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1.
水杨酸对非生物胁迫下植物抗氧化能力的影响   总被引:1,自引:0,他引:1  
水杨酸(SA)在植物体内具有重要生理作用,除了参与抵抗生物胁迫信号转导外,还参与植物响应非生物胁迫。外源SA在植物应对盐碱、重金属、高低温和干旱等胁迫过程中发挥关键作用。综述了SA调控的抗氧化系统对植物响应非生物胁迫的影响,重点讨论了SA对抗氧化酶和非酶物质的诱导作用。  相似文献   

2.
植物逆境胁迫耐受性启动子的研究进展   总被引:1,自引:0,他引:1  
逆境胁迫如干旱、极端温度、损伤等非生物胁迫和病虫害等生物胁迫严重影响植物的生长发育及产量。逆境胁迫耐受性启动子能够接受逆境条件下的诱导信号,激活植物体内胁迫应答基因的表达,使植物感知并适应逆境。本文对逆境胁迫耐受性启动子的克隆及功能研究情况进行综合分析,主要包括抗旱、耐盐、耐高温、抗冻、耐损伤、抗病和抗虫基因启动子。  相似文献   

3.
钙信使在植物适应非生物逆境中的作用   总被引:38,自引:1,他引:37  
综述了非生物逆境胁迫下植物体内钙信号的产生,特点及植物在适应逆境中钙信使系统的可能作用。  相似文献   

4.
转录因子是一类在生物生命活动过程中起到调控作用的重要因子,参与了各种信号转导和调控过程,可以直接或间接结合在顺式作用元件上,实现调控目标基因转录效率的抑制或增强,从而使植物在应对逆境胁迫下做出反应。 WRKY转录因子在大多数植物体内都有分布,是一类进化非常保守的转录因子家族,参与植物生长发育以及响应逆境胁迫的生理过程。众多研究表明,WRKY转录因子在植物中能够应答各种生物胁迫,如细菌、病毒和真菌等;多种非生物胁迫,包括高温、冷害、高光和高盐等;以及在各种植物激素,包括茉莉酸( JA)、水杨酸( SA)、脱落酸( ABA)和赤霉素( GA)等,在其信号传递途径中都起着重要作用。 WRKY转录因子家族蛋白至少含有一段60个氨基酸左右的高度保守序列,被称为WRKY结构域,其中WRKYGQK多肽序列是最为保守的,因此而得名。该转录因子的WRKY结构域能与目标基因启动子中的顺式作用元件W ̄box( TTGAC序列)特异结合,从而调节目标基因的表达,其调控基因表达主要受病原菌、虫咬、机械损伤、外界胁迫压力和信号分子的诱导。该文介绍了植物WRKY转录因子在植物应对冷害、干旱、高盐等非生物胁迫与病菌、虫害等生物胁迫反应中的重要调控功能,并总结了WRKY转录因子在调控这些逆境胁迫反应过程中的主要生理机制。  相似文献   

5.
转录因子是一类在生物生命活动过程中起到调控作用的重要因子,参与了各种信号转导和调控过程,可以直接或间接结合在顺式作用元件上,实现调控目标基因转录效率的抑制或增强,从而使植物在应对逆境胁迫下做出反应。WRKY转录因子在大多数植物体内都有分布,是一类进化非常保守的转录因子家族,参与植物生长发育以及响应逆境胁迫的生理过程。众多研究表明,WRKY转录因子在植物中能够应答各种生物胁迫,如细菌、病毒和真菌等;多种非生物胁迫,包括高温、冷害、高光和高盐等;以及在各种植物激素,包括茉莉酸(JA)、水杨酸(SA)、脱落酸(ABA)和赤霉素(GA)等,在其信号传递途径中都起着重要作用。WRKY转录因子家族蛋白至少含有一段60个氨基酸左右的高度保守序列,被称为WRKY结构域,其中WRKYGQK多肽序列是最为保守的,因此而得名。该转录因子的WRKY结构域能与目标基因启动子中的顺式作用元件Wbox(TTGAC序列)特异结合,从而调节目标基因的表达,其调控基因表达主要受病原菌、虫咬、机械损伤、外界胁迫压力和信号分子的诱导。该文介绍了植物WRKY转录因子在植物应对冷害、干旱、高盐等非生物胁迫与病菌、虫害等生物胁迫反应中的重要调控功能,并总结了WRKY转录因子在调控这些逆境胁迫反应过程中的主要生理机制。  相似文献   

