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1.
赤霉素作用机理的分子基础与调控模式研究进展   总被引:22,自引:1,他引:21  
赤霉素(gibberellins或gibberellic acid,GA)作为植物生长的必需激素之一,调控植物生长发育的各个方面,如:种子萌发,下胚轴的伸长,叶片的生长和植物开花时间等。近年来随着植物功能基因组学的进一步发展,有关赤霉素生物合成及其调控,赤霉素信号转导途径,以及赤霉素与其他激素和环境因子的互作等领域的研究取得了较大的进展。本文综述了赤霉素生物合成的生物学途径及其调控研究;GA信号转导通道的研究进展,特别是DELLA蛋白阻遏植物生长发育的分子机理和GA解除阻遏作用(derepress)的分子模型;GA受体研究的新进展;探讨GA与其它激素之间的相互作用,以及植物在应答环境过程中的作用。  相似文献   

2.
赤霉素信号转导及其调控植物生长发育的研究进展   总被引:4,自引:0,他引:4  
赤霉素(Gibberellins或gibberellic acid,GA)是植物生长发育所必需的植物激素之一,调控植物生长发育的多个过程。近年来随着植物分子生物学和功能基因组学的发展,有关GA信号转导途径及其调控植物生长发育的研究取得了一系列的进展。综述了GA信号转导途径的关键组分,包括GA受体GIBBERELLIN INSENSITIVE DWARF1(GID1)蛋白、F-box蛋白(拟南芥中的SLEEPY1[SLY1]和水稻中的GIBBERELLIN INSENSITIVE DWARF2[GID2])及DELLA蛋白,阐述了GA去除DELLA蛋白阻遏作用的分子模型,同时探讨DELLA蛋白通过其互作蛋白整合其它激素及环境信号调控植物生长发育的作用机理。  相似文献   

3.
赤霉素(GA)能促进种子萌发和植物生长发育。近年来的研究表明赤霉素这一激素在植物响应非生物胁迫中同样发挥着重要的作用。植物通过调节GA生物合成、信号转导及其生物活性提高胁迫耐受性。综述了赤霉素在应对常见的几类非生物胁迫中所起的作用,分析了其合成、信号转导通路调控机制以及赤霉素与其他激素在响应非生物胁迫的关系。  相似文献   

4.
高等植物赤霉素代谢及其信号转导通路   总被引:2,自引:0,他引:2  
赤霉素是一类重要的植物激素,对植物的生长发育,如种子的萌发、茎的延展、叶片的生长、休眠芽的萌发以及植物的花和种子的发育等生理具有重要的调控作用。从1926年被发现至今,阐明了赤霉素代谢机理及调控机制,明确了赤霉素在植物体内的信号转导途径。本文综述了赤霉素的生物合成途径及其平衡的调节;赤霉素受体GID1、DELLA蛋白在赤霉素信号转导途径中的作用及相关研究;泛素介导的DELLA蛋白降解在赤霉素信号转导中的研究进展。  相似文献   

5.
GAI/RGA蛋白家族的研究进展   总被引:1,自引:0,他引:1  
赤霉素(GAs)通过同细胞膜上的受体结合,经过一系列信号分子传递从而调节植物的生长发育。在已发现的植物GA信号传递分子中,有一类重要的组成元件—GAI/RGA家族蛋白,不仅作用于植物的种子萌发、茎的伸长和花的发育等许多方面,而且在GA信号转导途径与其他植物激素信号转导途径的相互作用中起着非常重要的作用。最近几年,对GAI/RGA家族蛋白的研究取得了惊人的进展。现就GAI/RGA家族蛋白的结构、在GA信号转导中的作用、在植物生长发育中的作用以及在激素相互关系中的作用等方面进行综述。  相似文献   

6.
种子的萌发能力由胚周围组织(种皮和胚乳)强加的物理限制与胚的生长潜能之间的平衡所决定.覆盖胚根尖端的珠孔端胚乳细胞的弱化被植物激素赤霉素(gibberellin, GA)促进但被脱落酸抑制,是胚根伸出的重要前提.GA是一种调控植物许多关键生理过程,如种子萌发、根和茎的伸长、开花、座果和种子发育的重要激素. GA在种子萌发与休眠解除中的作用主要受其生物合成与分解代谢和信号转导途径的调控.本文主要综述了GA的生物合成与代谢、GA的信号转导以及它们对种子萌发和休眠解除调控的研究进展.此外,本文也提出了本领域需要进一步研究的科学问题,试图为解释GA调控种子萌发与休眠的分子机理提供新的研究信息.  相似文献   

