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1.
植物根系是汲取水分、营养的重要器官,而侧根是植物根系重要的组成部分。生长素是调控侧根生长发育的核心因子。该文综述了生长素信号在直根系模式植物拟南芥以及须根系模式作物水稻中侧根发育调控中的研究进展,对生长素信号调控侧根起始模型、Aux/IAA介导的生长素信号对植物侧根发育调控这两个方面进行了阐述,并对拟南芥与水稻的侧根发育进行比较,最后对该研究领域进行了展望。  相似文献   

2.
植物激素生长素参与调控植物生长发育的各个过程,包括胚胎发育、器官发生和向性运动等。植物通过协调生长素的合成代谢、极性运输以及信号转导来实现对不同生长发育过程的精准调控。生长素的功能依赖于其信号被感知后经由信号转导通路转换为下游复杂多样的反应。经典的生长素信号转导通路阐明了细胞核内从SCF~(TIR1/AFB)受体到Aux/IAA蛋白的泛素化降解最终通过ARF转录因子调控基因转录的完整生长素响应过程。该核内信号通路揭示了生长素转录调控生长发育的诸多分子机制,但植物生长发育调控过程中仍有许多生长素响应过程无法通过该经典信号通路解析。重点阐述生长素非经典信号通路的调控机制及其对植物生长发育的重要作用,并讨论和展望生长素非经典信号通路研究目前所面临的挑战以及研究前景。  相似文献   

3.
生长素信号转导研究进展   总被引:1,自引:0,他引:1  
植物激素生长素影响植物生长中几乎所有的方面,包括植物细胞的生长、分裂和分化,以及植物从胚胎发育到生殖发育的各个过程中。生长素的研究主要围绕合成与代谢、运输和信号转导而展开。植物细胞对生长素的响应和信号转导主要通过细胞核内的TIR1/AFB-Aux/IAA-ARF信号通路来完成。另外,细胞表面起始的信号通路主要调控生长素的快速响应,而SKP2A通路介导了生长素对细胞周期的调控。概述了三条生长素信号转导通路目前的研究进展,并介绍了生长素信号转导中具体的研究工具。基于该领域的研究现状,提出了生长素信号转导方面有待进一步研究的方向,包括TIR1/AFB-Aux/IAA-ARF复合体的调控机制研究、生长素调控冠部和根部生长的差异性研究、以及对细胞表面起始信号途径的进一步探索。  相似文献   

4.
许佳  侯宁  韩凝  边红武  朱睦元 《遗传》2016,38(5):418-426
植物激素是调控植物生长发育的信号分子。近年来的研究发现,小分子RNA作为基因表达调控网络的组分,参与植物激素信号途径,在植物生长发育和胁迫反应方面发挥重要作用。本文综述了miRNA和次级siRNA(Short interfering RNAs)介导的基因调控与植物激素信号通路相互作用的研究进展,主要包括生长素、赤霉素、油菜素内酯和脱落酸途径涉及的miRNA及其功能,并对不同发育过程中miRNA参与的不同激素信号通路的交叉和互作进行了讨论。  相似文献   

5.
促分裂原活化蛋白激酶(MAPK)信号级联通路是真核生物中高度保守的重要信号系统, 通过激酶逐级磷酸化传递并放大上游信号, 进而调控细胞反应。MAPK信号通路不仅介导植物响应环境变化, 而且在调节植物生长发育过程中发挥重要作用。近期, 山东大学丁兆军课题组研究发现, 植物重要激素生长素能够通过激活MPK14调控下游ERF13的磷酸化, 进而影响超长链脂肪酸的合成并调控侧根发育。该研究从全新的角度解析了侧根起始的新机制, 并进一步证实生长素和古老的信号转导模块MAPKs相偶联的分子机制。侧根作为植物响应环境最重要的器官之一, MAPK信号通路在侧根发育过程中的功能解析可为阐明植物如何整合发育和环境信号提供新思路。  相似文献   

