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Inhibition of aconitase in citrus fruit callus results in a metabolic shift towards amino acid biosynthesis

机译:柑桔愈伤组织中乌头酸酶的抑制导致代谢向氨基酸生物合成的转变

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摘要

Citrate, a major determinant of citrus fruit quality, accumulates early in fruit development and declines towards maturation. The isomerization of citrate to isocitrate, catalyzed by aconitase is a key step in acid metabolism. Inhibition of mitochondrial aconitase activity early in fruit development contributes to acid accumulation, whereas increased cytosolic activity of aconitase causes citrate decline. It was previously hypothesized that the block in mitochondrial aconitase activity, inducing acid accumulation, is caused by citramalate. Here, we investigated the effect of citramalate and of another aconitase inhibitor, oxalomalate, on aconitase activity and regulation in callus originated from juice sacs. These compounds significantly increased citrate content and reduced the enzyme’s activity, while slightly inducing its protein level. Citramalate inhibited the mitochondrial, but not cytosolic form of the enzyme. Its external application to mandarin fruits resulted in inhibition of aconitase activity, with a transient increase in fruit acidity detected a few weeks later. The endogenous level of citramalate was analyzed in five citrus varieties: its pattern of accumulation challenged the notion of its action as an endogenous inhibitor of mitochondrial aconitase. Metabolite profiling of oxalomalate-treated cells showed significant increases in a few amino acids and organic acids. The activities of alanine transaminase, aspartate transaminase and aspartate kinase, as well as these of two γ-aminobutyrate (GABA)-shunt enzymes, succinic semialdehyde reductase (SSAR) and succinic semialdehyde dehydrogenase (SSAD) were significantly induced in oxalomalate-treated cells. It is suggested that the increase in citrate, caused by aconitase inhibition, induces amino acid synthesis and the GABA shunt, in accordance with the suggested fate of citrate during the acid decline stage in citrus fruit.
机译:柠檬酸是柑橘类水果品质的主要决定因素,它在果实发育的早期积累,并在成熟后下降。乌头酸酶催化的柠檬酸异构化为异柠檬酸是酸代谢中的关键步骤。水果发育早期抑制线粒体乌头酸酶活性有助于酸积累,而乌头酸酶的细胞溶质活性增加会引起柠檬酸下降。先前假设,线粒体乌头酸酶活性受阻,诱导酸积累,是由柠檬酸引起的。在这里,我们调查了柠檬酸和另一种乌头酸抑制剂,草酰草酸盐对果糖囊愈伤组织中乌头酸酶活性和调控的影响。这些化合物显着增加了柠檬酸盐的含量,降低了酶的活性,同时略微诱导了其蛋白质水平。柠檬酸苹果酸抑制线粒体,但不抑制酶的胞质形式。它在柑桔果实上的外用导致乌头酸酶活性受到抑制,几周后检测到果实酸度瞬时增加。在五个柑橘品种中分析了柠檬酸的内源性水平:其积累模式挑战了其作为线粒体乌头酸酶内源性抑制剂的作用观念。草酰草酸盐处理过的细胞的代谢产物谱显示一些氨基酸和有机酸显着增加。在草酸酯处理过的细胞中,丙氨酸转氨酶,天冬氨酸转氨酶和天冬氨酸激酶的活性,以及​​两种γ-氨基丁酸(GABA)分流酶,琥珀酸半醛还原酶(SSAR)和琥珀酸半醛脱氢酶(SSAD)的活性均被显着诱导。据提示,乌头酸酶抑制引起的柠檬酸盐的增加,诱导了氨基酸的合成和GABA分流,这与柑桔类水果酸减少阶段柠檬酸盐的拟定命运一致。

著录项

  • 来源
    《Planta》 |2011年第3期|p.501-513|共13页
  • 作者单位

    Department of Fruit Tree Sciences, ARO, The Volcani Center, P.O. Box 6, Bet Dagan, 50250, Israel;

    Department of Fruit Tree Sciences, ARO, The Volcani Center, P.O. Box 6, Bet Dagan, 50250, Israel;

    Max Planck Institute of Molecular Plant Physiology, Wissenschaftspark Golm, Am Mühlenberg 1, 14476, Potsdam-Golm, Germany;

    Department of Fruit Tree Sciences, ARO, The Volcani Center, P.O. Box 6, Bet Dagan, 50250, Israel;

    Department of Fruit Tree Sciences, ARO, The Volcani Center, P.O. Box 6, Bet Dagan, 50250, Israel;

    Department of Plant Sciences, Mail Stop 5, University of California, 1 Shields Ave, Davis, CA, 95616, USA;

    Max Planck Institute of Molecular Plant Physiology, Wissenschaftspark Golm, Am Mühlenberg 1, 14476, Potsdam-Golm, Germany;

    Department of Plant Sciences, Mail Stop 5, University of California, 1 Shields Ave, Davis, CA, 95616, USA;

    Department of Fruit Tree Sciences, ARO, The;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Acidity; Aconitase; Citramalate; Citrate; Citrus; Fruit development; GABA shunt; Oxalomalate;

    机译:酸度;乌头酸酶;柠檬酸;柠檬酸;柑橘;水果发育;GABA分流;草酸马来酸;

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