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查尔酮合酶是类黄酮生物合成途径的第一步,RNA干扰使其沉默会导致番茄单性结实。

RNA interference silencing of chalcone synthase, the first step in the flavonoid biosynthesis pathway, leads to parthenocarpic tomato fruits.

作者信息

Schijlen Elio G W M, de Vos C H Ric, Martens Stefan, Jonker Harry H, Rosin Faye M, Molthoff Jos W, Tikunov Yury M, Angenent Gerco C, van Tunen Arjen J, Bovy Arnaud G

机构信息

Plant Research International, Business Unit Bioscience, Wageningen, The Netherlands.

出版信息

Plant Physiol. 2007 Jul;144(3):1520-30. doi: 10.1104/pp.107.100305. Epub 2007 May 3.

DOI:10.1104/pp.107.100305
PMID:17478633
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC1914118/
Abstract

Parthenocarpy, the formation of seedless fruits in the absence of functional fertilization, is a desirable trait for several important crop plants, including tomato (Solanum lycopersicum). Seedless fruits can be of great value for consumers, the processing industry, and breeding companies. In this article, we propose a novel strategy to obtain parthenocarpic tomatoes by down-regulation of the flavonoid biosynthesis pathway using RNA interference (RNAi)-mediated suppression of chalcone synthase (CHS), the first gene in the flavonoid pathway. In CHS RNAi plants, total flavonoid levels, transcript levels of both Chs1 and Chs2, as well as CHS enzyme activity were reduced by up to a few percent of the corresponding wild-type values. Surprisingly, all strong Chs-silenced tomato lines developed parthenocarpic fruits. Although a relation between flavonoids and parthenocarpic fruit development has never been described, it is well known that flavonoids are essential for pollen development and pollen tube growth and, hence, play an essential role in plant reproduction. The observed parthenocarpic fruit development appeared to be pollination dependent, and Chs RNAi fruits displayed impaired pollen tube growth. Our results lead to novel insight in the mechanisms underlying parthenocarpic fruit development. The potential of this technology for applications in plant breeding and biotechnology will be discussed.

摘要

单性结实是指在没有功能性受精的情况下形成无籽果实,对于包括番茄(Solanum lycopersicum)在内的几种重要农作物来说,这是一个理想的性状。无籽果实对消费者、加工行业和育种公司都具有很大的价值。在本文中,我们提出了一种新策略,即通过RNA干扰(RNAi)介导的查尔酮合酶(CHS)(黄酮类途径中的第一个基因)的抑制来下调黄酮类生物合成途径,从而获得单性结实的番茄。在CHS RNAi植株中,总黄酮水平、Chs1和Chs2的转录水平以及CHS酶活性降低至相应野生型值的百分之几。令人惊讶的是,所有Chs基因强烈沉默的番茄品系都发育出了单性结实的果实。尽管从未描述过黄酮类化合物与单性结实果实发育之间的关系,但众所周知,黄酮类化合物对花粉发育和花粉管生长至关重要,因此在植物繁殖中起着重要作用。观察到的单性结实果实发育似乎依赖于授粉,Chs RNAi果实表现出花粉管生长受损。我们的结果为单性结实果实发育的潜在机制带来了新的见解。将讨论该技术在植物育种和生物技术中的应用潜力。

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RNA interference of soybean isoflavone synthase genes leads to silencing in tissues distal to the transformation site and to enhanced susceptibility to Phytophthora sojae.大豆异黄酮合酶基因的RNA干扰导致转化位点远端组织中的基因沉默,并增强对大豆疫霉的易感性。
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