Department of Applied Genetics and Cell Biology, University of Natural Resources and Life Sciences Vienna (BOKU), Muthgasse 18, 1190 Vienna, Austria.
Department of Biochemistry and Biotechnology, Faculty of Agronomy and Bioengineering, Poznań University of Life Sciences, Dojazd 11, 60-632 Poznań, Poland.
Int J Mol Sci. 2020 Sep 3;21(17):6438. doi: 10.3390/ijms21176438.
Plants adjust their architecture to a constantly changing environment, requiring adaptation of differential growth. Despite their importance, molecular switches, which define growth transitions, are largely unknown. Apical hook development in dark grown () seedlings serves as a suitable model for differential growth transition in plants. Here, we show that the phytohormone auxin counteracts the light-induced growth transition during apical hook opening. We, subsequently, identified genes which are inversely regulated by light and auxin. We used in silico analysis of the regulatory elements in this set of genes and subsequently used natural variation in gene expression to uncover correlations between underlying transcription factors and the in silico predicted target genes. This approach uncovered that MADS box transcription factor modulates apical hook opening. Our data shows that transient expression represses the expression of growth stimulating genes during early phases of apical hook development and therewith guards the transition to growth promotion for apical hook opening. Here, we propose a role for FUL in setting tissue identity, thereby regulating differential growth during apical hook development.
植物会根据不断变化的环境调整自身结构,这需要差异化生长的适应。尽管这些分子开关对于差异化生长的转变非常重要,但目前我们还知之甚少。黑暗中生长的 () 幼苗的顶端弯钩发育为植物的差异化生长转变提供了一个很好的模型。在这里,我们发现植物激素生长素会抵消光诱导的顶端弯钩张开过程中的生长转变。随后,我们鉴定了由光和生长素反向调控的基因。我们利用这组基因的调控元件的计算机分析,并随后利用基因表达的自然变异来揭示潜在转录因子与计算机预测的靶基因之间的相关性。这种方法揭示了 MADS 框转录因子 调节顶端弯钩的张开。我们的数据表明,瞬时 表达在顶端弯钩发育的早期阶段抑制了生长刺激基因的表达,从而为顶端弯钩的生长促进过渡提供了保护。在这里,我们提出 FUL 在设定组织身份方面的作用,从而调节顶端弯钩发育过程中的差异化生长。