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本文引用的文献

1
Natural enemies drive geographic variation in plant defenses.天敌驱动植物防御的地理变异。
Science. 2012 Oct 5;338(6103):116-9. doi: 10.1126/science.1226397.
2
NRT/PTR transporters are essential for translocation of glucosinolate defence compounds to seeds.NRT/PTR 转运蛋白对于向种子转运芥子硫苷防御化合物是必需的。
Nature. 2012 Aug 23;488(7412):531-4. doi: 10.1038/nature11285.
3
Mass spectrometry imaging of glucosinolates in Arabidopsis flowers and siliques.拟南芥花和角果中硫代葡萄糖苷的质谱成像分析。
Phytochemistry. 2012 May;77:110-8. doi: 10.1016/j.phytochem.2012.01.026. Epub 2012 Mar 2.
4
Expression pattern of the glucosinolate side chain biosynthetic genes MAM1 and MAM3 of Arabidopsis thaliana in different organs and developmental stages.拟南芥芥子油苷侧链生物合成基因 MAM1 和 MAM3 在不同器官和发育阶段的表达模式。
Plant Physiol Biochem. 2012 Apr;53:77-83. doi: 10.1016/j.plaphy.2012.01.015. Epub 2012 Jan 28.
5
Single-cell proteomic analysis of glucosinolate-rich S-cells in Arabidopsis thaliana.拟南芥中富含硫苷的 S 细胞的单细胞蛋白质组分析。
Methods. 2011 Aug;54(4):413-23. doi: 10.1016/j.ymeth.2011.06.005. Epub 2011 Jun 25.
6
Role of camalexin, indole glucosinolates, and side chain modification of glucosinolate-derived isothiocyanates in defense of Arabidopsis against Sclerotinia sclerotiorum.几丁质酶、吲哚类芥子油苷及芥子油苷衍生的异硫氰酸酯侧链修饰在拟南芥防御核盘菌中的作用。
Plant J. 2011 Jul;67(1):81-93. doi: 10.1111/j.1365-313X.2011.04578.x. Epub 2011 Apr 27.
7
Glucosinolate-accumulating S-cells in Arabidopsis leaves and flower stalks undergo programmed cell death at early stages of differentiation.在拟南芥的叶片和花茎中,积累硫苷的 S 细胞在分化的早期阶段经历程序性细胞死亡。
Plant J. 2010 Nov;64(3):456-69. doi: 10.1111/j.1365-313X.2010.04339.x. Epub 2010 Sep 28.
8
Differential effects of indole and aliphatic glucosinolates on lepidopteran herbivores.吲哚和脂肪族硫代葡萄糖苷对鳞翅目食草动物的不同影响。
J Chem Ecol. 2010 Aug;36(8):905-13. doi: 10.1007/s10886-010-9825-z. Epub 2010 Jul 9.
9
A complex interplay of three R2R3 MYB transcription factors determines the profile of aliphatic glucosinolates in Arabidopsis.三种 R2R3 MYB 转录因子的复杂相互作用决定了拟南芥中脂肪族硫代葡萄糖苷的特征。
Plant Physiol. 2010 May;153(1):348-63. doi: 10.1104/pp.109.149286. Epub 2010 Mar 26.
10
AtMetExpress development: a phytochemical atlas of Arabidopsis development.在代谢物表达的发展过程中:拟南芥发育的植物化学图谱。
Plant Physiol. 2010 Feb;152(2):566-78. doi: 10.1104/pp.109.148031. Epub 2009 Dec 18.

生物合成和长距离运输的整合在营养期拟南芥中建立了器官特异性的硫代葡萄糖苷图谱。

Integration of biosynthesis and long-distance transport establish organ-specific glucosinolate profiles in vegetative Arabidopsis.

机构信息

DynaMo Centre of Excellence, Department of Plant and Environmental Sciences, Faculty of Science, University of Copenhagen, 1871 Frederiksberg C, Denmark.

出版信息

Plant Cell. 2013 Aug;25(8):3133-45. doi: 10.1105/tpc.113.110890. Epub 2013 Aug 30.

DOI:10.1105/tpc.113.110890
PMID:23995084
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3784604/
Abstract

Although it is essential for plant survival to synthesize and transport defense compounds, little is known about the coordination of these processes. Here, we investigate the above- and belowground source-sink relationship of the defense compounds glucosinolates in vegetative Arabidopsis thaliana. In vivo feeding experiments demonstrate that the glucosinolate transporters1 and 2 (GTR1 and GTR2), which are essential for accumulation of glucosinolates in seeds, are likely to also be involved in bidirectional distribution of glucosinolates between the roots and rosettes, indicating phloem and xylem as their transport pathways. Grafting of wild-type, biosynthetic, and transport mutants show that both the rosette and roots are able to synthesize aliphatic and indole glucosinolates. While rosettes constitute the major source and storage site for short-chained aliphatic glucosinolates, long-chained aliphatic glucosinolates are synthesized both in roots and rosettes with roots as the major storage site. Our grafting experiments thus indicate that in vegetative Arabidopsis, GTR1 and GTR2 are involved in bidirectional long-distance transport of aliphatic but not indole glucosinolates. Our data further suggest that the distinct rosette and root glucosinolate profiles in Arabidopsis are shaped by long-distance transport and spatially separated biosynthesis, suggesting that integration of these processes is critical for plant fitness in complex natural environments.

摘要

虽然合成和运输防御化合物对植物的生存至关重要,但人们对这些过程的协调知之甚少。在这里,我们研究了营养生长拟南芥防御化合物硫代葡萄糖苷的地上和地下源-汇关系。体内饲喂实验表明,对于硫代葡萄糖苷在种子中积累至关重要的硫代葡萄糖苷转运蛋白 1 和 2(GTR1 和 GTR2)可能也参与了硫代葡萄糖苷在根和莲座叶之间的双向分配,表明韧皮部和木质部是它们的运输途径。野生型、生物合成和转运突变体的嫁接表明,莲座叶和根都能够合成脂肪族和吲哚硫代葡萄糖苷。虽然莲座叶是短链脂肪族硫代葡萄糖苷的主要来源和储存部位,但长链脂肪族硫代葡萄糖苷在根和莲座叶中都有合成,根是主要的储存部位。因此,我们的嫁接实验表明,在营养生长的拟南芥中,GTR1 和 GTR2 参与了脂肪族硫代葡萄糖苷的双向长距离运输,但不参与吲哚硫代葡萄糖苷的运输。我们的数据进一步表明,拟南芥中独特的莲座叶和根硫代葡萄糖苷图谱是由长距离运输和空间上分离的生物合成形成的,这表明这些过程的整合对于植物在复杂自然环境中的适应性至关重要。