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1.
脱落酸(abscisic acid,ABA)是一种重要的植物激素,在调控种子发育、种子休眠与萌发、抑制生长、促进落花落果、参与植物应对外界环境胁迫等过程中发挥着重要的生理功能。ABA还能与其他植物激素(如生长素、乙烯等)互作进而精细调控植物根系的生长。本文以模式植物拟南芥( Arabidopsis thaliana (L.) Heynh)为主要对象,对近年来国内外在ABA调控植物根系生长方面的研究成果、ABA与其他植物激素(如GA等)互作调控根系生长及调控非生物逆境下根系发育的机理等进行综述,并对其未来的研究方向进行了展望。  相似文献   

2.
植物激素ABA调控植物根系生长的研究进展   总被引:1,自引:0,他引:1  
脱落酸(abscisic acid,ABA)是一种重要的植物激素,在调控种子发育、种子休眠与萌发、抑制生长、促进落花落果、参与植物应对外界环境胁迫等过程中发挥着重要的生理功能。ABA还能与其他植物激素(如生长素、乙烯等)互作进而精细调控植物根系的生长。本文以模式植物拟南芥(Arabidopsis thaliana (L.) Heynh)为主要对象,对近年来国内外在ABA调控植物根系生长方面的研究成果、ABA与其他植物激素(如GA等)互作调控根系生长及调控非生物逆境下根系发育的机理等进行综述,并对其未来的研究方向进行了展望。  相似文献   

3.
植物根系感知外界水分胁迫刺激,诱导ABA生物合成。ABA既可诱导气孔关闭或抑制气孔开放,以降低植物的蒸腾失水,又可影响植物根系发育,以抵御水分胁迫。本文就植物激素ABA及其下游信号H2O2、NO以及Ca2+等在植物生长调节方面的研究进展进行概述,以构建水分胁迫下植物生长自我调控的可能模式。  相似文献   

4.
王浩  孙丽英 《微生物学通报》2022,49(10):4448-4466
丛枝菌根(arbuscular mycorrhiza,AM)是土壤中AM真菌和绝大多数维管植物根系长期进化过程中相互识别、相互作用形成的互利共生体。AM的发育与功能效应依赖AM真菌-寄主植物之间精准的“分子对话”,同时受到环境条件特别是土壤养分水平、干旱和盐渍化的制约。植物激素作为低浓度的小分子有机物,是参与调控AM共生过程的重要信号分子。其中,主要有9种植物激素参与AM发育过程且分工各有不同:独脚金内酯(strigolactones,SLs)参与AM真菌-寄主植物之间最初的共生识别,脱落酸(abscisic acid,ABA)和油菜素内酯(brassinosteroid,BR)促进前期的菌丝入侵,但水杨酸(salicylic acid,SA)和乙烯(ethylene,ET)抑制前期的菌丝入侵,生长素(auxin,Aux)、ABA和BR促进随后的丛枝形成而ET和赤霉素(gibberellin,GA)的作用则相反,茉莉酸(jasmonic acid,JA)对菌丝入侵与丛枝形成均可能存在正调控或负调控作用。目前细胞分裂素(cytokinin,CTK)在AM发育中的作用尚不明确。更为复杂的是,通常植物激素信号之间的交叉互作决定AM的发育进程。本文针对AM发育过程总结了不同植物激素的调控作用特点和不同植物激素信号之间的互作(协同或拮抗),以及胁迫条件下不同植物激素信号的可能调控机制。深入研究和系统阐明植物激素调控AM真菌-寄主植物共生的生理/分子机制,将有助于促进生物共生学理论研究及菌根技术的应用。  相似文献   

5.
植物需要同时协调多种不同信号来调节整个生长发育过程。植物激素油菜素内酯(BR)和脱落酸(ABA)是其中发挥重要作用的两类主要内源信号,并且在种子萌发、植物抗逆等过程中存在着密切的交叉互作。随着BR和ABA信号通路中关键元件的不断解析,两者互作调控气孔运动、逆境响应、种子休眠与萌发、植物发育等过程的分子机制研究取得显著进展。本文综述了近年来有关BR和ABA的功能、信号转导通路以及两者互作分子机制的最新进展。  相似文献   

