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Differential Effects of Sucrose and Auxin on Localized Phosphate Deficiency-Induced Modulation of Different Traits of Root System Architecture in Arabidopsis

机译:蔗糖和生长素对拟南芥根系结构不同性状对局限性磷酸缺乏诱导的调控的差异作用

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摘要

Phosphorus, one of the essential elements for plants, is often a limiting nutrient in soils. Low phosphate (Pi) availability induces sugar-dependent systemic expression of genes and modulates the root system architecture (RSA). Here, we present the differential effects of sucrose (Suc) and auxin on the Pi deficiency responses of the primary and lateral roots of Arabidopsis (Arabidopsis thaliana). Inhibition of primary root growth and loss of meristematic activity were evident in seedlings grown under Pi deficiency with or without Suc. Although auxin supplementation also inhibited primary root growth, loss of meristematic activity was observed specifically under Pi deficiency with or without Suc. The results suggested that Suc and auxin do not influence the mechanism involved in localized Pi sensing that regulates growth of the primary root and therefore delineates it from sugar-dependent systemic Pi starvation responses. However, the interaction between Pi and Suc was evident on the development of the lateral roots and root hairs in the seedlings grown under varying levels of Pi and Suc. Although the Pi+ Suc− condition suppressed lateral root development, induction of few laterals under the Pi− Suc− condition point to increased sensitivity of the roots to auxin during Pi deprivation. This was supported by expression analyses of DR5∷uidA, root basipetal transport assay of auxin, and RSA of the pgp19 mutant exhibiting reduced auxin transport. A significant increase in the number of lateral roots under the Pi− Suc− condition in the chalcone synthase mutant (tt4-2) indicated a potential role for flavonoids in auxin-mediated Pi deficiency-induced modulation of RSA. The study thus demonstrated differential roles of Suc and auxin in the developmental responses of ontogenetically distinct root traits during Pi deprivation. In addition, lack of cross talk between local and systemic Pi sensing as revealed by the seedlings grown under either the Pi− Suc− condition or in the heterogenous Pi environment highlighted the coexistence of Suc-independent and Suc-dependent regulatory mechanisms that constitute Pi starvation responses.
机译:磷是植物必不可少的元素之一,通常是土壤中的限制性营养素。低磷酸盐(Pi)的可用性会诱导基因的糖依赖性系统表达并调节根系体系结构(RSA)。在这里,我们介绍了蔗糖(Suc)和生长素对拟南芥(Arabidopsis thaliana)初生和侧根的Pi缺乏反应的差异作用。在有或没有Suc的Pi缺乏条件下生长的幼苗中,明显抑制了初生根生长和分生组织活性。尽管补充生长素也抑制了初生根的生长,但特别是在有或没有Suc的Pi缺乏下,观察到分生组织活性的丧失。结果表明,Suc和生长素不影响局部Pi感官调节初级根生长的机制,因此将其与糖依赖性系统性Pi饥饿反应区分开来。然而,Pi和Suc之间的相互作用在Pi和Suc含量不同的条件下生长的幼苗的侧根和根毛的发育过程中很明显。尽管Pi + Suc-条件抑制了侧根的发育,但是在Pi- Suc-条件下,很少有侧枝的诱导表明,在剥夺Pi期间,根对生长素的敏感性增加。 DR5∷uidA的表达分析,植物生长素的根基根茎运输测定和表现出生长素运输减少的pgp19突变体的RSA都支持了这一点。查尔酮合酶突变体(tt4-2)在Pi-Suc-条件下侧根的数量显着增加,表明类黄酮在生长素介导的Pi缺乏诱导的RSA调节中的潜在作用。因此,该研究证明了Suc和生长素在Pi剥夺过程中在个体发育的不同根系性状发育反应中的不同作用。此外,Pi-Suc-条件下或异质Pi环境下生长的幼苗表明局部和系统性Pi感应之间缺乏相互干扰,这突出了构成Pi饥饿的Suc独立和Suc依赖调节机制的共存回应。

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