Strigolactone Inhibition of Branching Independent of Polar Auxin Transport

生长素 司他内酯 腋芽 生长素极性运输 细胞生物学 生物 拟南芥 向重力性 植物激素 顶端优势 突变体 拟南芥 植物 开枪 生物化学 体外 组织培养 基因
作者
Philip B. Brewer,Elizabeth A. Dun,Renyi Gui,Michael G. Mason,Christine A. Beveridge
出处
期刊:Plant Physiology [Oxford University Press]
卷期号:168 (4): 1820-1829 被引量:102
标识
DOI:10.1104/pp.15.00014
摘要

The outgrowth of axillary buds into branches is regulated systemically via plant hormones and the demand of growing shoot tips for sugars. The plant hormone auxin is thought to act via two mechanisms. One mechanism involves auxin regulation of systemic signals, cytokinins and strigolactones, which can move into axillary buds. The other involves suppression of auxin transport/canalization from axillary buds into the main stem and is enhanced by a low sink for auxin in the stem. In this theory, the relative ability of the buds and stem to transport auxin controls bud outgrowth. Here, we evaluate whether auxin transport is required or regulated during bud outgrowth in pea (Pisum sativum). The profound, systemic, and long-term effects of the auxin transport inhibitor N-1-naphthylphthalamic acid had very little inhibitory effect on bud outgrowth in strigolactone-deficient mutants. Strigolactones can also inhibit bud outgrowth in N-1-naphthylphthalamic acid-treated shoots that have greatly diminished auxin transport. Moreover, strigolactones can inhibit bud outgrowth despite a much diminished auxin supply in in vitro or decapitated plants. These findings demonstrate that auxin sink strength in the stem is not important for bud outgrowth in pea. Consistent with alternative mechanisms of auxin regulation of systemic signals, enhanced auxin biosynthesis in Arabidopsis (Arabidopsis thaliana) can suppress branching in yucca1D plants compared with wild-type plants, but has no effect on bud outgrowth in a strigolactone-deficient mutant background.

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