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1.
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<正>独脚金内酯(strigolactones,SLs)是一类新型植物激素,能够抑制植物分枝的生长发育。近年来,关于SLs合成与信号在调控水稻株型方面的研究取得了重要进展。研究发现,独脚金内酯不仅可以调控水稻的分蘖数目,而且可影响分蘖角度和株高,进而影响穗部形态和籽粒大小,对水稻的产量具有显著的影响。鉴于独脚金内酯对于水稻株型的综合调控功  相似文献   

2.
独角金内酯(strigolactone, SLs)是一类新型植物激素,在植物生长发育的进程中发挥多种重要功能,包括调控植物的分枝,促进种子的萌发,以及影响根系建成等。MAX2 (more axillary growth 2)是SL信号传导途径的关键调控因子,位于合成途径基因MAX1MAX3MAX4的下游,几乎影响独脚金内酯所控制的所有表型。近年来,MAX2多样化的功能逐步得到揭示,大量数据表明MAX2不仅仅是SL信号的重要组分,同时也参与SL和多种激素信号间的交叉互作,在植物生长发育的各个环节,以及抵御生物和非生物胁迫的反应中都发挥至关重要的作用,但具体调控机制还有待更加深入的研究。对目前已知的MAX2功能进行了总结和阐述,以期为全面揭示MAX2功能及其调控多种激素信号的交叉机制提供理论参考。  相似文献   

3.
植物激素信号传导途径中的抑制子(repressor) DELLA、AUX/IAA、JAZ和D53/SMXL均结合下游转录因子并抑制其转录活性,从而阻遏激素响应基因的表达;激素分子则激活信号传导链降解抑制子、释放转录因子,从而诱导响应基因表达并介导相应的生物学功能。中国科学院遗传与发育生物学研究所李家洋研究团队最新的研究发现,独脚金内酯(SL)信号途径中的SMXL6、SMXL7和SMXL8是具有抑制子和转录因子双重功能的新型抑制子,他们还通过研究SL转录调控网络发现了大量新的SL响应基因,揭示了SL调控植物分枝、叶片伸长和花色素苷积累的分子机制。这些重要发现为探索植物激素作用机理提供了新思路,具有重要科学意义和应用前景。  相似文献   

4.
姚瑞枫  谢道昕 《植物学报》2020,55(4):397-402
植物激素信号传导途径中的抑制子(repressor) DELLA、AUX/IAA、JAZ和D53/SMXL均结合下游转录因子并抑制其转录活性, 从而阻遏激素响应基因的表达; 激素分子则激活信号传导链降解抑制子、释放转录因子, 从而诱导响应基因表达并介导相应的生物学功能。中国科学院遗传与发育生物学研究所李家洋研究团队最新的研究发现, 独脚金内酯(SL)信号途径中的SMXL6、SMXL7和SMXL8是具有抑制子和转录因子双重功能的新型抑制子, 他们还通过研究SL转录调控网络发现了大量新的SL响应基因, 揭示了SL调控植物分枝、叶片伸长和花色素苷积累的分子机制。这些重要发现为探索植物激素作用机理提供了新思路, 具有重要科学意义和应用前景。  相似文献   

5.
赤霉素生物合成与信号传递对植物株高的调控   总被引:2,自引:0,他引:2  
植物株高是影响作物产量和品质的重要农艺性状。赤霉素(Gibberellins,GAs)是调控植物株高的重要激素,GA相关株高基因的克隆与分子机制研究对于合理调控作物生长发育和农业生产具有极其重要的利用价值,在水稻、小麦等粮食作物育种中得到了广泛应用。为了促进GA在果树、花卉等园艺作物育种中的有效利用,文中在分子生物学水平上介绍GA生物合成和GA信号传递途径对植物株高的调控。  相似文献   

6.
分蘖是水稻等禾谷类作物生产的关键农艺性状,也是单子叶植物一种特殊的分枝现象.水稻分蘖的形成是一个复杂的过程,其间受遗传、植物激素、栽培环境等因素的综合影响.近年来,对水稻分蘖数改变的突变体研究取得令人瞩目的研究成果,本综述总结水稻分蘖的调控机理的最新研究进展.  相似文献   

7.
萧浪涛 《植物学报》2015,50(4):407-411
阐明植物激素作用的分子机理一直是植物学研究的前沿和热点。如何调控作物的株型等重要农艺性状是绿色革命的核心内容。最近, 中国科学家在解析新型植物激素独脚金内酯的信号途径和阐明独脚金内酯调控水稻(Oryza sativa)株型的分子机制等方面所取得的重大原创成果入选“2014年度中国科学十大进展”。  相似文献   