6.
逆境胁迫下植物体内脱落酸的生理功能和作用机制   总被引:11,自引:0,他引:11  
文章介绍逆境胁迫下植物体内ABA的生理功能和作用机制研究进展。  相似文献   

7.
植物中逆境反应相关的WRKY转录因子研究进展   总被引:3,自引:0,他引:3  
李冉  娄永根 《生态学报》2011,31(11):3223-3231
WRKY转录因子是植物体内一类比较大的转录因子家族,它在植物的生长发育以及抗逆境反应中起着非常重要的作用。本文综述了WRKY转录因子在植物应对冻害、干旱、盐害等非生物胁迫与病原菌、虫害等生物胁迫反应中的重要调控功能,并概括了WRKY转录因子在调控这些逆境反应中的机制。  相似文献   

8.
DREB是植物中重要的转录因子,调控一系列非生物胁迫相关基因的表达,增强植物抵抗环境胁迫的能力.同时,当植物受到逆境胁迫时,植物体内的酶和激素都会发生变化,从而影响一系列的生理活动或生化变化来产生抵御胁迫的适应能力.近些年来,研究者们发现DREB与植物激素之间关系密切,从植物激素角度入手研究DREB的功能逐渐成为热点.就逆境胁迫下DREB转录因子与激素之间的相互作用进行阐述.  相似文献   

9.
逆境下植物体内积累氨基丁酸(GABA)。盐胁迫严重影响玉米种子的萌发,而加入外源GABA可明显提高玉米种子的萌发率。外源GABA能迅速提高SOD、POD、和CAT这三种酶的活性。鉴于超氧化物歧化酶、过氧化氢酶和过氧化物酶是植物抗氧化保护系统中重要的组成部分,推测,盐胁迫条件下,GABA可通过提高保护酶系统活性而缓解盐胁迫对植物的伤害。  相似文献   

10.
马永慧  李永洁  李进 《广西植物》2022,42(4):668-675
干旱、盐分已成为限制植物生长发育的主要因子,在干旱与NaCl双重胁迫下植物的生长发育受到一定影响。为了探究黑果枸杞(Lycium ruthenicum)对盐旱逆境的适应性,该文采用盆栽试验,研究NaCl与干旱胁迫共同作用对其幼苗生长的影响,并观察盐旱逆境下黑果枸杞幼苗对外源水杨酸(SA)的生理响应,探究提高NaCl与干旱胁迫下黑果枸杞幼苗的存活率。结果表明:外源SA(0.1、0.5 mmol·L-1)处理下,盐旱双重胁迫下黑果枸杞叶内可溶性糖、可溶性蛋白和脯氨酸含量有所增加,而丙二醛(MDA)含量显著降低(P<0.05),过氧化氢酶(CAT)、过氧化物酶(POD)和超氧化物歧化酶(SOD)活性上升,且0.5 mmol·L-1 SA处理效果优于0.1 mmol·L-1 处理。综上结果可知,黑果枸杞对于轻度盐旱胁迫具有一定的适应能力,适宜浓度SA可提高盐旱逆境中黑果枸杞叶内渗透调节物质含量及抗氧化酶活性,该研究为进一步了解盐旱双重胁迫下黑果枸杞幼苗的生长发育提供相关理论依据。  相似文献   

11.
Although many endophytic plant growth-promoting rhizobacteria have been identified, relatively little is still known about the mechanisms by which they enter plants and promote plant growth. The beneficial endophyte Enterobacter sp. SA187 was shown to maintain the productivity of crops in extreme agricultural conditions. Here we present that roots of its natural host (Indigofera argentea), alfalfa, tomato, wheat, barley and Arabidopsis are all efficiently colonized by SA187. Detailed analysis of the colonization process in Arabidopsis showed that colonization already starts during seed germination, where seed-coat mucilage supports SA187 proliferation. The meristematic zone of growing roots attracts SA187, allowing epiphytic colonization in the elongation zone. Unlike primary roots, lateral roots are significantly less epiphytically colonized by SA187. Root endophytic colonization was found to occur by passive entry of SA187 at lateral-root bases. However, SA187 also actively penetrates the root epidermis by enzymatic disruption of plant cell wall material. In contrast to roots, endophytic colonization of shoots occurs via stomata, whereby SA187 can actively re-open stomata similarly to pathogenic bacteria. In summary, several entry strategies were identified that allow SA187 to establish itself as a beneficial endophyte in several plant species, supporting its use as a plant growth-promoting bacterium in agriculture systems.  相似文献   

