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通过抑制豌豆植物中支链氨基酸生物合成途径的不同酶来诱导发酵代谢。

Fermentative metabolism is induced by inhibiting different enzymes of the branched-chain amino acid biosynthesis pathway in pea plants.

作者信息

Zabalza Ana, González Esther M, Arrese-Igor Cesar, Royuela Mercedes

机构信息

Departamento Ciencias del Medio Natural, Universidad Pública de Navarra, Campus Arrosadia, Pamplona, Spain.

出版信息

J Agric Food Chem. 2005 Sep 21;53(19):7486-93. doi: 10.1021/jf050654x.

Abstract

The inhibition of branched-chain amino acid (BCAA) biosynthesis was evaluated in pea plants in relation to the ability for induction of fermentative metabolism under aerobic conditions. Chlorsulfuron and imazethapyr (inhibitors of acetolactate synthase, ALS, EC 4.1.3.18) produced a strong induction of pyruvate decarboxylase (PDC, EC 4.1.1.1) and alcohol dehydrogenase (ADH, EC 1.1.1.1) activities and a lesser induction of lactate dehydrogenase (LDH, EC 1.1.1.27) and alanine aminotransferase (AlaAT, EC 2.6.1.2) activities in roots. Inhibition of the second enzyme of the BCAA biosynthesis (ketol-acid reductoisomerase, KARI, EC 1.1.1.86) by Hoe 704 (2-dimethylphosphinoyl-2-hydroxyacetic acid) and CPCA (1,1-cyclopropanedicarboxylic acid) enhanced fermentative enzyme activities including PDC, ADH, and AlaAT. Fermentative metabolism induction occurring with ALS- and KARI-inhibitors was related to a higher expression of PDC. In the case of KARI inhibition, it is proposed that fermentation induction is due to an inhibition of ALS activity resulted from an increase in acetolactate concentration. Fermentative metabolism induction in roots, or at least ethanolic fermentation, appeared to be a general physiological response to the BCAA biosynthesis inhibition.

摘要

在豌豆植株中,研究了支链氨基酸(BCAA)生物合成的抑制与有氧条件下诱导发酵代谢能力之间的关系。氯磺隆和咪唑乙烟酸(乙酰乳酸合酶,ALS,EC 4.1.3.18的抑制剂)在根中强烈诱导丙酮酸脱羧酶(PDC,EC 4.1.1.1)和乙醇脱氢酶(ADH,EC 1.1.1.1)的活性,对乳酸脱氢酶(LDH,EC 1.1.1.27)和丙氨酸转氨酶(AlaAT,EC 2.6.1.2)活性的诱导作用较小。Hoe 704(2-二甲基膦酰基-2-羟基乙酸)和CPCA(1,1-环丙烷二甲酸)对BCAA生物合成的第二种酶(酮酸还原异构酶,KARI,EC 1.1.1.86)的抑制作用增强了包括PDC、ADH和AlaAT在内的发酵酶活性。ALS和KARI抑制剂诱导的发酵代谢与PDC的更高表达有关。在KARI抑制的情况下,有人提出发酵诱导是由于乙酰乳酸浓度增加导致ALS活性受到抑制。根中的发酵代谢诱导,或者至少是乙醇发酵,似乎是对BCAA生物合成抑制的一种普遍生理反应。

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