6.
脱落酸(abscisic acid,ABA)是重要的植物激素之一。在促进种子休眠、抑制种子萌发的过程中,ABA发挥着举足轻重的调节作用。种子的萌发始于种子的吸水膨胀,止于胚轴的伸长,是高等植物生命周期中最为关键的阶段。在新生个体萌动的阶段,ABA与其他激素协同互作调控着这一重要的发育过程。现围绕ABA在种子休眠、萌发以及萌发后幼苗生长过程中的信号转导机制,着重从ABA与细胞分裂素和赤霉素等相互作用调控种子萌发的角度,概述相关的最新研究进展,并对今后的研究方向作出展望。  相似文献   

7.
干旱下植物激素影响作物根系发育的研究进展   总被引:1,自引:0,他引:1  
植物激素是指在植物体内某些部位合成、可被运输到其他部位调控植物生长发育的微量有机物质,在植物生命活动中发挥重要作用。根系是作物吸收水分和养分的重要器官,其形态决定了作物获得养分和水分的能力。作物发达的根系与其抵抗干旱环境胁迫息息相关,而植物激素在作物根系发育中发挥关键作用,因此深入了解干旱胁迫下植物激素对作物根系发育的影响对农业的安全生产是至关重要的。本文就干旱胁迫下植物激素如何调控及不同激素协同调控作物根系生长发育的研究进行了概述,并讨论了激素在作物抗旱上应用的意义及将来可能开展的研究方向。  相似文献   

8.
水稻是我国最主要的粮食作物,在国民经济和生活中占据重要地位。在水稻的周年生产中,病虫害的控制最为关键。因此,了解水稻与病虫害的互作机理,对水稻的育种和生产具有重要指导意义。植物激素是在植物生命活动中必不可少,调控植物生长、发育、衰老等主要生理过程的一类有机分子。近年来,大量实验证据表明,在植物与病原物互作过程中,植物内源激素也发挥着重要作用。随着水稻抗病和感病的机理解析越来越多,有关植物激素所扮演的重要功能角色也愈发清晰。其中,水杨酸、茉莉酸和乙烯研究最为广泛,它们之间的相互拮抗或协同效应决定了植物对病原物的防御反应强度。其它激素如:油菜素内酯、赤霉素、生长素、细胞分裂素、脱落酸等,单独或者通过调控水杨酸、茉莉酸和乙烯信号分子转导网络也参与植物与病原物互作过程。本研究综述了各大植物激素在水稻抗病或感病中作用,并对其未来研究进行展望,以便为水稻病害的防治提供理论依据。  相似文献   

9.
植物激素脱落酸(abscisic acid,ABA)在植物的生长、发育和胁迫反应方面起重要的调控作用,其信号转导通路由4个核心组分共同组成一个双重负调控系统(PYR/PYL/RCAR—| PP2C—| SnRK2—ABF/AREB),调控ABA应答反应。本文在综述和分析ABA信号通路4个核心组分的起源与进化的基础上,初步提出ABA信号通路的起源与进化路径:A类PP2C、第Ⅲ亚类SnRK2以及转录因子AREB/ABF在水生植物轮藻中已经进化产生,当陆生植物进化产生ABA受体PYR/PYL/RCAR后,即与其它3个组分形成完整的ABA信号通路。在植物进化过程中,ABA信号通路4个核心组分各家族成员的数量(亚类)呈递增趋势。  相似文献   

10.
脱落酸在植物花发育过程中的作用   总被引:3,自引:0,他引:3  
植物激素脱落酸(ABA)对植物的生长发育具有多方面的调节作用,比如种子休眠、萌发,营养生长,环境胁迫反应等。大量研究显示,ABA也参与了植物的成花调控。影响植物成花调控的环境因子,包括光周期变化、春化作用、干旱等均会导致植物体内ABA代谢的变化。本文从调控植物开花的4条主要途径与植物体内ABA代谢变化之间的相互关系,花芽分化时期ABA在植物叶芽和花芽中的动态分布以及离体培养条件下ABA对花芽分化的影响等方面总结了ABA与植物花发育这一领域的最新研究进展。对ABA在植物成花诱导和花发育中的作用进行了综合分析。  相似文献   

