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Expression Pattern Suggests a Role of MiR399 in the Regulation of the Cellular Response to Local Pi Increase During Arbuscular Mycorrhizal Symbiosis

机译:表达模式表明MiR399在丛枝菌根共生过程中对局部Pi增加的细胞反应的调节中的作用。

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Many plants improve their phosphate (Pi) availability by forming mutualistic associations with arbuscular mycorrhizal (AM) fungi. Pi-repleted plants are much less colonized by AM fungi than Pi-depleted plants. This indicates a link between plant Pi signaling and AM development. MicroRNAs (miR) of the 399 family are systemic Pi-starvation signals important for maintenance of Pi homeostasis in Arabidopsis thaliana and might also qualify as signals regulating AM development in response to Pi availability. MiR399 could either represent the systemic low-Pi signal promoting or required for AM formation or they could act as counter players of systemic Pi-availability signals that suppress AM symbiosis. To test either of these assumptions, we analyzed the miR399 family in the AM-capable plant model Medicago truncatula and could experimentally confirm 10 novel MIR399 genes in this species. Pi-depleted plants showed increased expression of mature miR399 and multiple pri-miR399, and unexpectedly, levels of five of the 15 pri-miR399 species were higher in leaves of mycorrhizal plants than in leaves of nonmycorrhizal plants. Compared with nonmycorrhizal Pi-depleted roots, mycorrhizal roots of Pi-depleted M. truncattda and tobacco plants had increased Pi contents due to symbiotic Pi uptake but displayed higher mature miR399 levels. Expression levels of MtPho2 remained low and PH02-dependent Pi-stress marker transcript levels remained high in these mycorrhizal roots. Hence, an AM symbiosis-related signal appears to increase miR399 expression and decrease P1102 activity. MiR399 overexpression in tobacco suggested that miR399 alone is not sufficient to improve mycorrhizal colonization supporting the assumption that, in mycorrhizal roots, increased miR399 are necessary to keep the MtPho2 expression and activity low, which would otherwise increase in response to symbiotic Pi uptake.
机译:许多植物通过与丛枝菌根(AM)真菌形成相互联系来提高其磷酸盐(Pi)的利用率。与Pi耗尽的植物相比,Pi取代的植物被AM真菌定植的可能性要低得多。这表明植物Pi信号传导和AM发展之间的联系。 399家族的MicroRNA(miR)是系统性的Pi饥饿信号,对于维持拟南芥中的Pi稳态非常重要,并且可能还可以作为响应Pi可用性而调控AM发育的信号。 MiR399可以代表系统性的低Pi信号促进或AM形成所需,或者它们可以充当抑制AM共生的系统性Pi可用性信号的反作用者。为了检验这两个假设,我们分析了具有AM功能的植物模型梅花苜蓿(Medicago truncatula)中的miR399家族,并可以通过实验确认该物种中的10个新MIR399基因。贫Pi植物显示出成熟的miR399和多个pri-miR399的表达增加,出乎意料的是,15种pri-miR399物种中的5种在菌根植物叶片中的含量高于非菌根植物叶片。与无根腐烂的Pi根相比,由于共生Pi的吸收,缺Pi的M. truncattda和烟草植物的菌根根具有增加的Pi含量,但显示出更高的成熟miR399水平。在这些菌根中,MtPho2的表达水平仍然很低,而PH02依赖的Pi胁迫标记物的转录水平仍然很高。因此,与AM共生相关的信号似乎增加miR399表达并降低P1102活性。烟草中的MiR399过表达表明,单独的miR399不足以改善菌根定植,这支持以下假设:在菌根中,增加miR399是保持MtPho2表达和活性低的必要条件,否则它会因共生Pi吸收而增加。

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