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1.
酶联免疫吸附技术(ELISA)对大豆根瘤菌的鉴定   总被引:1,自引:0,他引:1  
本文用直接ELISA法检测大豆根瘤菌USDA 110和RTt 50的纯培养菌体和根瘤。确定了该试验的最佳工作条件:酶标结合物HRP—Ab 110和HRP—Ab50的工作稀释度分别为1:3200和1:800,抗体Ab 110和Ab 50的工作稀释度分别为1:3200和1:800,抗原USDA 110和RTt 50的最适工作浓度均为6×10~7细胞/ml。该法能够特异地检测和区别慢生型和快生型大豆根瘤菌。在这两种类型的大豆根瘤菌中,同种内的少数菌株存在交叉反应,通过吸收可以消除,从而使ELISA的检测达到菌株  相似文献   

2.
李俊  葛诚 《微生物学报》1994,34(2):143-147
用热变性温度法和液相复性速率法分别测定了超慢生大豆根瘤菌(ESG,extra-slow-growing soybean rhizobia)DNA G+C mol%及与其它根瘤菌间的DNA同源性.结果表明,ESG的DNA G+C mol含量在59.2—63.5%之间,且不同地区不同血清型的ESG代表菌株DNA同源率在70%以上,说明它们是遗传型一致的类群.ESG与在大豆上结瘤的快生大豆根瘤菌(Rhizobium fredii USDA205)同源率为14.8%,与慢生大豆根瘤菌(Bradyrhizobiumjaponicum)三个DNA同源组的同源率分别为20.5%,30.0%,19.4%.测定结果还表明,ESG与其它根瘤菌遗传学的亲缘关系也很远.  相似文献   

3.
用热变性温度法和液相复性速率法分别测定了超慢生大豆根瘤菌(ESG,extra-slow-growing soybean rhizobia)DNA G+C mol%及与其它根瘤菌间的DNA同源性.结果表明,ESG的DNA G+C mol含量在59.2—63.5%之间,且不同地区不同血清型的ESG代表菌株DNA同源率在70%以上,说明它们是遗传型一致的类群.ESG与在大豆上结瘤的快生大豆根瘤菌(Rhizobium fredii USDA205)同源率为14.8%,与慢生大豆根瘤菌(Bradyrhizobiumjaponicum)三个DNA同源组的同源率分别为20.5%,30.0%,19.4%.测定结果还表明,ESG与其它根瘤菌遗传学的亲缘关系也很远.  相似文献   

4.
用Tn5插入导致的T-1(His Hup Fix)变株为受体,从慢生大豆根瘤菌USDA 110基因文库中钓取His+结合子10株,经捡测,它们都不同程度地恢复了Hup+与Fix+功能,从它们的DNA琼脂糖凝肢电泳图上,可见到都有一个分子量大小各异的pLAFRI::his质粒,其中5株接合子的重组质粒已转入E.Coli HB101中,从它们的质粒电泳图型再显示其分子量各有差异,经 Southern转移之后,分别用hup探针和nif探针进行DNA杂交分析,明确Ecr菌株的质粒能与hup和nif探针杂交,Ec。菌株的质粒能与hup探针杂交,其它三株虽能解除Hup Fix-功能上的缺陷,但其质粒DNA序列上并无与nif或hup序列有同源性的成份  相似文献   

5.
本文研究了5种烈性大豆根瘤菌噬菌体在大豆根瘤菌菌株间的普遍性转导。噬菌体psc和psx能在慢生大豆根瘤USDA110菌株间转导营养缺陷型标记和卡那霉素抗性标记。快生大豆根瘤菌MD3菌株间可通过噬菌体pfm转导营养缺陷标记和卡那霉素抗性标记。噬菌体pfc和pfx可在快生豇豆根瘤菌ANU240及其变种ANU265间转导抗性基因和定位于共生质粒(sym质粒)上的结瘤基因(common nod)。所有转导频率均在10-6~10-7之间。用紫外线处理噬菌体裂解液可以相应提高转导频率。  相似文献   