7.
植物赤霉素生物合成和信号传导的分子生物学   总被引:12,自引:0,他引:12  
王伟  朱平  程克棣 《植物学通报》2002,19(2):137-149,155
赤霉素 (GAs)在植物的种子萌发、茎的伸长和花的发育等许多方面起着非常重要的作用。最近几年 ,对GA生物合成及其信号传导途径相关基因的研究取得了惊人的进展。这些进展促进了对其生物合成及其信号传导途径的认识。GA生物合成相关基因的表达受到多种内源和外源因子的调控 ,其中研究较多的是发育阶段、激素水平和光信号等内源及环境因子的调控。GA信号传导通常处于抑制状态 ,GA信号通过去抑制作用激活该传导途径而促进GA刺激植物生长和发育。  相似文献   

8.
赤霉素(GAs)在植物的种子萌发、茎的伸长和花的发育等许多方面起着非常重要的作用。最近几年,对GA生物合成及其信号传导途径相关基因的研究取得了惊人的进展。这些进展促进了对其生物合成及其信号传导途径的认识。GA生物合成相关基因的表达受到多种内源和外源因子的调控, 其中研究较多的是发育阶段、激素水平和光信号等内源及环境因子的调控。GA信号传导通常处于抑制状态, GA信号通过去抑制作用激活该传导途径而促进GA刺激植物生长和发育。  相似文献   

9.
赤霉素信号转导与植物的矮化   总被引:3,自引:0,他引:3  
论述近年来在拟南芥、水稻等模式植物中赤霉素信号转导的研究进展。通过对赤霉素相关突变体的生理研究 ,鉴定出几个介入赤霉素信号转导过程的重要基因 ,并对这些基因的产物进行分析 ,根据相应的蛋白特征结构域 ,推导了它们可能具有的功能。利用双突变体 ,分析了这些基因的上下游关系 ,确定了在植物中 ,GA信号转导的几个途径。在此基础上提出了赤霉素信号转导的基本模式 :阻遏是GA信号转导过程中最基本的方式 ,GA信号通过去除阻遏作用来激活转导途径 ,从而调节GA相关的生长与发育。  相似文献   

10.
赤霉素(Gibberellin)是一类非常重要的植物激素,在高等植物生命活动的整个周期都起着重要的调控作用。从毛竹Phyllostachys edulis基因组中共鉴定出23个赤霉素途径基因,包括赤霉素生物合成相关的8个GA20ox和1个GA3ox基因、降解相关的8个GA2ox基因、参与赤霉素感知的2个GID1基因以及信号转导的2个GID2基因和2个DELLA基因。拟南芥、水稻和毛竹的系统进化树和保守基序分析显示赤霉素的合成代谢与信号转导在这些物种中是高度保守的。利用外源赤霉素处理毛竹种子和幼苗,发现赤霉素能显著提高种子的萌发率和幼苗的茎秆伸长,并且有着最佳的作用浓度。在GA3处理后,毛竹体内赤霉素生物合成基因GA20ox和GA3ox表达量均下调而降解活性赤霉素的GA2ox基因表达量上调;赤霉素受体GID1和正调控基因GID2的转录水平显著提高而负调控基因DELLA的表达受到抑制。这些基因在竹笋茎秆的不同形态学位置表达差异明显,大部分赤霉素生物合成与降解的相关基因GA20ox、GA3ox和GA2ox以及赤霉素受体GID1和正调控基因GID2都在竹笋的形态学上端大量表达,而赤霉素信号转导的阻遏基因DELLA在笋体形态学底端大量积累而顶端基本不表达。  相似文献   

