Deb Srijani, Sankaranarayanan Subramanian, Wewala Gayathri, Widdup Ellen, Samuel Marcus A
Department of Biological Sciences, University of Calgary, Calgary, Alberta, Canada T2N 1N4.
Department of Biological Sciences, University of Calgary, Calgary, Alberta, Canada T2N 1N4
Plant Physiol. 2014 Aug;165(4):1647-1656. doi: 10.1104/pp.114.244376. Epub 2014 Jun 25.
When plants encounter nutrient-limiting conditions in the soil, the root architecture is redesigned to generate numerous lateral roots (LRs) that increase the surface area of roots, promoting efficient uptake of these deficient nutrients. Of the many essential nutrients, reduced availability of inorganic phosphate has a major impact on plant growth because of the requirement of inorganic phosphate for synthesis of organic molecules, such as nucleic acids, ATP, and phospholipids, that function in various crucial metabolic activities. In our screens to identify a potential role for the S-domain receptor kinase1-6 and its interacting downstream signaling partner, the Arabidopsis (Arabidopsis thaliana) plant U box/armadillo repeat-containing E3 ligase9 (AtPUB9), we identified a role for this module in regulating LR development under phosphate-starved conditions. Our results show that Arabidopsis double mutant plants lacking AtPUB9 and Arabidopsis Receptor Kinase2 (AtARK2; ark2-1/pub9-1) display severely reduced LRs when grown under phosphate-starved conditions. Under these starvation conditions, these plants accumulated very low to no auxin in their primary root and LR tips as observed through expression of the auxin reporter DR5::uidA transgene. Exogenous auxin was sufficient to rescue the LR developmental defects in the ark2-1/pub9-1 lines, indicating a requirement of auxin accumulation for this process. Our subcellular localization studies with tobacco (Nicotiana tabacum) suspension-cultured cells indicate that interaction between ARK2 and AtPUB9 results in accumulation of AtPUB9 in the autophagosomes. Inhibition of autophagy in wild-type plants resulted in reduction of LR development and auxin accumulation under phosphate-starved conditions, suggesting a role for autophagy in regulating LR development. Thus, our study has uncovered a previously unknown signaling module (ARK2-PUB9) that is required for auxin-mediated LR development under phosphate-starved conditions.
当植物在土壤中遇到养分限制条件时,根系结构会重新设计,以产生大量侧根,从而增加根的表面积,促进对这些缺乏养分的有效吸收。在众多必需养分中,无机磷酸盐有效性的降低对植物生长有重大影响,因为无机磷酸盐是合成有机分子(如核酸、ATP和磷脂)所必需的,而这些有机分子在各种关键代谢活动中发挥作用。在我们筛选S结构域受体激酶1-6及其相互作用的下游信号伙伴——拟南芥含植物U框/犰狳重复序列的E3连接酶9(AtPUB9)的潜在作用的过程中,我们确定了该模块在磷饥饿条件下调节侧根发育中的作用。我们的结果表明,在磷饥饿条件下生长时,缺乏AtPUB9和拟南芥受体激酶2(AtARK2;ark2-1/pub9-1)的拟南芥双突变体植株的侧根严重减少。在这些饥饿条件下,通过生长素报告基因DR5::uidA转基因的表达观察到,这些植株的主根和侧根尖端积累的生长素非常低或几乎没有。外源生长素足以挽救ark2-1/pub9-1株系中的侧根发育缺陷,表明该过程需要生长素积累。我们用烟草悬浮培养细胞进行的亚细胞定位研究表明,ARK2与AtPUB9之间的相互作用导致AtPUB9在自噬体中积累。在野生型植物中抑制自噬会导致磷饥饿条件下侧根发育和生长素积累减少,表明自噬在调节侧根发育中起作用。因此,我们的研究发现了一个以前未知的信号模块(ARK2-PUB9),该模块是磷饥饿条件下生长素介导的侧根发育所必需的。