6.
生长素调控植物气孔发育的研究进展   总被引:2,自引:0,他引:2  
气孔是分布于植物表皮由保卫细胞围成的小孔, 是植物体与外界环境进行水分和气体交换的重要通道, 通过影响光合作用、蒸腾作用及一系列生物学过程来促进植物适应环境的变化。生长素是最早被发现的植物激素, 在植物生长发育中发挥重要作用。近年来的研究表明, 生长素通过载体蛋白-TIR1/AFB受体-AUXIN/IAA-ARFs信号通路, 调控STOMAGEN的表达; 之后, 经STOMAGEN-类LRR受体蛋白激酶ERf-MAPKs级联反应激酶-SPCH转录因子信号通路, 启动气孔的发育进程。EPF1、EPF2和类LRR受体蛋白激酶TMM不是该过程的必需元件。生长素对气孔的调控受光信号影响, 光信号通路组分E3泛素连接酶COP1位于MAPKs激酶的上游, 参与气孔的发育调控。  相似文献   

7.
拟南芥根系发育的分子机制研究进展   总被引:1,自引:0,他引:1  
拟南芥初生根和次生根的发育受不同遗传通路所调控,其中内源激素途径尤其是生长素途径在拟南芥主根、侧根以及根毛的发育过程中均发挥着重要作用.同时也存在一些不依赖于激素通路的遗传途径,如UPB1能通过调节根尖分生区和伸长区活性氧种类的平衡来调控根系顶端分生组织活性,进而影响根系的生长.本文对近年来国内外有关模式植物拟南芥根系发育的分子机制研究进展分别从初生根发育、侧根发育和根毛发育3个方面进行综述.  相似文献   

8.
植物根系代谢物是植物-微生物互作的桥梁纽带,作为信号物质和微生物营养源调控着微生物的群落结构和多样性,而根区微生物区系的改变则反作用于植物的生长、发育和抗性。本文聚焦植物根系代谢物介导的植物-微生物互作,梳理了植物-微生物互作研究中次级代谢物的种类、作用及其检测手段;探讨了植物通过调节自身代谢物以适应品种进化及繁衍后代过程中发挥的功能作用;阐述了逆境胁迫下植物利用根系代谢物招募特异微生物(解磷、溶磷)或者有益微生物促进自身生长以缓解胁迫压力的机制;分析了根系代谢物作为信号物质诱导植物抗病的方式"求救假说",为可持续农业发展提供思路和理论依据。  相似文献   

9.
植物侧根发育的研究进展   总被引:2,自引:0,他引:2  
侧根是植物根系的重要组成部分,其发生和发育受到内源植物激素和外界环境因素的共同影响。生长素在侧根发生起始、侧根原基的发育和侧根突破母体表皮等阶段均发挥关键作用。研究侧根的发育和形态解剖结构以及信号调控途径等,都具有重要的理论和实践意义。本文结合近年来的研究进展,综述了拟南芥和水稻侧根发育的详细过程和影响因素,重点关注生长素在侧根原基发生和发育过程中的作用。  相似文献   

10.
细胞周期因子与植物根系发育   总被引:1,自引:0,他引:1  
植物根系的发育是一个非常复杂且被精确调控的过程,受到多种信号的调控,其中对细胞分裂水平调控的研究已经成为细胞生物学研究的热点之一.文章介绍了植物细胞周期因子和植物根系发育相关的细胞周期调控机制以及根系细胞周期激素调节的研究进展.  相似文献   

11.
Legume plants have an exceptional capacity for association with microorganisms, ranging from largely nonspecific to very specific interactions. Legume-rhizobial symbiosis results in major developmental and metabolic changes for both the microorganism and host, while providing the plant with fixed nitrogen. A complex signal exchange leads to the selective rhizobial colonization of plant cells within nodules, new organs that develop on the roots of host plants. Although the nodulation mechanism is highly specific, it involves the same subset of plant phytohormones, namely auxin, cytokinin, and ethylene, which are required for root development. In addition, nodulation triggered by the rhizobia affects the development of the host root system, indicating that the microorganism can alter host developmental pathways. Nodulation by rhizobia is a prime example of how microorganisms and plants have coevolved and exemplifies how microbial colonization may affect plant developmental pathways.  相似文献   