11.
12.
Plant hormones play important roles in regulating developmental processes and signaling networks involved in plant responses to biotic and abiotic stresses. We comparatively studied the growth and endogenous hormonal levels in leaves and roots in two Malus species (M. sieversii and M. hupehensis) differing in hypoxia tolerance under normoxic and hypoxia stress. The results showed that hypoxia stress inhibited growth of seedlings of both Malus species, but with significant differences in intensity. Exposure to hypoxia altered the levels of endogenous hormones in leaves and roots in both Malus seedlings. Leaf and root abscisic acid (ABA) contents increased in response to hypoxia stress in both genotypes despite different extents. Compared with M. hupehensis, M. sieversii was more responsive to hypoxia stress, resulting in larger increases in leaf and root ABA contents. The changes in leaf and root ABA contents correlating with the different tolerance levels of the genotypes confirm the involvement of this hormone in plant responses to hypoxia stress. Gibberellins (GAs; GA1 + GA4) continuously increased in leaves and roots during the whole period of stress, whereas indole-3-acetic acid (IAA) showed a sharp increase at the early stage in both Malus seedlings. In addition, zeatin riboside (ZR), dihydrozeatin riboside (DHZR), and isopentenyl adenine (IPA) differed in their pattern of changes in both Malus seedlings under hypoxia stress. Based on variations in endogenous hormonal levels in both Malus species that differ in their ability to tolerate hypoxia, we conclude that not a single hormone but multiple hormones and their interplay are responsible for hypoxia tolerance.  相似文献   

13.
A brief account is given of the discovery of abscisic acid (ABA) in roots and root caps of higher plants as well as the techniques by which ABA may be demonstrated in these tissues. The remainder of the review is concerned with examining the rôle of ABA in the regulation of root growth. In this regard, it is well established that when ABA is supplied to roots their elongation is usually inhibited, although at low external concentrations a stimulation of growth may also be found. Fewer observations have been directed at exploring the connection between root growth and the level of naturally occurring, endogenous ABA. Nevertheless, the evidence here also suggests that ABA is an inhibitory regulator of root growth. Moreover, ABA appears to be involved in the differential growth that arises in response to a gravitational stimulus. Recent reports that deny a rôle for ABA in root gravitropism are considered inconclusive. The response of roots to osmotic stress and the changes in ABA levels which ensue, are summarised; so are the interrelations between ABA and other hormones, particularly auxin (e.g. indoleacetic acid); both are considered in the context of the root growth and development. Quantitative changes in auxin and ABA levels may together provide the root with a flexible means of regulating its growth.  相似文献   

14.
Steffens B  Wang J  Sauter M 《Planta》2006,223(3):604-612
Growth of adventitious roots is induced in deepwater rice (Oryza sativa L.) when plants become submerged. Ethylene which accumulates in flooded plant parts is responsible for root growth induction. Gibberellin (GA) is ineffective on its own but acts in a synergistic manner together with ethylene to promote the number of penetrating roots and the growth rate of emerged roots. Studies with the GA biosynthesis inhibitor paclobutrazol revealed that root emergence was dependent on GA activity. Abscisic acid (ABA) acted as a competitive inhibitor of GA activity. Root growth rate on the other hand was dependent on GA concentration and ABA acted as a potent inhibitor possibly of GA but also of ethylene signaling. The results indicated that root emergence and elongation are distinct phases of adventitious root growth that are regulated through different networking between ethylene, GA and ABA signaling pathways. Adventitious root emergence must be coordinated with programmed death of epidermal cells which cover root primordia. Epidermal cell death is also controlled by ethylene, GA and ABA albeit with cell-type specific cross-talk. Different interactions between the same hormones may be a means to ensure proper timing of cell death and root emergence and to adjust the growth rate of emerged adventitious roots.  相似文献   

