Talboys Peter J, Healey John R, Withers Paul J A, Jones Davey L
School of Environment, Natural Resources and Geography, Deiniol Road, Bangor, Gwynedd LL57 2UW, UK
School of Environment, Natural Resources and Geography, Deiniol Road, Bangor, Gwynedd LL57 2UW, UK.
J Exp Bot. 2014 Sep;65(17):5023-32. doi: 10.1093/jxb/eru284. Epub 2014 Aug 2.
Understanding the mechanisms by which nutritional signals impact upon root system architecture is a key facet in the drive for greater nutrient application efficiency in agricultural systems. Cereal plants reduce their rate of lateral root emergence under inorganic phosphate (Pi) shortage; this study uses molecular and pharmacological techniques to dissect this Pi response in Triticum aestivum. Plants were grown in coarse sand washed in high- or low-Pi nutrient solution before being assessed for their root branching density and expression of AUX/IAA and PIN genes. Seedlings were also grown on media containing [(14)C]indole acetic acid to measure basipetal auxin transport. Seedlings grown in low-Pi environments displayed less capacity to transport auxin basipetally from the seminal root apex, a reduction in root expression of PIN auxin transporter genes, and perturbed expression of a range of AUX/IAA auxin response genes. Given the known importance of basipetally transported auxin in stimulating lateral root initiation, it is proposed here that, in T. aestivum, Pi availability directly influences lateral root production through modulation of PIN expression. Understanding such processes is important in the drive for greater efficiency in crop use of Pi fertilizers in agricultural settings.
了解营养信号影响根系结构的机制是提高农业系统养分利用效率的关键环节。谷类植物在无机磷酸盐(Pi)短缺时会降低侧根发生速率;本研究运用分子和药理学技术剖析普通小麦对Pi的这种响应。将植物种植在经高Pi或低Pi营养液冲洗过的粗砂中,然后评估其根分支密度以及AUX/IAA和PIN基因的表达。幼苗还在含有[(14)C]吲哚乙酸的培养基上生长,以测量生长素的向基运输。在低Pi环境中生长的幼苗从胚根顶端向基运输生长素的能力较弱,PIN生长素转运蛋白基因的根表达降低,一系列AUX/IAA生长素响应基因的表达也受到干扰。鉴于向基运输的生长素在刺激侧根起始方面的已知重要性,本文提出,在普通小麦中,Pi的有效性通过调节PIN表达直接影响侧根的产生。了解这些过程对于提高农业环境中作物对磷肥的利用效率至关重要。