12.
13.
Regulation of Shoot and Root Development through Mutual Signaling   总被引:2,自引:0,他引:2  
Plants adjust their development in relation to the availability of nutrient sources. This necessitates signaling between root and shoot. Aside from the well-known systemic signaling processes mediated by auxin, cytokinin, and sugars, new pathways involving carotenoid-derived hormones have recently been identified. The auxin-responsive MAX pathway controls shoot branching through the biosynthesis of strigolactone in the roots. The BYPASS1 gene affects the production of an as-yet unknown carotenoid-derived substance in roots that promotes shoot development. Novel local and systemic mechanisms that control adaptive root development in response to nitrogen and phosphorus starvation were recently discovered. Notably, the ability of the NITRATE TRANSPORTER 1.1 to transport auxin drew for the first time a functional link between auxin, root development, and nitrate availability in soil. The study of plant response to phosphorus starvation allowed the identification of a systemic mobile miRNA. Deciphering and integrating these signaling pathways at the whole-plant level provide a new perspective for understanding how plants regulate their development in response to environmental cues.  相似文献   

14.
生长素是最重要的植物激素之一, 对植物生长发育起着关键调控作用。生长素作用于植物后, 早期生长素响应基因家族Aux/IAAGH3SAUR等被迅速诱导, 基因表达上调。其中Aux/IAA基因家族编码的蛋白一般由4个保守结构域组成, 结构域I具有抑制生长素信号下游基因表达的作用, 结构域II在生长素信号转导中主要被TIR1调控进而影响Aux/IAA的稳定性, 结构域III/IV通过与生长素响应因子ARF相互作用调控生长素信号。Aux/IAA基因家族在双子叶植物拟南芥(Arabidopsis thaliana)的器官发育、根形成、茎伸长和叶扩张等方面发挥重要作用; 在单子叶植物水稻(Oryza sativa)和小麦(Triticum aestivum)中, 主要影响根系发育和株型, 但大多数Aux/IAA基因的功能尚不清楚。该文主要从Aux/IAA蛋白的结构、功能和生长素信号转导途径方面综述Aux/IAA家族在拟南芥、禾谷类作物及其它植物中的研究进展, 以期为全面揭示Aux/IAA家族基因的生物学功能提供线索。  相似文献   

15.
The plant hormone auxin is secreted in root apices via phospholipase Dζ2 (PLDζ2) activity which produces specific population of phosphatidic acid that stimulates secretion of vesicles enriched with auxin. These vesicles were reported to be localized at plant synapses which are active in auxin secretion, especially at the transition zone of the root apex. There are several implications of this vesicular secretion of auxin. In root apices, auxin emerges as plant neurotransmitter-like signal molecule which coordinates activities of adjacent cells via electric and chemical signaling. Putative quantal release of auxin after electrical stimulation, if confirmed, would be part of neuronal communication between plant cells. As auxin transport across plant synapses is tightly linked with integrated sensory perception of environment, especially of omnipresent gravity and light, this process is proposed to mediate the plant perception of environment. These neuronal features allow sessile plants to integrate multitude of sensory signals into the adaptive behavior of whole plants and the animal-like exploratory behavior of growing roots.Key words: auxin, phospholipase Dζ2, plant development, root apex, secretion, vesicles  相似文献   