15.
The growth and development of plants are influenced by the integration of diverse endogenous and environmental signals. Acting as a mediator of extrinsic signals, the stress hormone, abscisic acid (ABA), has been shown to regulate many aspects of plant development in response to unfavourable environmental stresses, allowing the plant to cope and survive in adverse conditions, such as drought, low or high temperature, or high salinity. Here, we summarize recent evidence on the roles of ABA in environmental stress responses in the Arabidopsis root; and on how ABA crosstalks with other phytohormones to modulate root development and growth in Arabidopsis. We also review literature findings showing that, in response to environmental stresses, ABA affects the root system architecture in other plant species, such as rice.  相似文献   

16.
Heat shock proteins (HSPs) are molecular chaperones that accumulate in response to heat and other abiotic stressors. Small HSPs (sHSPs) belong to the most ubiquitous HSP subgroup with molecular weights ranging from 12 to 42 kDa. We have cloned a new sHSP gene, AsHSP17 from creeping bentgrass (Agrostis stolonifera) and studied its role in plant response to environmental stress. AsHSP17 encodes a protein of 17 kDa. Its expression was strongly induced by heat in both leaf and root tissues, and by salt and abscisic acid (ABA) in roots. Transgenic Arabidopsis plants constitutively expressing AsHSP17 exhibited enhanced sensitivity to heat and salt stress accompanied by reduced leaf chlorophyll content and decreased photosynthesis under both normal and stressed conditions compared to wild type. Overexpression of AsHSP17 also led to hypersensitivity to exogenous ABA and salinity during germination and post‐germinative growth. Gene expression analysis indicated that AsHSP17 modulates expression of photosynthesis‐related genes and regulates ABA biosynthesis, metabolism and ABA signalling as well as ABA‐independent stress signalling. Our results suggest that AsHSP17 may function as a protein chaperone to negatively regulate plant responses to adverse environmental stresses through modulating photosynthesis and ABA‐dependent and independent signalling pathways.  相似文献   

17.
18.
赤霉素调节植物对非生物逆境的耐性   总被引:1,自引:0,他引:1  
赤霉素(GAs)是一类重要的植物激素,调控植物生长发育的诸多方面.最近的研究表明,GA也参与对生物与非生物胁迫的响应,然而GA参与非生物胁迫响应的遗传学证据及其机制有待于进一步研究.本实验室前期研究证明,水稻EullfELONGATEDUPPERMOSTINTERNODE)通过一个新的生化途径降解体内的活性赤霉素分子,并参与调控水稻对病原菌的基础抗病性.本研究发现,euil突变体对盐胁迫能力降低,而超表达EUll基因的水稻和拟南芥耐盐性显著提高.进一步研究发现,积累高含量赤霉素的水稻euil突变体对脱落酸(ABA)的敏感性下降,而赤霉素缺失的EUll超表达转基因水稻和拟南芥均改变了对于ABA的敏感性.EUll基因的转录受逆境诱导,其功能缺失与超表达调控了逆境标志基因的表达.综上推测,GA可能是通过影响ABA的信号途径从而改变了植物对非生物胁迫的响应.  相似文献   

19.
20.
The essential role of brassinosteroids (BRs) in normal plant growth, development and physiology has been established by the analysis of biosynthesis and signal transduction mutants. Some of the BR-related mutants also display altered sensitivity to the phytohormone abscisic acid (ABA) suggesting that BRs normally counteract the effects of ABA on root growth, seed germination, and possibly stomatal movement. In this study, the effect of a specific BR, brassinolide (BL), on guard cell function of Vicia faba was examined alone and in conjunction with ABA. Unlike other described plant responses, BL did not oppose the effect of ABA in regulation of stomatal movement. On the contrary, BL modulated stomatal aperture by promoting stomatal closure and inhibiting stomatal opening, functions of this hormone that were previously undescribed. This study also demonstrated a role for plant steroidal hormones in ion channel regulation: BL inhibited inwardly rectifying K+ currents of V. faba guard cell protoplasts in a manner similar to ABA. In both stomatal movement assays and whole-cell patch clamp experiments, the effects of BL and ABA applied together were not additive, suggesting that these two hormones may function in interacting pathways to regulate stomatal apertures and guard cell physiology.  相似文献   

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