Molecular mechanisms of sensing of and adaptation to K+ deprivation
Molecular mechanisms of sensing of and adaptation to K+ deprivation
批准号:
468861065
负责人:
Professor Dr. Jörg Kudla
金额:
$0.0万
依托单位国家:
德国
项目类别:
Research Grants
财政年份:
--
资助国家:
德国
项目状态:
未结题
起止时间:
中文摘要
对钾的感知和吸收对植物至关重要。土壤中K+的有效性在自然条件下波动很大,使K+限制条件成为经常遇到的环境胁迫。有机K+动态平衡是由多个过程的复杂相互作用决定的,这些过程包括根对K+的吸收、根内和从根到茎的运输过程以及K+储存机制。植物具有广泛的适应性反应机制,这些机制由感知K+可用性的传感系统触发,随后触发不同的适应性反应。然而,植物如何感知和适应波动的钾条件的分子机制才刚刚开始出现。K+传输的硬连接意味着K+通道和转运体的身份和调控,这些通道和转运体导致了K+离子的摄取和分布,这一点相对来说已经得到了很好的理解。然而,K+可用性的波动是如何以及在哪里被机械地感知的,人们仍然知之甚少。此外,在组织和器官尺度上,哪些信号和调控过程传达了K+通量和稳态的建立仍然是一个谜。两位申请人以前的工作:(a)确定了根的器官规模K+模式,(b)确定了分生后K+感知生态位(KSN),其中K+快速下降和Ca2+信号一致,(c)确定了CIF肽激活的SGN3-LKS4/SGN1受体复合物的分叉低K+信号轴,该受体复合物传递低K+触发的NADPH氧化酶RBOHC, RBOHD和RBOHF的磷酸化。(d)发现由此产生的ROS信号同时传递hak5k +摄取转运体诱导和加速Casparian条带成熟。总的来说,这些发现揭示了植物如何同步发育分化和转录组重编程以维持K+平衡和优化根的营养觅食。根据我们的初步数据,拟议项目的具体目标是:(i)确定K+在根内分布的景观和动态,(ii)揭示在分生后K+感知生态位(KSN)中产生K+信号的分子机制和成分,(iii)探索KSN产生的Ca2+/K+信号如何机制地传递强化的CIF2信号,(iv)研究膜极化的分子功能和PM atp酶在LK信号传导和适应中的作用。(v)描述次生Ca2+升高与ROS信号形成的功能相互关系,以及lk诱导NOX活化特异性的机制。通过结合遗传方法、生物传感分析、植物表型分析、生化方法和新型报告基因分析,我们打算确定和表征LK传感和信号传导的基本分子机制,以实现综合适应反应。
英文摘要
Sensing and uptake of potassium is essential for plants. The availability of K+ in soils dramatically fluctuates in natural conditions making K+-limiting conditions a frequently encountered environmental stress. Organismic K+ homeostasis is determined by a complex interplay of processes that convey root K+ uptake, transport processes within the root and from root to shoot as well as K+ storage mechanisms. Plants possess a wide range of adaptive responses mechanisms, which are triggered by sensing systems that perceive K+ availability and subsequently trigger different adaptive reactions. However, the molecular mechanisms how plants sense and adapt to fluctuating potassium conditions are only beginning to emerge. The hardwiring of K+ transport meaning the identity and regulation of K+ channels and transporters that bring about K+ uptake and distribution of this ion is relatively well understood. However, how and where fluctuations in K+ availability are mechanistically sensed has remained far less understood. Moreover, which signaling and regulatory processes convey the establishment of K+ fluxes and homeostasis at the tissue and organ scale has remained enigmatic. Previous work of both applicants: (a) defined the organ scale K+ pattern of roots, (b) identified a postmeristematic K+-sensing niche (KSN) where rapid K+ decline and Ca2+ signals coincide, (c) identified a bifurcating low-K+ signaling axis of CIF peptide-activated SGN3-LKS4/SGN1 receptor complexes that convey low-K+-triggered phosphorylation of the NADPH oxidases RBOHC, RBOHD and RBOHF, (d) uncovered that the resulting ROS signals simultaneously convey HAK5 K+ uptake transporter induction and accelerated Casparian strip maturation. Collectively, these findings revealed how plants synchronize developmental differentiation and transcriptome reprogramming for maintaining K+ homoeostasis and optimizing nutrient foraging by roots. Based on our preliminary data the proposed project specifically aims to: (i) define the landscape and dynamics of K+ distribution in roots, (ii) uncover the molecular mechanisms and components that generate the K+ signal in the postmeristematic K+ sensing niche (KSN), (iii) explore how KSN-born Ca2+/K+ signals mechanistically convey intensified CIF2 signaling, (iv) investigate the molecular function of membrane polarization and the role of PM ATPases in LK signaling and adaptation, and (v) delineate the functional interrelation of the secondary Ca2+ elevation with ROS signal formation and of the mechanisms that bring about specificity in LK-induced NOX activation. By combining genetic approaches, biosensorics analyses and by using a combination of phenotypic plant analyses, biochemical approaches, and novel reporter assays, we intend to identify and characterize fundamental molecular mechanisms that underlie LK sensing and signaling to achieve integrated adaptation responses.
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