首页 | 本学科首页   官方微博 | 高级检索  
相似文献
 共查询到19条相似文献,搜索用时 140 毫秒
1.
根瘤菌是一类引起豆科植物结瘤固氮的土壤细菌。根瘤中的类菌体固定空气中的氮气为宿主植物提供充足的氮源。共生体系的建立始于细菌与宿主植物间复杂的信号交换过程。植物产生类黄酮诱导相应的根瘤菌合成分泌结瘤因子 ,后者进而诱导宿主植物根系形态变化以及早期根瘤素基因表达。以下将就宿主植物结瘤因子的特异识别和早期信号传导进行讨论。  相似文献   

2.
根瘤菌脂壳寡糖结瘤因子研究概况   总被引:2,自引:0,他引:2       下载免费PDF全文
张林维   《微生物学通报》1999,26(6):440-442
共生固氮是根瘤菌与豆科植物相互作用的结果,它在农业上有重要意义。结瘤与固氮包括一系列复杂的生物学过程,它涉及微生物与植物间专一性识别、信息交换和基因协同表达等方面。近些年研究已经揭示出根瘤菌与豆科植物相互作用分子基础的基本框架。在根瘤的形成过程中,植物与根瘤菌之间首先进行信息交换,促使根瘤菌产生脂壳寡糖类物质。这类脂壳寡糖类物质能引起植物形成根瘤,因此被称为脂壳寡糖结瘤因子(Lipochitinoligosaccharides)或结瘤因子(nodfactors)[1]。脂壳寡糖结瘤因子的发现、结…  相似文献   

3.
紫云英根瘤菌结瘤因子的初步研究   总被引:7,自引:1,他引:7  
最近的研究结果表明,豆科植物与根瘤菌的共生识别是一种双向的信号物质交换过程.首先是豆科植物的根或种子分泌类黄酮物质,诱导根瘤菌的结瘤基因(nod genes)产生结瘤因子(nod factors),分泌到胞外,为植物所接受,从而引发植物某些基因表达,细胞分化,细胞壁形成,最终导致根毛变形等一系列变化.已经测定了几种苜蓿根瘤菌(Rhizobium meliloti)和豌豆根瘤菌(R.leguminosarum bv.viciae)结瘤因子的分子结构式,它们均属于寡糖胺类物质,在没有根瘤菌存在的条件下,结瘤因子能独立地促使根毛发生变形,这是检测结瘤因子是否存在的重要手段,即根毛变形试验(Root hairdeformation assay,简称Had试验).高浓度的结瘤因子甚至能诱导植物产生空瘤,其组织结构与典型的根瘤相同.  相似文献   

4.
根瘤菌结瘤因子的研究进展   总被引:3,自引:0,他引:3  
根瘤菌结瘤因子的研究进展靖元孝(华南师范大学生物系,广州510631)关键词根瘤菌结瘤因子Rhizobium、Bradyrhizobium和Azorhi-zobium三类细菌能侵染豆科植物并形成根瘤。在根瘤形成过程中,共生伙伴之间首先进行信号物质交换...  相似文献   

5.
氮是花生生长发育所需的大量元素,共生结瘤固氮是花生获取氮素的主要方式之一。花生共生结瘤固氮涉及复杂的调控机理,揭示氮素对根瘤固氮的调控机制对发挥生物固氮潜力具有重要意义。本文系统总结了花生根瘤形成的“裂隙侵染”机制、花生共生结瘤和数量调控的机制以及氮素影响花生结瘤的调控机制。目前,氮素影响慢生根瘤菌与花生互作进而调控结瘤的分子机理尚不清楚,因此未来的研究重点应该集中在氮素影响花生慢生根瘤菌与花生的信号交流、根瘤数调节和营养交换机制等方面,为提高花生结瘤固氮效率和产量、减少化学氮肥施用提供理论基础。  相似文献   

6.
简要综述了目前根瘤菌结癌基因研究的3个热点方向,即结瘤因子、nodlD基因的调控和结瘤基因系统发育分析的新进展。结瘤因子的骨架核心是结瘤基因中的共同性基因nodABC表达的产物,宿主专一性基因则进行骨架结构的修饰,所形成的特异性结瘤因子是根瘤苗宿主范围的主要决定因素。结瘤调控基因nodD的作用方式与其存在的拷贝数目和产物NodD蛋白活性有关,同时NodD的敏感性还影响到根瘤菌的宿主范围。结瘤基因的系统发育揭示出根瘤菌宿主范围与共同性结瘤基因间比其它基荫的相关性更高。结瘤基因与豆科宿主之间存在一定的共进化关系。  相似文献   

