolism in plants.

摘要

植物组织中的类胡萝卜素水平取决于该途径中分子的合成和降解的相对速率。虽然植物类胡萝卜素生物合成已经得到了广泛的研究,但类胡萝卜素降解和代谢为脱辅基类胡萝卜素的研究是一个相对较新的领域。为了鉴定脱辅基类胡萝卜素代谢过程,我们对积累高水平β-胡萝卜素并因此积累β-脱辅基类胡萝卜素的转基因拟南芥(Arabidopsis thaliana)根的转录组进行了表征。转录组分析显示了对类胡萝卜素生物合成基因转录物的反馈调节,适合降低β-胡萝卜素水平,这表明直接源自β-胡萝卜素降解或次级酶衍生化的特定脱辅基类胡萝卜素信号分子的参与。涉及脱辅基类胡萝卜素修饰反应的酶与外源性化学物质和活性羰基物质(RCS)的解毒酶重叠,而代谢物分析排除了类胡萝卜素积累的潜在次级效应,即脂质应激反应。与 RCS 和β-脱辅基类胡萝卜素之间的结构相似性一致,RCS 解毒酶还将β-胡萝卜素和叶黄素衍生的脱辅基类胡萝卜素转化为β-脱辅基类胡萝卜醇和β-脱辅基类胡萝卜酸。此外,还诱导了糖基化和谷胱甘肽化相关过程和转运蛋白。鉴于与藏红花(Crocus sativus)中发现的类胡萝卜素生物合成和细胞沉积机制的相似性,我们的数据表明脱辅基类胡萝卜素代谢、衍生化和区室化是植物中(脱辅)类胡萝卜素代谢的关键过程。