8.
分蘖是禾本科植物特有的分枝类型, 是影响作物产量的关键因素之一。分枝/分蘖数由叶腋处侧生分生组织的数量和侧芽的活性共同决定。表观遗传修饰调控植物生长发育的各个方面, 但是如何调控植物的分枝/分蘖数还未见系统报道。该综述归纳了表观遗传调控侧生分生组织的形成和侧芽向外生长两个方面, 并展望了表观遗传在调控植物分枝/分蘖中的研究方向, 以期为通过表观遗传修饰改良作物品种的育种途径提供理论指导。  相似文献   

9.
《遗传》2012,(4):130
水稻的分蘖是决定产量的一个重要农艺性状。适当的分蘖数目直接决定水稻的产量。水稻的分蘖不仅是直接调控产量的一个关键农艺性状,同时也是在植物生物学中决定株型建成的一个核心科学问题。在过去十余年,植物基因组学国家重点实验室的李家洋院士及其合作者对水稻分蘖的调控机制进行了系统深入研究。  相似文献   

10.
株型是影响谷类作物产量的重要性状, 株型改良对提高作物产量具有重要意义。独脚金内酯(strigolactones, SLs)作为一种最新被鉴定的植物激素, 其通过抑制腋芽的伸长调控分枝/分蘖的形成。β-胡萝卜素异构酶(D27s)是SLs合成途径的关键酶, 通过对谷子(Setaria italica) β-胡萝卜素异构酶典型结构域Pfam:DUF4033进行分析, 鉴定到3个谷子D27s基因家族成员(Seita.8G168400Seita.6G088800Seita.3G050900)。蛋白质特性分析显示, 谷子D27s蛋白由271-277个氨基酸残基组成, 分子量为30.1-30.4 kDa, 等电点为5.85-9.31, 不稳定系数介于38.48-74.47之间, 且均定位于叶绿体; 系统进化分析发现, 谷子D27s家族成员位于3个不同进化分支; 顺式作用元件预测显示, SiD27-1 (Seita.8G168400)可能参与调控生物节律、生长素介导的生长发育以及干旱和低温等胁迫应答过程。基因表达分析显示, SiD27-1在谷子多分蘖材料中表达下调, 在低磷胁迫处理下, D27s基因均能产生不同程度的响应, 并且SiD27-1的响应较其它成员更快速。单倍型分析结果表明, SiD27-1的H001单倍型为优异单倍型, 对谷子的株高、抽穗期和产量改良具有重要应用价值。综上, 推测SiD27-1极可能在SLs合成中发挥关键作用并对谷子株型产生影响。研究结果为深入揭示D27s对谷子分蘖形成的调控机制奠定了基础, 也为谷子株型分子设计育种提供了优异的等位变异位点。  相似文献   

11.
Genetic modification of plant architecture and variety improvement in rice   总被引:1,自引:0,他引:1  
Yang XC  Hwa CM 《Heredity》2008,101(5):396-404
The structure of the aerial part of a plant, referred to as plant architecture, is subject to strict genetic control, and grain production in cereal crops is governed by an array of agronomic traits. Rice is one of the most important cereal crops and is also a model plant for molecular biological research. Recently, significant progress has been made in isolating and collecting rice mutants that exhibit altered plant architecture. In this article we summarize the recent progress in understanding the basic patterning mechanisms involved in the regulation of tillering (branching) pattern, stem structure and leaf arrangement in rice plants. We discuss the relationship between the genetic modification of plant architecture and the improvement of pivotal agronomic traits in rice.  相似文献   

12.
As a ubiquitous reaction, glucosylation controls the bioactivity of cytokinins in plant growth and development.Here we show that genetic manipulation of zeatin-Oglucosylation regulates the formation of important agronomic traits in rice by manipulating the expression of OscZOG1 gene,encoding a putative zeatin O-glucosyltransferase. We found that OscZOG1 was preferentially expressed in shoot and root meristematic tissues and nascent organs. The growth of lateral roots was stimulated in the overexpression lines, but inhibited in RNA interference lines. In shoots, knockdown of OscZOG1 expression by RNA interference significantly improved tillering, panicle branching, grain number per panicle and seed size, which are important agronomic traits for grain yield. In contrast, constitutive expression of OscZOG1 leads to negative effects on the formation of the grain-yielding traits with a marked increase in the accumulation levels of cis-zeatin O-glucoside(c ZOG) in the transgenic rice plants. In this study,our findings demonstrate the feasibility of improving the critical yield-determinant agronomic traits, including tiller number, panicle branches, total grain number per panicle and grain weight by downregulating the expression level of OscZOG1. Our results suggest that modulating the levels of cytokinin glucosylation can function as a fine-tuning switch in regulating the formation of agronomic traits in rice.  相似文献   