7.
费氏中华根瘤菌(Sinorhizobium fredii)YC4能在大豆(Glycine max)和野大豆(G.soja)上形成正常固氮的根瘤.人工培养条件下用^14C标记的薄层层析(TLC)法检测根瘤菌产生的结瘤因子(LCOs)的结果表明,与其它4株费氏中华根瘤菌相比,YC4产生的LCOs含有较多的疏水性基团.从YC4菌株中分离到1株共生质粒发生了扩增的自发突变株YSC3,其产生的LCOs中含有较野生型菌株多的1个疏水性组分,28℃培养条件下产生的LCOs量亦较YC4显著增加.结瘤试验结果表明,YSC3菌株只能在大豆和野大豆上形成无效的根瘤.  相似文献   

8.
根瘤菌的结瘤基因与结瘤因子   总被引:4,自引:0,他引:4  
根瘤菌的结瘤基因与结瘤因子郭先武(华中农业大学农业部农业微生物重点实验室武汉430070)根瘤菌侵染豆科植物形成根瘤,并合成NH3供植物利用,其自身也在植物环境中得以有效延续。这就是根瘤菌与宿主植物的共生关系。形成共生关系的基因分成三类[7],一类是...  相似文献   

9.
根瘤菌结瘤因子的结构和功能   总被引:3,自引:0,他引:3  
结瘤因子是根瘤菌分泌的寡糖,它作为外在信号,诱发宿主植物根部各种生理反应。引起根毛变形,诱导皮层细胞分裂,形成根瘤原基,作者主要就这一早期结瘤过程中结瘤因子的结构和功能作一综述。  相似文献   

10.
根瘤菌与群体感应   总被引:2,自引:0,他引:2  
细菌在高细胞密度下可以产生群体感应信号分子,调控细菌相关基因的表达,这种信号分子被称为自体诱导物。酰基高丝氨酸内酯类化合物(acyl-HSLs)是在根瘤菌中广泛存在的一类自体诱导物,该群体感应系统与根瘤菌和植物的共生作用密切相关。本文概述了AHLs介导的群体感应系统的组成及调控机制和不同根瘤菌中群体感应调节对根瘤菌生理行为及共生固氮的影响。  相似文献   

11.
通过对昆明西山滇青冈林内滇青冈种子库的跟踪取样调查和种子埋藏试验,对滇青冈种子库的动态进行了研究。昆虫在种子成熟前侵入种子,经种子雨进入种子库时已有71.8%的种子失去萌发能力。种子雨输入种子库的绝大部分种子停留在表面种子库,其中48.55%的种子被虫害,25.36%被某些非生物或生物搬运,17.39%的腐烂,8.7%的被动物当场取食,没有种子萌发,影响种子库动态的各种因子的作用大小在时间上是变化。被搬运的种子中,有4.9%的由表面种子库转移到埋藏种子库。土层是滇青冈种子的安全生境,土壤种子库的存在时间超过250天。埋入土壤的试验种子一直处于静止状态,到6月雨季后有80%种子萌发,20%的腐烂。萌发种子数是当年产种子的0.26%。滇青冈林内的滇青冈种子库是季节性的,种子库对种群个体的补充作用是有限的。  相似文献   

12.
Lipo‐chitin oligosaccharides (LCOs), produced by rhizobia, are causative agents of the formation of root nodules in leguminous plants. As outlined in this review, the root nodulation process presents a valuable model system to study plant morphogenesis. The knowledge that resulted from the studies of the biological function and biosynthesis of the rhizobial LCOs is summarized. It has been postulated that LCOs are representatives of a general class of signal molecules involved in plant and animal morphogenesis. Discussed is how the present knowledge can be used for future studies on the function of LCOs in morphogenesis and in the search for analogue signal molecules produced by plants and animals.  相似文献   

13.
Referee: Dr. Gary Stacey, Director, Center for Legume Research, Department of Microbiology, M409 Walters Life Science Bldg., University of Tennessee, Knoxville, TN 37966-0845 Soil bacteria belonging to genera Rhizobium, Bradyrhizobium, Allorhizobium, Azorhizobium, Mesorhizobium, and Sinorhizobium are able to induce nodule formation on the roots of leguminous plants. In the differentiated root nodules bacteria fix as bacteroids atmospheric nitrogen and deliver it to the host plant. The interaction between bacteria and host plant starts with a complex signal exchange. After induction by plant flavonoids, rhizobia synthesize and secrete lipo-chitooligosaccharides (LCOs), known as Nod factors, which induce morphological changes and expression of early nodulin genes in the roots of host plants. Specific recognition of Nod factors by host plants and early stages of signal transduction are discussed.  相似文献   

