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柑橘果皮组织转录组分析揭示了苯丙烷类和乙烯对诱导抗性的基本影响。

Transcriptomic profiling of citrus fruit peel tissues reveals fundamental effects of phenylpropanoids and ethylene on induced resistance.

机构信息

Instituto de Agroquímica y Tecnología de Alimentos, Consejo Superior de Investigaciones Científicas (IATA-CSIC), Valencia, Spain.

出版信息

Mol Plant Pathol. 2011 Dec;12(9):879-97. doi: 10.1111/j.1364-3703.2011.00721.x. Epub 2011 May 12.

DOI:10.1111/j.1364-3703.2011.00721.x
PMID:21726388
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC6640524/
Abstract

Penicillium spp. are the major postharvest pathogens of citrus fruit in Mediterranean climatic regions. The induction of natural resistance constitutes one of the most promising alternatives to avoid the environmental contamination and health problems caused by chemical fungicides. To understand the bases of the induction of resistance in citrus fruit against Penicillium digitatum, we have used a 12k citrus cDNA microarray to study transcriptional changes in the outer and inner parts of the peel (flavedo and albedo, respectively) of elicited fruits. The elicitor treatment led to an over-representation of biological processes associated with secondary metabolism, mainly phenylpropanoids and cellular amino acid biosynthesis and methionine metabolism, and the down-regulation of genes related to biotic and abiotic stresses. Among phenylpropanoids, we detected the over-expression of a large subset of genes important for the synthesis of flavonoids, coumarins and lignin, especially in the internal tissue. Furthermore, these genes and those of ethylene biosynthesis showed the highest induction. The involvement of both phenylpropanoid and ethylene pathways was confirmed by examining changes in gene expression and ethylene production in elicited citrus fruit. Therefore, global results indicate that secondary metabolism, mainly phenylpropanoids, and ethylene play important roles in the induction of resistance in citrus fruit.

摘要

青霉属真菌是地中海气候地区柑橘果实采后的主要病原菌。诱导自然抗性是避免化学杀菌剂造成的环境污染和健康问题的最有前途的替代方法之一。为了了解柑橘果实对青霉属真菌(Penicillium digitatum)诱导抗性的基础,我们使用了一个 12k 的柑橘 cDNA 微阵列来研究外果皮(flavedo)和内果皮(albedo)中诱导果实的转录变化。诱导剂处理导致与次生代谢相关的生物过程的过度表达,主要是苯丙烷类和细胞氨基酸生物合成和蛋氨酸代谢,以及与生物和非生物胁迫相关的基因下调。在苯丙烷类中,我们检测到大量与类黄酮、香豆素和木质素合成有关的基因的过度表达,特别是在内组织中。此外,这些基因和乙烯生物合成的基因表现出最高的诱导。通过检查诱导柑橘果实中基因表达和乙烯生成的变化,证实了苯丙烷途径和乙烯途径的参与。因此,整体结果表明,次生代谢,主要是苯丙烷类和乙烯,在柑橘果实抗性的诱导中起重要作用。

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The phenylpropanoid pathway and plant defence-a genomics perspective.苯丙烷代谢途径与植物防御——从基因组学角度看。
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Fruit-surface flavonoid accumulation in tomato is controlled by a SlMYB12-regulated transcriptional network.番茄果实表面类黄酮的积累受 SlMYB12 调控的转录网络控制。
PLoS Genet. 2009 Dec;5(12):e1000777. doi: 10.1371/journal.pgen.1000777. Epub 2009 Dec 18.
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Biochemical and molecular analysis of pink tomatoes: deregulated expression of the gene encoding transcription factor SlMYB12 leads to pink tomato fruit color.粉红番茄的生化和分子分析:转录因子 SlMYB12 基因表达失控导致粉红番茄果实颜色。
Plant Physiol. 2010 Jan;152(1):71-84. doi: 10.1104/pp.109.147322. Epub 2009 Nov 11.
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