6.
利用16S rRNA基因RFLP、16S rRNA基因序列分析以及16S-23S rRNA IGS PCR RFLP技术对分离自我国南北大豆产区的慢生大豆根瘤菌进行了群体遗传多样性和系统发育研究。16S rRNA基因PCR RFLP分析以及16S rRNA基因序列分析结果表明:所有供试慢生大豆根瘤菌可分为B.japonicum和B.elkanii两个类群,其中属于B.japonicum的为优势种群,占供试菌株的91%,属于B.elkanii的仅占9%,多样性水平较低。16S-23S rRNA IGS PCRRFLP研究结果表明:属于B.japonicum的慢生根瘤菌具有较丰富的遗传多样性,在69%的相似性水平上可分为群Ⅰ和群Ⅱ两大类群。群I的菌株以分离自黑龙江和河北等北部区域的菌株为代表,群Ⅱ的菌株以分离自广西和江苏等南部地域的菌株为代表,反映出明显的地域特征。两群菌株在系统发育上均与USDA6、USDA110和USDA122等B.japonicum的模式或代表菌株有差异。  相似文献   

7.
耐盐高效大豆根瘤菌株的构建   总被引:5,自引:3,他引:2  
快生型大豆根瘤菌RT19是一株耐盐而固氮能力差的菌株,在含有0.3 mol/L Nacl的YM培养液中生长良好,代时为3.5h,甚至在0.6mol/L NaCl条件下仍可生长。慢生型大豆根瘤菌USDA110对盐敏感,在含有0.1 mol/L Nacl的YM培养液中不生长,但结瘤固氮能力强。  相似文献   

8.
分离纯化了一批我国快生型大豆根癌蘸。测定了它们的固氮酶稀性和寄主专一性,发现相同菌株在不同大豆豆种植株上的结瘤和固氮活性差异甚大。蓑国USDA 191和193似寄主专一性较高,在我们所使用的豆种上结瘤能力很低,固氮活性也不高。对根瘤菌中巨型质粒的数量分布进行了分离分析,表明所有快生型大豆根瘤菌都包含1—3个巨型质粒(分子量范围;30-25Md>。用含有固氮酶结构基因的质粒pSA30作为探针对巨型质粒进行杂交,结果表明即使是快生型大豆根瘤菌,固氮酶结构基因也并不一定定位于巨型质粒上。另外,在若干菌株中发现psA30与二个巨型质粒同时杂交,表明有可能nif HDK或其部分基因的拷贝是分散的。  相似文献   

9.
周路明  宁林夫  岑英华 《遗传》1987,9(5):27-30
大豆与其根瘤菌的共生固氮体系由于分布 广效率高,在农业上的意义很大。能与大豆结 根瘤的细菌有两个属:(1)慢生型大豆根瘤菌 (Bradyrhizobium japonicum),目前用作生产菌 剂的许多优良菌株都是这一属的成员。(2)快 生型大豆根瘤菌(Rhizobi“二f redii ),是1982 年才报道【刀的中国特有资源,具有生长速度快 的优点。大多数快生型菌株对大豆重要的生产 品种结无效瘤,但也已选出能与选育过的大豆 品种结有效根瘤的菌株[71。本文所用的USDA 19116,和马大31'1(以下简称MD  相似文献   

10.
通过三亲本杂交把慢生型大豆根瘤菌USDAllO的基因文库转移至Tn5诱变的不结瘤的快生型大豆根瘤菌321,338中,用链霉素和四环素平板选择大量接合子,接种大豆,通过结瘤基因功能互补,获得7个根瘤,从中分离出的每个菌株都仍具有链霉素和四环素抗性。分离其质粒,发现每个菌株都多了一条较载体质粒pLAFRl分子量大的质粒。将这些质粒转移至大肠杆菌HBl01中,分离其质粒,用32P标记的ncd探针进行DNA—DNA分子杂交,除载体质粒pLAFRl为阴性反应外,其他重组质粒均为阳性反应,即所获得pLAFRl克隆的DNA片段上确有nod结构基因。回收重组质粒pLAFRl::nod,用限制性内切酶EcoR I进行酶切,从其琼脂糖凝胶电泳图上估计pLAFRl上克隆的DNA片段分子量为32kb。  相似文献   