11.
This article presents evidence that DELLA repression of gibberellin (GA) signaling is relieved both by proteolysis-dependent and -independent pathways in Arabidopsis thaliana. DELLA proteins are negative regulators of GA responses, including seed germination, stem elongation, and fertility. GA stimulates GA responses by causing DELLA repressor degradation via the ubiquitin-proteasome pathway. DELLA degradation requires GA biosynthesis, three functionally redundant GA receptors GIBBERELLIN INSENSITIVE DWARF1 (GID1a, b, and c), and the SLEEPY1 (SLY1) F-box subunit of an SCF E3 ubiquitin ligase. The sly1 mutants accumulate more DELLA proteins but display less severe dwarf and germination phenotypes than the GA biosynthesis mutant ga1-3 or the gid1abc triple mutant. Interestingly, GID1 overexpression rescued the sly1 dwarf and infertility phenotypes without decreasing the accumulation of the DELLA protein REPRESSOR OF ga1-3. GID1 rescue of sly1 mutants was dependent on the level of GID1 protein, GA, and the presence of a functional DELLA motif. Since DELLA shows increasing interaction with GID1 with increasing GA levels, it appears that GA-bound GID1 can block DELLA repressor activity by direct protein-protein interaction with the DELLA domain. Thus, a SLY1-independent mechanism for GA signaling may function without DELLA degradation.  相似文献   

12.
In rice (Oryza sativa) and Arabidopsis thaliana, gibberellin (GA) signaling is mediated by GIBBERELLIN-INSENSITIVE DWARF1 (GID1) and DELLA proteins in collaboration with a GA-specific F-box protein. To explore when plants evolved the ability to perceive GA by the GID1/DELLA pathway, we examined these GA signaling components in the lycophyte Selaginella moellendorffii and the bryophyte Physcomitrella patens. An in silico search identified several homologs of GID1, DELLA, and GID2, a GA-specific F-box protein in rice, in both species. Sm GID1a and Sm GID1b, GID1 proteins from S. moellendorffii, showed GA binding activity in vitro and interacted with DELLA proteins from S. moellendorffii in a GA-dependent manner in yeast. Introduction of constitutively expressed Sm GID1a, Sm G1D1b, and Sm GID2a transgenes rescued the dwarf phenotype of rice gid1 and gid2 mutants. Furthermore, treatment with GA(4), a major GA in S. moellendorffii, caused downregulation of Sm GID1b, Sm GA20 oxidase, and Sm GA3 oxidase and degradation of the Sm DELLA1 protein. These results demonstrate that the homologs of GID1, DELLA, and GID2 work in a similar manner in S. moellendorffii and in flowering plants. Biochemical studies revealed that Sm GID1s have different GA binding properties from GID1s in flowering plants. No evidence was found for the functional conservation of these genes in P. patens, indicating that GID1/DELLA-mediated GA signaling, if present, differs from that in vascular plants. Our results suggest that GID1/DELLA-mediated GA signaling appeared after the divergence of vascular plants from the moss lineage.  相似文献   

13.
Sun TP 《Current biology : CB》2011,21(9):R338-R345
Bioactive gibberellins (GAs) are diterpene phytohormones that modulate growth and development throughout the whole life cycle of the flowering plant. Impressive advances have been made in elucidating the GA pathway with the cloning and characterization of genes encoding most GA biosynthesis and catabolism enzymes, GA receptors (GIBBERELLIN INSENSITIVE DWARF1, GID1) and early GA signaling components. Recent biochemical, genetic and structural analyses demonstrate that GA de-represses its signaling pathway by GID1-induced degradation of DELLA proteins, which are master growth repressors, via a ubiquitin-proteasome pathway. Multiple endogenous signals and environmental cues also interact with the GA-GID1-DELLA regulatory module by affecting the expression of GA metabolism genes, and hence GA content and DELLA levels. Importantly, DELLA integrates different signaling activities by direct protein-protein interaction with multiple key regulatory proteins from other pathways. Comparative studies suggest that the functional GA-GID1-DELLA module is highly conserved among vascular plants, but not in the bryophytes. Interestingly, differentiation of the moss Physcomitrella patens is regulated by as yet unidentified ent-kaurene-derived diterpenes, which are distinct from the common active GAs in vascular plants.  相似文献   

14.
GA action: turning on de-DELLA repressing signaling   总被引:5,自引:0,他引:5  
Phytohormone gibberellins (GA) are a large family of tetracyclic diterpenoids and play the important roles in modulation of plant growth and development throughout the plant life cycle. GA depresses its signaling by the GA-promoted destabilization of the DELLA protein growth repressors via 26S proteasome pathway. Recent evidences indicate that the DELLA proteins interact with multiple environmental and other hormonal response pathways and confer plant growth restraint. Furthermore, the discovery of rice GIBBERELLIN INSENSITIVE DWARF1 (GID1) and three Arabidopsis AtGID1 homologs as soluble GA receptors opens new prospects for understanding of de-DELLA repressing system in GA signaling.  相似文献   

