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植物在共同菌根网络中的磷获取:高粱和亚麻中Pht1家族磷酸盐转运蛋白基因的调控

Plant phosphorus acquisition in a common mycorrhizal network: regulation of phosphate transporter genes of the Pht1 family in sorghum and flax.

作者信息

Walder Florian, Brulé Daphnée, Koegel Sally, Wiemken Andres, Boller Thomas, Courty Pierre-Emmanuel

机构信息

Department of Environmental Sciences, Botany, Zurich-Basel Plant Science Center, University of Basel, Hebelstrasse 1, CH-4056, Basel, Switzerland.

Plant-Soil-Interactions, Agroscope Institute of Sustainability Science, Reckenholzstrasse 191, CH-8046, Zürich, Switzerland.

出版信息

New Phytol. 2015 Mar;205(4):1632-1645. doi: 10.1111/nph.13292. Epub 2015 Jan 23.

Abstract

In a preceding microcosm study, we found huge differences in phosphorus (P) acquisition in sorghum (Sorghum bicolor) and flax (Linum usitatissimum) sharing a common mycorrhizal network (CMN). Is the transcriptional regulation of arbuscular mycorrhizal (AM)-induced inorganic orthophosphate (Pi) transporters responsible for these differences? We characterized and analyzed the expression of Pi transporters of the Pht1 family in both plant species, and identified two new AM-inducible Pi transporters in flax. Mycorrhizal Pi acquisition was strongly affected by the combination of plant and AM fungal species. A corresponding change in the expression of two AM-inducible Pht1 transporters was noticed in both plants (SbPT9, SbPT10, LuPT5 and LuPT8), but the effect was very weak. Overall, the expression level of these genes did not explain why flax took up more Pi from the CMN than did sorghum. The post-transcriptional regulation of the transporters and their biochemical properties may be more important for their function than the fine-tuning of their gene expression.

摘要

在之前的微观世界研究中,我们发现共享同一个丛枝菌根网络(CMN)的高粱(双色高粱)和亚麻(亚麻)在磷(P)获取方面存在巨大差异。丛枝菌根(AM)诱导的无机正磷酸盐(Pi)转运蛋白的转录调控是否导致了这些差异呢?我们对这两种植物中Pht1家族的Pi转运蛋白进行了表征和表达分析,并在亚麻中鉴定出两个新的AM诱导型Pi转运蛋白。菌根Pi的获取受到植物和AM真菌物种组合的强烈影响。在两种植物(SbPT9、SbPT10、LuPT5和LuPT8)中都观察到两个AM诱导型Pht1转运蛋白的表达有相应变化,但影响非常微弱。总体而言,这些基因的表达水平并不能解释为什么亚麻从CMN中吸收的Pi比高粱更多。转运蛋白的转录后调控及其生化特性对其功能可能比基因表达的微调更为重要。

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