11.
A first visible step in the nodulation of legumes by Rhizobium spp. is the deformation and curling of root hairs. We have identified and cloned DNA sequences encoding this function from two strains of Rhizobium japonicum (USDA 122 and USDA 110) with a weakly homologous probe from Rhizobium meliloti. Root hair curling encoded by the cloned DNA fragments was examined on soybeans (Glycine soja ) after conjugative transfer of these sequences in broad-host-range vectors to various bacterial genera. Pseudomonas putida gave unambiguous expression of the root hair curling genes. This enabled us to identify the 8.7-kilobase EcoRI fragments encoding root hair curling from each strain. The phenotypes encoded by the plasmids pBS1 (derived from strain USDA 122) and pBS2 (derived from strain USDA 110) are distinct and represent a phenotype characteristic of their parent R. japonicum strains. Subclones of pBS1 and pBS2 were generated in single and multicopy vectors, and their expression was analyzed in P. putida. We established that a 4.2-kilobase internal Sa/I fragment of pBS1 and a 3.5-kilobase SstI -EcoRI fragment of pBS2 are sufficient to confer root hair curling on soybeans.  相似文献   

12.
The effects of preexposure of soybean (Glycine max L. Merrill) roots to Rhizobium japonicum strains and subsequent establishment of other strains in the nodules were investigated by using combinations of effective strains (USDA 110 and USDA 138) and effective-ineffective strains (USDA 110 and SM-5). Strain USDA 110 was a better competitor than either USDA 138 or SM-5 on cultivars Lee and Peking. However, when either of the two less-competitive strains was inoculated into 2-day-old seedlings before USDA 110 was, their nodule occupancy increased significantly on both cultivars. With USDA 138 as the primary inoculum and USDA 110 delayed for 6, 48, and 168 h, the incidence of USDA 138 nodules increased on cultivar Peking from 6% (at zero time) to 28, 70, and 82% and on cultivar Lee from 17% (at zero time) to 32, 88, and 95% for the three time delays, respectively. Preexposure of 2-week-old roots of cultivar Lee to USDA 138 had essentially the same effect: the incidence of USDA 138 nodules increased from 23% at zero time to 89 and 97% when USDA 110 was delayed for 24 and 72 h, respectively. When the ineffective strain SM-5 was used as the primary inoculum, followed by USDA 110 72 h later, the percentage of nodules containing SM-5 increased from 7 to 76%. These results indicate that the early events in the nodulation process of soybeans are perhaps the most critical for competition among R. japonicum strains.  相似文献   

13.
14.
To elucidate the phylogenetic relationships between Thai soybean bradyrhizobia and USDA strains of Bradyrhizobium, restriction fragment length polymorphism (RFLP) analysis using the nifDK gene probe and sequencing of the partial 16S rRNA gene were performed. In our previous work, Thai isolates of Bradyrhizobium sp. (Glycine max) were separated clearly from Bradyrhizobium japonicum and Bradyrhizobium elkanii based on the RFLP analysis using the nodDYABC gene probe. RFLP analysis using the nifDK gene probe divided 14 Thai isolates and eight USDA strains of B. japonicum into different groups, respectively, but categorized into the same cluster. All of seven strains within these Thai isolates had the same sequence of the partial 16S rRNA gene, and it was an intermediate sequence between those of B. japonicum USDA 110 and B. elkanii USDA 76T. Furthermore, three USDA strains of B. japonicum, USDA of (B. japonicum ATCC 10324T), USDA 115 and USDA 129, had the same partial 16S rRNA gene sequence that seven Thai isolates had. These results suggest that Thai isolates of Bradyrhizobium sp. (Glycine max) are genetically distinct from USDA strains of B. japonicum and B. elkanii, but also indicate a close relationship between Thai isolates and USDA strains of B. japonicum.  相似文献   

15.
豌豆根瘤菌与新疆中华银瘤菌原生质体的属间隔合研究   总被引:6,自引:0,他引:6  
以青霉素和氯霉素分别作为Rhizobium leguminosoum USDA2370和Sinorhizobium xinjiangnesis CCBAU110)的抗药性标记。利用原生质体融合技术,成功地获得了USDA2370和CCBAU110的属间隔合菌株。该融合菌株可分别在双亲寄主植物上结瘤。融合菌株在细菌形态、大小、菌落特征及蛋白质电泳图谱上与亲本菌株均有所不同。融合菌株与USDA23703的DNA同源性为56.6%,而与CCBAU110的DNA同源性为10.2%。  相似文献   

