首页 | 本学科首页   官方微博 | 高级检索  
相似文献
 共查询到20条相似文献,搜索用时 250 毫秒
1.
植物在遭受环境胁迫时会产生一系列应激反应,而热激转录因子可通过介导热激蛋白或其他热诱导基因的转录和表达,来参与调控植物抵抗逆境胁迫过程和其他生命活动。主要介绍了植物热激转录因子的基本蛋白结构域,阐述了3类热激转录因子在抗极端温度(高温、低温)胁迫、干旱胁迫、高盐胁迫、活性氧胁迫中的功能与作用机制,并探讨和展望了植物热激转录因子在植物育种和提高植物抗逆性的研究中的发展与应用前景,以期为深入研究热激转录因子在调控植物抵抗逆境胁迫中的生物学功能与机制提供理论参考。  相似文献   

2.
植物热激反应的信号转导机理   总被引:15,自引:0,他引:15  
  相似文献   

3.
4.
5.
6.
钙-钙调素信号系统参与热激信号转导的研究   总被引:3,自引:0,他引:3  
李冰  周人纲 《西北植物学报》2004,24(7):1322-1328
根据作者实验室的研究工作结合国内外的研究动态讨论热激信号转导的Ca2 -CaM途径。作者实验室的工作表明,钙一钙调素(Ca^2 -CaM)信号系统参与植物热激信号转导。激光共聚焦扫描显微镜的观察结果表明,37℃热激可引起小麦胞内自由Ca。’浓度迅速提高。在Ca^2 存在条件下,热激也引起小麦CaM基因CaM1-2表达及CaM蛋白含量增加。Ca^2 可促进小麦热激基因hsp26和mp70表达和热激蛋白合成,而Ca^2 螯合剂EGTA、Ca^2 通道阻断剂异搏定和LaCl3、CaM抑制剂W7、TFP和CPZ明显降低热激基因hsp26和mp70表达和热激蛋白合成。EGTA、异搏定、TFP或CPZ也阻止小麦耐热性的获得。小麦CaM基因与热激基因的表达动力学研究表明CaM位于热激信号转导的上游,而Ca^2 是启动热激反应的胞内关键因子。凝胶阻滞分析的结果表明,Ca^2 -CaM在热激信号转导中的作用是通过激活热激转录因子的DNA结合活性来实现的。根据大量实验证据,作者提出在植物细胞内存在一条新的热激信号转导途径——钙一钙调素途径。  相似文献   

7.
生物体暴露在高温和其它一些化学或者生理胁迫的环境中能诱导机体产生热激蛋白.真核生物中热激蛋白基因的表达受热激转录因子的调节.正常生长条件下,热激转录因子呈无活性的单体状态,当生物体处在热激等胁迫环境中时,热激转录因子会立即转换成有活性的三聚体并进入细胞核中与热激蛋白基因的热激元件结合,从而激活热蛋白激基因的转录.综述了近年来4种热激转录因子在生物体热应激反应中的作用,重点讨论了热激转录因子家族成员功能上的新发现.  相似文献   

8.
9.
热激转录因子(HSFs)参与了植物生长发育的调控以及多种非生物胁迫适应基因的表达调控。HSFs通常形成同源三聚体,激活转录活性从而发挥功能。本文综述了热激转录因子的基本结构、亚细胞定位、转录调控、功能多样性及其在植物适应极端温度、盐害、干旱、强光和氧化胁迫等非生物胁迫过程中的作用。HSFs是提高高等植物抗多重胁迫的优质候选基因,对其深入研究具有重要的应用价值。未来,通过生物基因工程等手段利用HSFs提高各类作物抗性具有广阔的发展前景。  相似文献   

10.
越来越多的证据表明热胁迫和氧化胁迫间存在着内在联系. 最近的研究发现, 热激转录因子(Hsfs)在联系热和氧化胁迫信号反应中具有重要的作用. 对拟南芥热激转录因子AtHsfA2在热激和氧化胁迫反应的功能进行了分析和鉴定. 利用Northern blot和定量RT-PCR的方法, 我们发现AtHsfA2的表达不仅被热激诱导, 同样也受到氧化胁迫诱导. 对AtHsfA2敲除突变体和超表达植株进行功能分析表明, 突变体降低了基础性和获得性耐热能力以及氧化胁迫耐性, 而超表达植株却增强这些耐性, 并且这些表型的改变与APX1和一些热激蛋白基因的表达, 离子渗漏水平, H2O2的水平和膜过氧化伤害程度的变化相关联. 以上结果表明, 拟南芥热激转录因子AtHsfA2通过调节胁迫反应基因的表达而提高热和氧化胁迫耐性. 因此, 我们提出热激转录因子AtHsfA2在联系热和氧化胁迫信号反应中具有重要的作用.  相似文献   

