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首页> 外文期刊>Plant physiology >An auxin transport independent pathway is involved in phosphate stress-induced root architectural alterations in arabidopsis. Identification of BIG as a mediator of auxin in pericycle cell activation
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An auxin transport independent pathway is involved in phosphate stress-induced root architectural alterations in arabidopsis. Identification of BIG as a mediator of auxin in pericycle cell activation

机译:生长素独立运输途径参与拟南芥中磷酸盐胁迫诱导的根系结构改变。 BIG在周细胞活化中作为生长素调节剂的鉴定

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摘要

Arabidopsis (Arabidopsis thaliana) plants display a number of root developmental responses to low phosphate availability, including primary root growth inhibition, greater formation of lateral roots, and increased root hair elongation. To gain insight into the regulatory mechanisms by which phosphorus (P) availability alters postembryonic root development, we performed a mutant screen to identify genetic determinants involved in the response to P deprivation. Three low phosphate-resistant root lines (lpr1-1 to lpr1-3) were isolated because of their reduced lateral root formation in low P conditions. Genetic and molecular analyses revealed that all lpr1 mutants were allelic to BIG, which is required for normal auxin transport in Arabidopsis. Detailed characterization of lateral root primordia (LRP) development in wild-type and lpr1 mutants revealed that BIG is required for pericycle cell activation to form LRP in both high (1 mM) and low (1 muM) P conditions, but not for the low P-induced alterations in primary root growth, lateral root emergence, and root hair elongation. Exogenously supplied auxin restored normal lateral root formation in lpr1 mutants in the two P treatments. Treatment of wild-type Arabidopsis seedlings with brefeldin A, a fungal metabolite that blocks auxin transport, phenocopies the root developmental alterations observed in lpr1 mutants in both high and low P conditions, suggesting that BIG participates in vesicular targeting of auxin transporters. Taken together, our results show that auxin transport and BIG function have fundamental roles in pericycle cell activation to form LRP and promote root hair elongation. The mechanism that activates root system architectural alterations in response to P deprivation, however, seems to be independent of auxin transport and BIG.
机译:拟南芥(Arabidopsis thaliana)植物显示出许多对低磷酸盐利用度的根发育反应,包括初级根生长抑制,侧根形成更多和根毛伸长增加。为了深入了解磷(P)可用性改变胚后根发育的调控机制,我们进行了突变筛选,以鉴定参与对P剥夺反应的遗传决定因素。分离了三个低磷酸盐抗性根系(lpr1-1至lpr1-3),因为它们在低磷条件下减少了侧根的形成。遗传和分子分析表明,所有lpr1突变体都是BIG等位基因,这是拟南芥中正常生长素运输所必需的。在野生型和lpr1突变体中侧根原基(LRP)发育的详细特征表明,在高(1 mM)和低(1μM)P条件下,周长细胞激活形成LRP都需要BIG,但对于低磷条件,则不需要BIG P诱导的初生根生长,侧根出现和根毛伸长变化。在两种P处理中,外源提供的生长素在lpr1突变体中恢复了正常的侧根形成。用布雷菲德菌素A(一种抑制生长素运输的真菌代谢产物)处理野生型拟南芥幼苗,表型复制了在高磷和低磷条件下lpr1突变体中观察到的根发育变化,表明BIG参与了生长素转运蛋白的囊泡靶向。两者合计,我们的结果表明,生长素运输和BIG功能在周细胞激活形成LRP和促进根毛伸长方面具有基本作用。但是,响应于P缺乏而激活根系体系结构改变的机制似乎与生长素转运和BIG无关。

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