Beneficial Bacterium Azospirillum brasilense Induces Morphological, Physiological and Molecular Adaptation to Phosphorus Deficiency in Arabidopsis.

Nan Sun, Lin Huang, Hongcheng Zhao, Nan Zhang, Xianyong Lin, Chengliang Sun
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引用次数: 4

Abstract

Although most cultivated soils have high levels of total phosphorus (P), the levels of bioavailable inorganic P (Pi) are insufficient. The application of plant-growth-promoting rhizobacteria (PGPR) is an eco-friendly strategy for P utilization; however, PGPR-mediated plant responses that enhance Pi acquisition remain unexplored. Here, we investigated the effect of Azospirillum brasilense on Arabidopsis adaptation to Pi deficiency. Results showed that A. brasilense inoculation alleviated Pi-deficiency-induced growth inhibition and anthocyanin accumulation and increased the total P content in Arabidopsis plants. A comprehensive analysis of root morphology revealed that A. brasilense increased root hair density and length under Pi-limited conditions. We further demonstrated that A. brasilense enhanced the acid phosphatase activity and upregulated the expression of several Pi transporter genes, such as PHOSPHATE1 (PHO1), PHOSPHATE TRANSPORTER 1:(PHT1:1) and PHT1;4. However, A. brasilense did not enhance the growth o total P content in pht1;1, pht1;4 and pht1;1pht1;4 mutants. Moreover, A. brasilense could not increase the P content and PHT1;1 expression in the root hairless mutant rsl4rsl2, because of the occurrence of low-Pi-induced PHT1;1 and PHT1;4 in root hairs. These results indicate that A. brasilense can promote root hair development and enhance acid phosphatase activity and Pi transporter expression levels, consequently improving the Pi absorption capacity and conferring plant tolerance to Pi deficiency.

有益菌巴西氮螺旋菌诱导拟南芥对缺磷的形态、生理和分子适应。
虽然大多数栽培土壤具有高水平的全磷(P),但生物可利用无机磷(Pi)水平不足。植物促生根瘤菌(PGPR)的应用是磷素利用的生态策略;然而,pgpr介导的植物反应是否能增强Pi的获取仍未被探索。研究了巴西偶氮螺旋菌对拟南芥缺磷适应性的影响。结果表明,接种巴西芽孢杆菌减轻了磷缺乏诱导的拟南芥生长抑制和花青素积累,提高了植株总磷含量。根系形态综合分析表明,在pi限制条件下,巴西松的根毛密度和长度增加。3 .我们进一步证实巴西螺增强了酸性磷酸酶活性,上调了磷酸转运蛋白基因PHOSPHATE1 (PHO1)、磷酸转运蛋白1:(PHT1:1)和PHT1的表达;而巴西麻对pht1;1、pht1;4和pht1;1pht1;4突变体中总磷含量的增长没有促进作用。在无根毛突变体rsl4rsl2中,由于在根毛中存在低pi诱导的PHT1;1和PHT1;4,因此不能增加P含量和PHT1;1的表达。上述结果表明,巴西松可以促进根毛发育,提高酸性磷酸酶活性和磷转运蛋白表达水平,从而提高植物对磷的吸收能力,提高植物对缺磷的耐受性。
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