11.
High temperature (HT) has become a global concern because it severely affects the growth and production of crops. Heat stress causes an abrupt increase in the expression of stress-associated proteins which provide tolerance by stimulating the defense response in plants. Heat-shock proteins (Hsps) and antioxidant enzymes are important in encountering heat stress in plants. The heat-shock response is characterized by repression of normal cellular protein synthesis and induction of Hsp synthesis. Under HT stress, upregulation of various enzymatic and nonenzymatic antioxidants, maintenance of cell membrane stability, production of various compatible solutes and hormonal changes occurs. Reactive oxygen species involving several pathways such as water–water cycle, Halliwell–Asada, glutathione peroxidase, Haber–Weiss and Fenton reactions helps in protecting plants against toxic radicals which otherwise could cause damage to lipophilic protein. Genetic approaches to elucidate and map genes or quantitative trait loci conferring thermotolerance will facilitate marker-assisted breeding for heat tolerance and also pave the way for characterizing genetic factors which could be useful for engineering plants with improved heat tolerance. This review discusses the protective mechanism of heat stress responses encompassing different pathways that provide tolerance during HT stress.  相似文献   

12.
High-temperature stress affects all growth stages of crops and ultimately yields. This is further aggravated by other environmental stresses like intermittent drought and high light. Management options are few and hence developing intrinsically tolerant plants is essential to combat the situation. As thermotolerance is a multigenic trait, emphasis needs to be on relevant approaches to assess genetic variability in basal and acquired tolerance. This is in fact the major aspect in crop improvement programmes. The relevance of temperature induction (acclimation) response (TIR), a high throughput approach to identify thermotolerant individuals and its utility as potential screening method is described here. This is based on the concept that stress-responsive genes are expressed only during initial stages of stress (acclimation stress) and bring about requisite changes in cell metabolism for adaptation. The fact that acclimation response is ubiquitous has been demonstrated in different crop plants in our studies and by others. Significance of acclimation in acquired tolerance and thus in assessing genetic variability in thermotolerance is discussed. The limitations of present approaches to validate the relevance of specific stress genes either in transgenics or in mutants or knock downs have been analyzed and the need to characterize transformants under conditions that trigger acquired tolerance is also highlighted. This review also focuses on the potential of exploiting acclimation response approach to improve the thermotolerance of crop plants by suitable breeding strategies.  相似文献   

13.
14.
In nature, plants are subject to changes of tempera-ture. Thus, like other organisms, plants have evolved strategies for preventing damage caused by rapid changes in temperature and for repairing what damage is unavoidable. Heat stress responses have been well documented in a wide range of organisms. In all spe-cies studied, the heat shock (HS) response is charac-terized by a rapid production and a transient accumu-lation of specific families of proteins known as heat shock proteins (Hsps) th…  相似文献   

15.
16.
17.
Rice is the most important food crop worldwide. Global warming inevitably affects the grain yields of rice. Recent proteomics studies in rice have provided evidence for better understanding the mechanisms of thermal adaptation. Heat stress response in rice is complicated, involving up- or down-regulation of numerous proteins related to different metabolic pathways. The heat-responsive proteins mainly include protection proteins, proteins involved in protein biosynthesis, protein degradation, energy and carbohydrate metabolism, and redox homeostasis. In addition, increased thermotolerance in transgenic rice was obtained by overexpression of rice genes and genes from other plants. On the other hand, heterologous expression of some rice proteins led to enhanced thermotolerance in bacteria and other easily transformed plants. In this paper, we review the proteomic characterization of rice in response to high temperature and achievements of genetic engineering for heat tolerance in rice.  相似文献   

18.
19.
As rapid changes in climate threaten global crop yields, an understanding of plant heat stress tolerance is increasingly relevant. Heat stress tolerance involves the coordinated action of many cellular processes and is particularly energy demanding. We acquired a knockout mutant and generated knockdown lines in Arabidopsis thaliana of the d subunit of mitochondrial ATP synthase (gene name: ATPQ, AT3G52300, referred to hereafter as ATPd), a subunit of the peripheral stalk, and used these to investigate the phenotypic significance of this subunit in normal growth and heat stress tolerance. Homozygous knockout mutants for ATPd could not be obtained due to gametophytic defects, while heterozygotes possess no visible phenotype. Therefore, we used RNA interference to create knockdown plant lines for further studies. Proteomic analysis and blue native gels revealed that ATPd downregulation impairs only subunits of the mitochondrial ATP synthase (complex V). Knockdown plants were more sensitive to heat stress, had abnormal leaf morphology, and were severely slow growing compared to wild type. These results indicate that ATPd plays a crucial role in proper function of the mitochondrial ATP synthase holoenzyme, which, when reduced, leads to wide-ranging defects in energy-demanding cellular processes. In knockdown plants, more hydrogen peroxide accumulated and mitochondrial dysfunction stimulon (MDS) genes were activated. These data establish the essential structural role of ATPd and support the importance of complex V in normal plant growth, and provide new information about its requirement for heat stress tolerance.  相似文献   

20.
设为首页 | 免责声明 | 关于勤云 | 加入收藏

Copyright©北京勤云科技发展有限公司  京ICP备09084417号