16.
Plants adapt to a changing environment by entraining their growth and development to prevailing conditions. Such 'plastic' development requires a highly dynamic integration of growth phenomena with signal perception and transduction systems, such as occurs during tropic growth. The plant hormone auxin has been shown to play a key role in regulating these directional growth responses of plant organs to environmental cues. However, we are still lacking a cellular and molecular understanding of how auxin-dependent signaling cascades link stimulus perception to the rapid modulation of growth patterns. Here, we report that in root gravitropism of Arabidopsis thaliana, auxin regulates root curvature and associated apoplastic, growth-related pH changes through a Ca2+-dependent signaling pathway. Using an approach that integrates confocal microscopy and automated computer vision-based image analysis, we demonstrate highly dynamic root surface pH patterns during vertical growth and after gravistimulation. These pH dynamics are shown to be dependent on auxin, and specifically on auxin transport mediated by the auxin influx carrier AUX1 in cells of the lateral root cap and root epidermis. Our results further indicate that these pH responses require auxin-dependent changes in cytosolic Ca2+ levels that operate independently of the TIR1 auxin perception system. These results demonstrate a methodology that can be used to visualize vectorial auxin responses in a manner that can be integrated with the rapid plant growth responses to environmental stimuli.  相似文献   

17.
Hormone interactions during lateral root formation   总被引:2,自引:0,他引:2  
Lateral root (LR) formation, the production of new roots from parent roots, is a hormone- and environmentally-regulated developmental process in higher plants. Physiological and genetic studies using Arabidopsis thaliana and other plant species have revealed the roles of several plant hormones in LR formation, particularly the role of auxin in LR initiation and primordium development, resulting in much progress toward understanding the mechanisms of auxin-mediated LR formation. However, hormone interactions during LR formation have been relatively underexamined. Recent studies have shown that the plant hormones, cytokinin and abscisic acid negatively regulate LR formation whereas brassinosteroids positively regulate LR formation. On the other hand, ethylene has positive and negative roles during LR formation. This review summarizes recent findings on hormone-regulated LR formation in higher plants, focusing on auxin as a trigger and on the other hormones in LR formation, and discusses the possible interactions among plant hormones in this developmental process.  相似文献   

18.
The phytohormones auxin and cytokinin interact to regulate many plant growth and developmental processes. Elements involved in the biosynthesis, inactivation, transport, perception, and signaling of these hormones have been elucidated, revealing the variety of mechanisms by which signal output from these pathways can be regulated. Recent studies shed light on how these hormones interact with each other to promote and maintain plant growth and development. In this review, we focus on the interaction of auxin and cytokinin in several developmental contexts, including its role in regulating apical meristems, the patterning of the root, the development of the gynoecium and female gametophyte, and organogenesis and phyllotaxy in the shoot.  相似文献   

19.
Polar transport of the plant hormone auxin controls many aspects of plant growth and development. A number of synthetic compounds have been shown to block the process of auxin transport by inhibition of the auxin efflux carrier complex. These synthetic auxin transport inhibitors may act by mimicking endogenous molecules. Flavonoids, a class of secondary plant metabolic compounds, have been suggested to be auxin transport inhibitors based on their in vitro activity. The hypothesis that flavonoids regulate auxin transport in vivo was tested in Arabidopsis by comparing wild-type (WT) and transparent testa (tt4) plants with a mutation in the gene encoding the first enzyme in flavonoid biosynthesis, chalcone synthase. In a comparison between tt4 and WT plants, phenotypic differences were observed, including three times as many secondary inflorescence stems, reduced plant height, decreased stem diameter, and increased secondary root development. Growth of WT Arabidopsis plants on naringenin, a biosynthetic precursor to those flavonoids with auxin transport inhibitor activity in vitro, leads to a reduction in root growth and gravitropism, similar to the effects of synthetic auxin transport inhibitors. Analyses of auxin transport in the inflorescence and hypocotyl of independent tt4 alleles indicate that auxin transport is elevated in plants with a tt4 mutation. In hypocotyls of tt4, this elevated transport is reversed when flavonoids are synthesized by growth of plants on the flavonoid precursor, naringenin. These results are consistent with a role for flavonoids as endogenous regulators of auxin transport.  相似文献   

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