12.
Role of salicylic acid in plant abiotic stress   总被引:1,自引:0,他引:1  
Salicylic acid (SA) plays many roles in plant physiology. Besides pathogenesis-related resistance, SA is involved in the response to abiotic stress. However, the effects of SA on plant resistance to abiotic stress were found contradictionary, and the actual role of SA in abiotic stress remains unresolved. Generally, deficiency of SA or a very high level of SA increase the plant susceptibility to abiotic stress. The optimal levels for the highest stress tolerance range from 0.1 mM to 0.5 mM for most plants. But the role of SA at a certain level in moderate and severe abiotic stress may be different. This can be attributed to redox regulations in plant cells. In this paper, we discuss the relationship between reactive oxygen species (ROS) and SA, and propose a subsequent intracellular signal transduction network of SA and ROS under abiotic stress. Anti-stress substances besides antioxidant enzymes induced by SA are also summarized.  相似文献   

13.
During evolution, plants have developed sophisticated ways to cope with different biotic and abiotic stresses. Phytohormones and secondary metabolites are known to play pivotal roles in defence responses against invading pathogens. One of the key hormones involved in plant immunity is salicylic acid (SA), of which the role in plant defence is well established and documented. Plants produce an array of secondary metabolites categorized in different classes, with the phenylpropanoids as major players in plant immunity. Both SA and phenylpropanoids are needed for an effective immune response by the plant. To successfully infect the host, pathogens secrete proteins, called effectors, into the plant tissue to lower defence. Secreted effectors can interfere with several metabolic or signalling pathways in the host to facilitate infection. In this review, we will focus on the different strategies pathogens have developed to affect the levels of SA and phenylpropanoids to increase plant susceptibility.  相似文献   

14.
The obligate biotrophic pathogen Plasmodiophora brassicae causes clubroot disease in Arabidopsis thaliana, which is characterized by large root galls. Salicylic acid (SA) production is a defence response in plants, and its methyl ester is involved in systemic signalling. Plasmodiophora brassicae seems to suppress plant defence reactions, but information on how this is achieved is scarce. Here, we profile the changes in SA metabolism during Arabidopsis clubroot disease. The accumulation of SA and the emission of methylated SA (methyl salicylate, MeSA) were observed in P. brassicae‐infected Arabidopsis 28 days after inoculation. There is evidence that MeSA is transported from infected roots to the upper plant. Analysis of the mutant Atbsmt1, deficient in the methylation of SA, indicated that the Arabidopsis SA methyltransferase was not responsible for alterations in clubroot symptoms. We found that P. brassicae possesses a methyltransferase (PbBSMT) with homology to plant methyltransferases. The PbBSMT gene is maximally transcribed when SA production is highest. By heterologous expression and enzymatic analyses, we showed that PbBSMT can methylate SA, benzoic and anthranilic acids.  相似文献   

15.
In nature, plants are constantly affected by adverse conditions. Unlike animals, plants can resist these adverse stresses only by insisting on their original positions. Stress can be divided into biological stress and abiotic stress, abiotic stress directly affects the growth, development and yield of plants, it spans all developmental stages from seed germination to senescence. In order to adapt to changing environment, plants have evolved well-developed mechanisms that help to perceive the stress signals and enable optimal growth response. Salicylic acid (SA) is an important endogenous signal molecule in plants, which not only regulate some plant growth and development processes, but also plays an important part in plant stress resistance. Much work about salicylic acid has been done on the immunity of plants to pathogens, and the synthesis and signal transduction of SA are clearly understood, its function in plant growth, development and abiotic stress is also well learned, we systemically summarized the multiple function of SA signal in non-pathogen-related response, such review should help us understand the common but essential function of SA signal in modulating plant growth, development and abiotic stress.  相似文献   

16.
MBF1是一种进化上高度保守的转录共激活因子, 存在于所有真核生物中, 可通过连接基础转录机器组分与转录因子来激活基因转录。植物MBF1具有多种重要生物学功能, 包括调控植物生长发育和逆境适应等。该文综述了植物MBF1分子结构与调控机制相关研究进展, 重点总结了AtMBF1c参与植物热胁迫应答调控的分子机制。  相似文献   

