Rashotte A M, DeLong A, Muday G K
Department of Biology, Wake Forest University, Winston-Salem, NC 27109, USA.
Plant Cell. 2001 Jul;13(7):1683-97. doi: 10.1105/tpc.010158.
Auxin transport is required for important growth and developmental processes in plants, including gravity response and lateral root growth. Several lines of evidence suggest that reversible protein phosphorylation regulates auxin transport. Arabidopsis rcn1 mutant seedlings exhibit reduced protein phosphatase 2A activity and defects in differential cell elongation. Here we report that reduced phosphatase activity alters auxin transport and dependent physiological processes in the seedling root. Root basipetal transport was increased in rcn1 or phosphatase inhibitor-treated seedlings but showed normal sensitivity to the auxin transport inhibitor naphthylphthalamic acid (NPA). Phosphatase inhibition reduced root gravity response and delayed the establishment of differential auxin-induced gene expression across a gravity-stimulated root tip. An NPA treatment that reduced basipetal transport in rcn1 and cantharidin-treated wild-type plants also restored a normal gravity response and asymmetric auxin-induced gene expression, indicating that increased basipetal auxin transport impedes gravitropism. Increased auxin transport in rcn1 or phosphatase inhibitor-treated seedlings did not require the AGR1/EIR1/PIN2/WAV6 or AUX1 gene products. In contrast to basipetal transport, root acropetal transport was normal in phosphatase-inhibited seedlings in the absence of NPA, although it showed reduced NPA sensitivity. Lateral root growth also exhibited reduced NPA sensitivity in rcn1 seedlings, consistent with acropetal transport controlling lateral root growth. These results support the role of protein phosphorylation in regulating auxin transport and suggest that the acropetal and basipetal auxin transport streams are differentially regulated.
生长素运输是植物重要生长和发育过程所必需的,包括重力响应和侧根生长。多条证据表明,可逆的蛋白质磷酸化调节生长素运输。拟南芥rcn1突变体幼苗表现出蛋白质磷酸酶2A活性降低以及细胞伸长差异方面的缺陷。在此我们报告,磷酸酶活性降低会改变幼苗根中的生长素运输及相关生理过程。在rcn1或经磷酸酶抑制剂处理的幼苗中,根向基运输增加,但对生长素运输抑制剂萘基邻苯二甲酸(NPA)表现出正常的敏感性。磷酸酶抑制降低了根的重力响应,并延迟了生长素诱导基因在重力刺激根尖上差异表达的建立。一种能降低rcn1和斑蝥素处理的野生型植物中向基运输的NPA处理,也恢复了正常的重力响应和不对称的生长素诱导基因表达,表明向基生长素运输增加会阻碍向地性。rcn1或经磷酸酶抑制剂处理的幼苗中生长素运输增加并不需要AGR1/EIR1/PIN2/WAV6或AUX1基因产物。与向基运输相反,在没有NPA的情况下,磷酸酶抑制的幼苗中根向顶运输正常,尽管其对NPA的敏感性降低。侧根生长在rcn1幼苗中也表现出对NPA的敏感性降低,这与向顶运输控制侧根生长一致。这些结果支持了蛋白质磷酸化在调节生长素运输中的作用,并表明向顶和向基生长素运输流受到不同的调节。