14.
Molecular mechanisms of Nod factor diversity   总被引:12,自引:0,他引:12  
The rhizobia–legume symbiosis is highly specific. Major host specificity determinants are the bacterial Nod factor signals that trigger the nodulation programme in a compatible host. Nod factors are lipo-chitooligosaccharides (LCOs) varying in the oligosaccharide chain length, the nature of the fatty acids and substitutions on the oligosaccharide. The nod genotype of rhizobia, which forms the genetic basis for this structural variety, includes a set of nodulation genes encoding the enzymes that synthesize LCOs. Allelic and non-allelic variation in these genes ensures the synthesis of different LCO structures by the different rhizobia. The nod genotypes co-evolved with host plant divergence in contrast to the rhizobia, which followed a different evolution. Horizontal gene transfer probably played an important role during evolution of symbiosis. The nod genotypes are particularly well equipped for horizontal gene transfer because of their location on transmissible plasmids and/or on 'symbiosis islands', which are symbiotic regions associated with movable elements.  相似文献   

15.
In the symbiosis of leguminous plants and Rhizobium bacteria, nodule primordia develop in the root cortex. This can be either in the inner cortex (indeterminate-type of nodulation) or outer cortex (determinate-type of nodulation), depending upon the host plant. We studied and compared early nodulation stages in common bean (Phaseolus vulgaris) and Lotus japonicus, both known as determinate-type nodulation plants. Special attention was paid to the occurrence of cytoplasmic bridges, the influence of rhizobial Nod factors (lipochitin oligosaccharides [LCOs]) on this phenomenon, and sensitivity of the nodulation process to ethylene. Our results show that i) both plant species form initially broad, matrix-rich infection threads; ii) cytoplasmic bridges occur in L. japonicus but not in bean; iii) formation of these bridges is induced by rhizobial LCOs; iv) formation of primordia starts in L. japonicus in the middle root cortex and in bean in the outer root cortex; and v) in the presence of the ethylene-biosynthesis inhibitor aminoethoxyvinylglycine (AVG), nodulation of L. japonicus is stimulated when the roots are grown in the light, which is consistent with the role of cytoplasmic bridges during nodulation of L. japonicus.  相似文献   

16.
17.
Currently, symbiotic rhizobia (sl., rhizobium) refer to the soil bacteria in α- and β-Proteobacteria that can induce root and/or stem nodules on some legumes and a few of nonlegumes. In the nodules, rhizobia convert the inert dinitrogen gas (N2) into ammonia (NH3) and supply them as nitrogen nutrient to the host plant. In general, this symbiotic association presents specificity between rhizobial and leguminous species, and most of the rhizobia use lipochitooligosaccharides, so called Nod factor (NF), for cooperating with their host plant to initiate the formation of nodule primordium and to inhibit the plant immunity. Besides NF, effectors secreted by type III secretion system (T3SS), exopolysaccharides and many microbe-associated molecular patterns in the rhizobia also play important roles in nodulation and immunity response between rhizobia and legumes. However, the promiscuous hosts like Glycine max and Sophora flavescens can nodulate with various rhizobial species harbouring diverse symbiosis genes in different soils, meaning that the nodulation specificity/efficiency might be mainly determined by the host plants and regulated by the soil conditions in a certain cases. Based on previous studies on rhizobial application, we propose a ‘1+n−N’ model to promote the function of symbiotic nitrogen fixation (SNF) in agricultural practice, where ‘1’ refers to appreciate rhizobium; ‘+n’ means the addition of multiple trace elements and PGPR bacteria; and ‘−N’ implies the reduction of chemical nitrogen fertilizer. Finally, open questions in the SNF field are raised to future think deeply and researches.  相似文献   

18.
影响根瘤菌竞争结瘤的生态学因素分析   总被引:7,自引:0,他引:7  
丁武 《生态学杂志》1992,11(4):50-54
根瘤菌的发现并确证其共生固氮作用已逾100年,根瘤菌剂的制备和应用也已超过半个世纪,实践效果有目共睹。如美国对豌豆根瘤菌、三叶草根瘤菌和大豆根瘤菌的应用以及澳大利亚对三叶草根瘤菌的应用都取得显著成绩。我国在豆科作物和豆科绿肥上应用根瘤菌接种措施已有30余年历史,采用筛选的优良菌  相似文献   

19.
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