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通过用玉米基因互补拟南芥类黄酮突变体揭示植物次生代谢酶的功能保守性

Functional conservation of plant secondary metabolic enzymes revealed by complementation of Arabidopsis flavonoid mutants with maize genes.

作者信息

Dong X, Braun E L, Grotewold E

机构信息

Department of Plant Biology and Plant Biotechnology Center, The Ohio State University, Columbus, Ohio 43210, USA.

出版信息

Plant Physiol. 2001 Sep;127(1):46-57. doi: 10.1104/pp.127.1.46.

Abstract

Mutations in the transparent testa (tt) loci abolish pigment production in Arabidopsis seed coats. The TT4, TT5, and TT3 loci encode chalcone synthase, chalcone isomerase, and dihydroflavonol 4-reductase, respectively, which are essential for anthocyanin accumulation and may form a macromolecular complex. Here, we show that the products of the maize (Zea mays) C2, CHI1, and A1 genes complement Arabidopsis tt4, tt5, and tt3 mutants, restoring the ability of these mutants to accumulate pigments in seed coats and seedlings. Overexpression of the maize genes in wild-type Arabidopsis seedlings does not result in increased anthocyanin accumulation, suggesting that the steps catalyzed by these enzymes are not rate limiting in the conditions assayed. The expression of the maize A1 gene in the flavonoid 3' hydroxylase Arabidopsis tt7 mutant resulted in an increased accumulation of pelargonidin. We conclude that enzymes involved in secondary metabolism can be functionally exchangeable between plants separated by large evolutionary distances. This is in sharp contrast to the notion that the more relaxed selective constrains to which secondary metabolic pathways are subjected is responsible for the rapid divergence of the corresponding enzymes.

摘要

透明种皮(tt)位点的突变会消除拟南芥种皮中的色素生成。TT4、TT5和TT3位点分别编码查尔酮合酶、查尔酮异构酶和二氢黄酮醇4-还原酶,它们对于花青素积累至关重要,并且可能形成大分子复合物。在此,我们表明玉米(Zea mays)C2、CHI1和A1基因的产物可互补拟南芥tt4、tt5和tt3突变体,恢复这些突变体在种皮和幼苗中积累色素的能力。在野生型拟南芥幼苗中过表达玉米基因不会导致花青素积累增加,这表明在检测条件下这些酶催化的步骤不是限速步骤。玉米A1基因在黄酮类3'羟化酶拟南芥tt7突变体中的表达导致天竺葵素积累增加。我们得出结论,参与次生代谢的酶在进化距离较远的植物之间可以功能互换。这与以下观点形成鲜明对比,即次生代谢途径所受的选择性限制较为宽松是相应酶快速分化的原因。

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Flavonoid evolution: an enzymic approach.类黄酮的演化:酶的作用途径。
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