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Abscisic Alcohol Is an Intermediate in Abscisic Acid Biosynthesis in a Shunt Pathway from Abscisic Aldehyde

机译:脱落醇是脱落酸分流途径中脱落酸生物合成的中间体。

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摘要

It has previously been shown that the abscisic acid (ABA)-deficient flacca and sitiens mutants of tomato are impaired in ABA-aldehyde oxidation and accumulate trans-ABA-alcohol as a result of the biosynthetic block (IB Taylor, RST Linforth, RJ Al-Naieb, WR Bowman, BA Marples [1988] Plant Cell Environ 11: 739-745). Here we report that the flacca and sitiens mutants accumulate trans-ABA and trans-ABA glucose ester and that this accumulation is due to trans-ABA biosynthesis. 18O labeling of water-stressed wild-type and mutant tomato leaves and analysis of [18O]ABA by tandem mass spectrometry show that the tomato mutants synthesize a significant percentage of their ABA and trans-ABA as [18O]ABA with two 18O atoms in the carboxyl group. We further show, by feeding experiments with [2H6]ABA-alcohol and 18O2, that this doubly-carboxyl-labeled ABA is synthesized from [18O]ABA-alcohol with incorporation of molecular oxygen. In vivo inhibition of [2H6]ABA-alcohol oxidation by carbon monoxide establishes the involvement of a P-450 monooxygenase. Likewise, carbon monoxide inhibits the synthesis of doubly-carboxyl-labeled ABA in 18O-labeling experiments. This minor shunt pathway from ABA-aldehyde to ABA-alcohol to ABA operates in all plants examined. For the ABA-deficient mutants impaired in ABA-aldehyde oxidation, this shunt pathway is an important source of ABA and is physiologically significant.
机译:以前的研究表明,由于生物合成的阻滞作用,番茄的脱落酸(ABA)缺陷型flacca和satiens突变体在ABA-醛氧化中受损并积累反式ABA醇(IB Taylor,RST Linforth,RJ Al -Naieb,WR Bowman,BA Marples [1988] Plant Cell Environ 11:739-745)。在这里,我们报告flacca和sitiens突变体积累了反式ABA和反式ABA葡萄糖酯,并且这种积累是由于反式ABA的生物合成所致。水分胁迫的野生型和突变番茄叶片的 18 O标记以及串联质谱法对[ 18 O] ABA的分析表明,番茄突变体合成了显着比例的它们的ABA和反式ABA为[ 18 O] ABA,在羧基中具有两个 18 O原子。通过用[ 2 H6] ABA醇和 18 O2进行喂养实验,我们进一步表明,这种双羧基标记的ABA是由[ 18 < / sup> O] ABA醇与分子氧的结合。一氧化碳对[ 2 H6] ABA醇氧化的体内抑制作用建立了P-450单加氧酶的参与。同样,一氧化碳会在 18 O标记实验中抑制双羧基标记的ABA的合成。从ABA醛到ABA醇再到ABA的这种次要分路在所有受检植物中均起作用。对于ABA-醛氧化受损的ABA缺失突变体,该分路途径是ABA的重要来源,具有重要的生理意义。

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