15.
When the gibberellin (GA) receptor GIBBERELLIN INSENSITIVE DWARF 1 (GID1) binds to GA, GID1 interacts with DELLA proteins, repressors of GA signaling. This interaction inhibits the suppressive function of DELLA protein and thereby activates the GA response. However, how DELLA proteins exert their suppressive function and how GID1s inhibit suppressive function of DELLA proteins is unclear. By yeast one-hybrid experiments and transient expression of the N-terminal region of rice DELLA protein (SLR1) in rice callus, we established that the N-terminal DELLA/TVHYNP motif of SLR1 possesses transactivation activity. When SLR1 proteins with various deletions were over-expressed in rice, the severity of dwarfism correlated with the transactivation activity observed in yeast, indicating that SLR1 suppresses plant growth through transactivation activity. This activity was suppressed by the GA-dependent GID1-SLR1 interaction, which may explain why GA responses are induced in the presence of GA. The C-terminal GRAS domain of SLR1 also exhibits a suppressive function on plant growth, possibly by directly or indirectly interacting with the promoter region of target genes. Our results indicate that the N-terminal region of SLR1 has two roles in GA signaling: interaction with GID1 and transactivation activity.  相似文献   

16.
17.
Gibberellins (GAs) play important roles in many essential plant growth and development processes. A family of nuclear growth-repressing DELLA proteins is the key component in GA signaling. GA perception is mediated by GID1, and the key event of GA signaling is the degradation of DELLA proteins via the 26S proteasome pathway. DELLA proteins integrating other plant hormones signaling and environmental cue modulating plant growth and development have been revealed. GA turning on the de-DELLA-repressing system is conserved, and independently establishes step-by-step recruitment of GAstimulated GID1-DELLA interaction and DELLA growth-repression functions during land plant evolution. These discoveries open new prospects for the understanding of GA action and DELLA-mediated signaling in plants.  相似文献   

18.
Gibberellins (GAs) play important roles in many essential plant growth and development processes. A family of nuclear growth-repressing DELLA proteins is the key component in GA signaling. GA perception is mediated by GID1, and the key event of GA signaling is the degradation of DELLA proteins via the 26S proteasome pathway. DELLA proteins integrating other plant hormones signaling and environmental cue modulating plant growth and development have been revealed. GA turning on the de-DELLA-repressing system is conserved, and independently establishes step-by-step recruitment of GA-stimulated GID1-DELLA interaction and DELLA growth-repression functions during land plant evolution. These discoveries open new prospects for the understanding of GA action and DELLA-mediated signaling in plants.  相似文献   

19.
The rice SLR1 (SLENDER RICE 1) gene encodes a DELLA protein that belongs to a subfamily of the GRAS protein superfamily and that functions as a repressor of gibberellin (GA) signaling. Based on the constitutive GA response phenotype of slr1 mutants, SLR1 has been thought to be the sole DELLA-type protein suppressing GA signals in rice. However, in rice genome databases we identified two sequences homologous to SLR1: SLR1-like1 and -2 (SLRL1 and -2). SLRL1 and SLRL2 contain regions with high similarity to the C-terminal conserved domains in SLR1, but lack the N-terminal conserved region of the DELLA proteins. The expression of SLRL1 was positively regulated by GA at the mRNA level and occurred preferentially in reproductive organs, whereas SLRL2 was moderately expressed in mature leaf organs and was not affected by GA. Transformation of SLRL1 into the slr1 mutant rescued the slender phenotype of this mutant. Moreover, overexpression of SLRL1 in normal rice plants induced a dwarf phenotype with an increased level of OsGA20ox2 gene expression and diminished the GA-induced shoot elongation, suggesting that SLRL1 acts as a repressor of GA signaling. Consistent with the fact that SLRL1 does not have a DELLA domain, which is essential for degradation of DELLA proteins, a level of SLRL1 protein was not degraded by application of gibberellic acid. However, the repressive activity of SLRL1 against GA signaling was much weaker than a truncated SLR1 lacking the DELLA domain. Based on these characteristics of SLRL1, the functional roles of SLRL1 in GA signaling in rice are discussed.  相似文献   

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