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首页> 外文期刊>Journal of plant nutrition and soil science >Morphological and physiological studies on densely branched lateral roots triggered by localized phosphate in Sesbania cannabina
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Morphological and physiological studies on densely branched lateral roots triggered by localized phosphate in Sesbania cannabina

机译:索斯巴尼亚大麻局部磷酸盐触发密集分枝侧根的形态学和生理学研究

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摘要

Densely branched lateral roots (DBLRs) in Sesbania cannabina are formed in response to patchily distributed phosphorus (P) in volcanic soils. Little attention has been paid to morphological and physiological responses of DBLRs. Here, we investigated the relation between plant growth and DBLR development, enzymatic activities involved in P acquisition, and the influence of arbuscular mycorrhizal fungi (AMF), which contribute to P uptake, to clarify the function of DBLRs. We investigated DBLR development induced by localized application of P fertilizer and we compared the activities of phosphoenolpyruvate carboxylase (PEPCase) and acid phosphatase (APase) between DBLRs and non-DBLRs. Additionally, plants were grown with or without AMF to investigate the effect of AMF colonization on the numbers of DBLRs and plant P uptake, and we compared AMF colonization between DBLRs and non-DBLR roots. Secondary to quaternary lateral DBLRs were produced after the primary lateral roots passed near P fertilizer. P-i content per DBLR increased as DBLRs developed, promoting higher shoot growth. Under P deficiency, PEPCase and APase activities increased in non-DBLR, but were significantly lower in DBLRs in the same plants. AMF inoculation changed the root system architecture by significantly decreasing the number of DBLRs, and AMF colonization was lower in DBLRs than in non-DBLRs. Our results indicate that DBLR formation is a P-coacquisition strategy of S. cannabina grown in P-deficient andosolic soil. Roots that form DBLR are clearly different from non-DBLR roots in morphological and biochemical response and AMF symbiosis.
机译:索斯巴尼亚大麻中的密集分支横向根(DBLRS)是响应于火山土壤中包覆的分布磷(P)而形成的。一点关注DBLRS的形态和生理反应。在这里,我们调查了植物生长和DBLR发育的关系,参与P获取的酶活性,以及​​丛枝菌根真菌(AMF)的影响,这有助于P吸收,阐明DBLRS的功能。我们调查了通过P肥料局部应用诱导的DBLR发育,并将磷酸丙酮酸羧基酶(Pepcase)和酸性磷酸酶(Apase)的活性进行了比较DBLRS和非DBLRS。此外,植物生长或不含AMF,以研究AMF定子对DBLRS和植物P吸收的影响,我们比较DBLRS和非DBLR根系之间的AMF定子化。在初级侧根通过近P肥料后产生次级到季侧DBLS。 P-I Chare Per DBLR随着DBLR的开发而增加,促进较高的拍摄增长。根据P缺乏症,非DBLR中的Pepcase和Apase活动增加,但在同一植物中的DBLR中显着降低。 AMF接种通过显着降低DBLR的数量来改变根系系统架构,并且在DBLR中较低的AMF定子比在非DBLR中较低。我们的结果表明,DBLR形成是在P缺乏和岩溶解的土壤中生长的CARABINA的P-COACQUITION策略。形式DBLR的根源与形态学和生化反应和AMF共生中的非DBLR ROOS不同。

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