Robert Hélène S, Grunewald Wim, Sauer Michael, Cannoot Bernard, Soriano Mercedes, Swarup Ranjan, Weijers Dolf, Bennett Malcolm, Boutilier Kim, Friml Jiří
Department of Plant Systems Biology, Flanders Institute for Biotechnology (VIB) and Department of Plant Biotechnology and Bioinformatics, Ghent University, 9052 Gent, Belgium Mendel Centre for Genomics and Proteomics of Plants Systems, CEITEC MU - Central European Institute of Technology, Masaryk University, 625 00 Brno, Czech Republic.
Department of Plant Systems Biology, Flanders Institute for Biotechnology (VIB) and Department of Plant Biotechnology and Bioinformatics, Ghent University, 9052 Gent, Belgium.
Development. 2015 Feb 15;142(4):702-11. doi: 10.1242/dev.115832. Epub 2015 Jan 23.
The plant hormone auxin and its directional transport are known to play a crucial role in defining the embryonic axis and subsequent development of the body plan. Although the role of PIN auxin efflux transporters has been clearly assigned during embryonic shoot and root specification, the role of the auxin influx carriers AUX1 and LIKE-AUX1 (LAX) proteins is not well established. Here, we used chemical and genetic tools on Brassica napus microspore-derived embryos and Arabidopsis thaliana zygotic embryos, and demonstrate that AUX1, LAX1 and LAX2 are required for both shoot and root pole formation, in concert with PIN efflux carriers. Furthermore, we uncovered a positive-feedback loop between MONOPTEROS (ARF5)-dependent auxin signalling and auxin transport. This MONOPTEROS-dependent transcriptional regulation of auxin influx (AUX1, LAX1 and LAX2) and auxin efflux (PIN1 and PIN4) carriers by MONOPTEROS helps to maintain proper auxin transport to the root tip. These results indicate that auxin-dependent cell specification during embryo development requires balanced auxin transport involving both influx and efflux mechanisms, and that this transport is maintained by a positive transcriptional feedback on auxin signalling.
植物激素生长素及其定向运输在确定胚胎轴和随后的身体发育模式中起着关键作用。尽管PIN生长素外排转运蛋白在胚胎芽和根的特化过程中的作用已明确,但生长素内流载体AUX1和类AUX1(LAX)蛋白的作用尚未完全明确。在这里,我们对甘蓝型油菜小孢子衍生胚胎和拟南芥合子胚胎使用了化学和遗传工具,证明AUX1、LAX1和LAX2与PIN外排转运蛋白协同作用,对芽和根极的形成都是必需的。此外,我们发现了单翼子叶(ARF5)依赖的生长素信号传导与生长素运输之间的正反馈回路。单翼子叶对生长素内流(AUX1、LAX1和LAX2)和生长素外排(PIN1和PIN4)载体的这种依赖转录调控有助于维持向根尖的适当生长素运输。这些结果表明,胚胎发育过程中生长素依赖的细胞特化需要涉及内流和外排机制的平衡生长素运输,并且这种运输通过对生长素信号传导的正转录反馈得以维持。