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14.
Plant architecture, a collection of the important agronomic traits that determine grain production in rice, is mainly affected by factors including tillering, plant height and panicle morphology. Recently, significant progress has been made in isolating and collecting of mutants that are defective in rice plant architecture. Although our understanding of the molecular mechanisms that control rice tillering, panicle development and plant height are still limited, new findings have begun to emerge. This review, therefore, summarizes the recent progress in exploring the mechanisms that control rice plant architecture.  相似文献   

15.
对180份苦荞种质资源的8个主要农艺性状进行了评价,并对单株粒重与其他7个农艺性状之间进行了相关性分析和通径分析。结果显示,主要农艺性状的变异系数为8.10%~39.40%;简单相关分析表明,单株粒重与单株粒数、主茎分支数呈极显著正相关;偏相关分析表明,单株粒重与单株粒数、千粒重呈极显著正相关;多元回归和通径分析均表明,单株粒数、千粒重是影响单株粒重的主要因素,其中单株粒数影响最大。系统聚类分析表明,180份苦荞种质资源可划分为5类,其中第Ⅲ类(包括47份供试材料)的综合农艺性状较好,主要表现为主茎分枝能力强、单株粒数多、单株粒重和单株米粒重高,可作为优异基因资源进一步开发利用,也为以增加单株米粒重与出米率为选育目标的苦荞薄壳育种提供依据。  相似文献   

16.
Tillering and panicle branching genes in rice   总被引:1,自引:0,他引:1  
Rice (Oryza sativa L.) is one of the most important staple food crops in the world, and rice tillering and panicle branching are important traits determining grain yield. Since the gene MONOCULM 1 (MOC 1) was first characterized as a key regulator in controlling rice tillering and branching, great progress has been achieved in identifying important genes associated with grain yield, elucidating the genetic basis of yield-related traits. Some of these important genes were shown to be applicable for molecular breeding of high-yielding rice. This review focuses on recent advances, with emphasis on rice tillering and panicle branching genes, and their regulatory networks.  相似文献   

17.
18.
Strigolactones (SLs) are rhizosphere communication chemicals. Recent studies of highly branched mutants revealed that SL or its metabolites work as a phytohormone to inhibit shoot branching. When SLs are exogenously applied to the rice d10-1 mutant that has a highly branched phenotype caused by a defect in the SL biosynthesis gene (CCD8), they inhibit tiller bud outgrowth (branching in rice) of the mutant. We focused our attention on the SL function as a phytohormone and tried to find new chemicals mimicking the hormonal action of SL by screening chemicals that inhibit branching of rice d10-1 mutant. Fortunately, we found 5-(4-chlorophenoxy)-3-methylfuran-2(5H)-one (3a) as a new chemical possessing SL-like activity against the rice d10-1 mutant. Then, we prepared several derivatives of 3a (3b-3k) to examine their ability to inhibit shoot branching of rice d10-1. These derivatives were synthesized by a one-pot coupling reaction between phenols and halo butenolide to give 5-phenoxy 3-methylfuran-2(5H)-one (3) derivatives, which possess a common substructure with SLs. Some of the derivatives showed SL-like activity more potently than GR24, a typical SL derivative, in a rice assay. As SLs also show activity by inducing seed germination of root parasitic plants, the induction activity of these derivatives was also evaluated. Here we report the structure-activity relationships of these compounds.  相似文献   

19.
Plant branching development plays an important role in plant morphogenesis (aboveground plant type), the number and angle of branches are important agronomic characters that determine crop plant type. Effective branches determine the number of panicles or pods of crops and then control the yield of crops. With the rapid development of plant genomics and molecular genetics, great progress has been made in the study of branching development. In recent years, a series of important branching-related genes have been validated from Arabidopsis thaliana, rice, pea, tomato and maize mutants. It is reviewed that plant branching development is controlled by genetic elements and plant hormones, such as auxin, cytokinin and lactones (or lactone derivatives), as well as by environment and genetic elements. Meanwhile, shoot architecture in crop breeding was discussed in order to provide theoretical basis for the study of crop branching regulation.  相似文献   

20.
Abstract

A large number of rice agronomic traits are complex, multi factorial and polygenic. As the mechanisms and genes determining grain size and yield are largely unknown, the identification of regulatory genes related to grain development remains a preeminent approach in rice genetic studies and breeding programs. Genes regulating cell proliferation and expansion in spikelet hulls and participating in endosperm development are the main controllers of rice kernel elongation and grain size. We review here and discuss recent findings on genes controlling rice grain size and the mechanisms, epialleles, epigenomic variation, and assessment of controlling genes using genome-editing tools relating to kernel elongation.  相似文献   

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