Coles J P, Phillips A L, Croker S J, García-Lepe R, Lewis M J, Hedden P
Department of Agricultural Sciences, University of Bristol, Long Ashton, UK.
Plant J. 1999 Mar;17(5):547-56. doi: 10.1046/j.1365-313x.1999.00410.x.
Gibberellin (GA) 20-oxidase catalyses consecutive steps late in GA biosynthesis in plants. In Arabidopsis, the enzyme is encoded by a gene family of at least three members (AtGA20ox1, AtGA20ox2 and AtGA20ox3) with differential patterns of expression. The genes are regulated by feedback from bioactive GAs, suggesting that the enzymes may be involved in regulating GA biosynthesis. To investigate this, we produced transgenic Arabidopsis expressing sense or antisense copies of each of the GA 20-oxidase cDNAs. Over-expression of any of the cDNAs gave rise to seedlings with elongated hypocotyls; the plants flowered earlier than controls in both long and short days and were 25% taller at maturity. GA analysis of the vegetative rosettes showed a two- to threefold increase in the level of GA4, indicating that GA 20-oxidase normally limits bioactive GA levels. Plants expressing antisense copies of AtGA20ox1 had short hypocotyls and reduced rates of stem elongation. This was reflected in reduced levels of GA4 in both rosettes and shoot tips. In short days, flowering was delayed and the reduction in the rate of stem elongation was greater. Antisense expression of AtGA20ox2 had no apparent effects in long days, but stem growth in one transgenic line grown in short days was reduced by 20%. Expression of antisense copies of AtGA20ox3 had no visible effect, except for one transgenic line that had short hypocotyls. These results demonstrate that GA levels and, hence, plant growth and development can be modified by manipulation of GA 20-oxidase expression in transgenic plants.
赤霉素(GA)20 -氧化酶催化植物GA生物合成后期的连续步骤。在拟南芥中,该酶由一个至少包含三个成员(AtGA20ox1、AtGA20ox2和AtGA20ox3)的基因家族编码,它们具有不同的表达模式。这些基因受生物活性GA的反馈调节,表明这些酶可能参与调节GA生物合成。为了对此进行研究,我们构建了表达每个GA 20 -氧化酶cDNA正义或反义拷贝的转基因拟南芥。任何一个cDNA的过表达都会产生下胚轴伸长的幼苗;在长日照和短日照条件下,这些植株都比对照更早开花,成熟时植株高度高出25%。对莲座叶丛进行GA分析表明,GA4水平增加了两到三倍,这表明GA 20 -氧化酶通常会限制生物活性GA的水平。表达AtGA20ox1反义拷贝的植株下胚轴短,茎伸长速率降低。这反映在莲座叶丛和茎尖中GA4水平的降低。在短日照条件下,开花延迟,茎伸长速率的降低更为明显。AtGA20ox2反义表达在长日照条件下没有明显影响,但在短日照条件下生长的一个转基因株系的茎生长减少了20%。AtGA20ox3反义拷贝的表达没有明显可见的影响,只有一个转基因株系的下胚轴短。这些结果表明,通过在转基因植物中操纵GA 20 -氧化酶的表达,可以改变GA水平,进而改变植物的生长和发育。