17.
Growth Control by Ethylene: Adjusting Phenotypes to the Environment   总被引:6,自引:0,他引:6  
Plants phenotypically adjust to environmental challenges, and the gaseous plant hormone ethylene modulates many of these growth adjustments. Ethylene can be involved in environmentally induced growth inhibition as well as growth stimulation. Still, ethylene has long been considered a growth inhibitory hormone. There is, however, accumulating evidence indicating that growth promotion is a common feature in ethylene responses. This is evident in environmental challenges, such as flooding and competition, where the resulting avoidance responses can help plants avoid adversity. To show how ethylene-mediated growth enhancement can facilitate plant performance under adverse conditions, we explored a number of these examples. To escape adversity, plants can optimize growth and thereby tolerate abiotic stresses such as drought, and this response can also involve ethylene. In this article we indicate how opposing effects of ethylene on plant growth can be brought about, by discussing a unifying, biphasic ethylene response model. To understand the mechanistic basis for this multitude of ethylene-mediated growth responses, the involvement of ethylene in processes that control cell expansion is also reviewed.  相似文献   

18.
The antagonistic action between jasmonic acid (JA) and salicylic acid (SA) in plant defence responses has been well documented. However, their relationship in secondary metabolite production is largely unknown. Here, we report that PB90, a protein elicitor from Phytophthora boehmeriae , triggers JA generation, SA accumulation and flavonol glycoside production of Ginkgo biloba cells. JA inhibitors suppress not only PB90-triggered JA generation, but also the elicitor-induced flavonol glycoside production. However, the elicitor can still enhance flavonol glycoside production even though the JA generation is totally inhibited. Over-expression of SA hydrolase gene NahG not only abolishes SA accumulation, but also suppresses the elicitor-induced flavonol glycoside production when JA signalling is inhibited. Interestingly, expression of NahG does not inhibit the elicitor-induced flavonol glycoside accumulation in the absence of JA inhibitors. Moreover, JA levels are significantly enhanced when SA accumulation is impaired in the transgenic cells. Together, the data suggest that both JA and SA are involved in PB90-induced flavonol glycoside production. Furthermore, we demonstrate that JA signalling might be enhanced to substitute for SA to mediate the elicitor-induced flavonol glycoside accumulation when SA signalling is impaired, which reveals an unusual complementary relationship between JA and SA in mediating plant secondary metabolite production.  相似文献   

19.
植物抗逆性与水杨酸介导的信号传导途径的关系   总被引:76,自引:0,他引:76  
基因表达既受发育过程的调控又受外界环境的影响。无论是内因还是外因诱发一组基因表达时都涉及信号传导(signal transduction)问题。局部器官和组织所发生的生理变化的信息要传递到远处的组织,引起基因表达时间和空间上的协调。信号传导途径的研究是当今分子生物学的研究热点之一。 作为信号传递的分子主要是小分子物质,属于次生代谢产物。也发现某些小肽具有信号分子的功能。信号分子可以在胞间扩散,亦可通过输导组织传送到远处的器官。近年来研究甚多的一种信号  相似文献   

20.
Salicylic acid (SA) is involved in the salt-resistance of the halophyte plant species Solanum chilense. The SA analog 2,6-dichloroisonicotinc acid (INA) is commonly used to elicit SA signal transduction in response to biotic stress and is frequently used to confirm the SA involvement in plant response to pathogens. Data are lacking concerning its impact on plant response to salinity, especially in the halophyte species. Solanum chilense was cultivated in the absence or presence of 125 mM NaCl in nutrient solution and exposed to 0.01 mM exogenous SA or sprayed with 0.5 mM INA. Exogenous SA increased the shoot dry weight while INA did not. Exogenous INA, in contrast to SA, increased the shoot Na+ concentration in NaCl-treated plants and decreased the root K+ concentration. In the absence of salt, both SA and INA induced an increase in H2O2 which was not due to ascorbate peroxidase (EC 1.11.1.11) inhibition. In salt-treated plants, SA stimulated the ascorbate peroxidase activity while INA did not. Exogenous SA increased the root putrescine and spermidine concentrations while INA significantly decreased the concentration of these protecting compounds. It is concluded that exogenous SA and INA do not have similar impacts on the plant behavior and that the difference between these compounds may be influenced by NaCl. The use of INA as a reliable SA analog should therefore be considered with caution in halophyte plant species.  相似文献   

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