16.
Southern hybridization with nif (nitrogen fixation) and nod (nodulation) DNA probes from Rhizobium meliloti against intact plasmid DNA of Rhizobium japonicum and Bradyrhizobium japonicum strains indicated that both nif and nod sequences are on plasmid DNA in most R. japonicum strains. An exception is found with R. japonicum strain USDA194 and all B. japonicum strains where nif and nod sequences are on the chromosome. In R. japonicum strains, with the exception of strain USDA205, both nif and nod sequences are on the same plasmid. In strain USDA205, the nif genes are on a 112-megadalton plasmid, and nod genes are on a 195-megadalton plasmid. Hybridization to EcoRI digests of total DNA to nif and nod probes from R. meliloti show that the nif and nod sequences are conserved in both R. japonicum and B. japonicum strains regardless of the plasmid or chromosomal location of these genes. In addition, nif DNA hybridization patterns were identical among all R. japonicum strains and with most of the B. japonicum strains examined. Similarly, many of the bands that hybridize to the nodulation probe isolated from R. meliloti were found to be common among R. japonicum strains. Under reduced hybridization stringency conditions, strong conservation of nodulation sequences was observed in strains of B. japonicum. We have also found that the plasmid pRjaUSDA193, which possess nif and nod sequences, does not possess sequence homology with any plasmid of USDA194, but is homologous to parts of the chromosome of USDA194. Strain USDA194 is unique, since nif and nod sequences are present on the chromosome instead of on a plasmid as observed with all other strains examined.  相似文献   

17.
The effect of several biotic and abiotic factors on the pattern of competition between two strains of Rhizobium japonicum was examined. In two Minnesota soils, Waseca and Waukegan, strain USDA 123 occupied 69% (Waseca) and 24% (Waukegan) of the root nodules on Glycine max L. Merrill cv. Chippewa. USDA 110 occupied 2% of the root nodules in the Waseca soil and 12% of the nodules in the Waukegan soil. Under a variety of other growth conditions—vermiculite, vermiculite amended with Waseca soil, and two Hawaiian soils devoid of naturalized Rhizobium japonicum strains—USDA 110 was more competitive than USDA 123. The addition of nitrate to or the presence of antibiotic-producing actinomycetes in the rhizosphere of soybeans did not affect the pattern of competition between the two strains. However, preexposure of young seedings to USDA 110 or USDA 123 before transplantation into soil altered the pattern of competition between the two strains significantly. In the Waseca soil, preexposure of cv. Chippewa to USDA 110 for 72 h increased the percentage of nodules occupied by USDA 110 from 2 to 55%. Similarly, in the Hawaiian soil Waimea, nodule occupancy by USDA 123 increased from 7 to 33% after a 72-h preexposure.  相似文献   

18.
Several soybean plant introduction (PI) genotypes have recently been described which restrict nodulation of Bradyrhizobium japonicum serocluster 123 in an apparently serogroup-specific manner. While PI 371607 restricts nodulation of strains in serogroup 123 and some in serogroup 127, those in serogroup 129 are not restricted. When DNA regions within and around the B. japonicum I-110 common nodulation genes were used as probes to genomic DNA from the serogroup strains USDA 123, USDA 127, and USDA 129, several of the probes differentially hybridized to the nodulation-restricted and -unrestricted strains. One of the gene regions, cloned in plasmid pMJS12, was subsequently shown to hybridize to 4.6-kilobase EcoRI fragments from DNAs from nodulation-restricted strains and to larger fragments in nodulation-unrestricted strains. To determine if the different hybridization patterns could be used to predict nodulation restriction, we hybridized pMJS12 to EcoRI-digested genomic DNAs from uncharacterized serocluster 123 field isolates. Of the 36 strains examined, 15 were found to have single, major, 4.6-kilobase hybridizing EcoRI fragments. When tested for nodulation, 80% (12 of 15) of the strains were correctly predicted to be restricted for nodulation of the PI genotypes. In addition, hybridization patterns obtained with pMJS12 and nodulation phenotypes on PI 371607 indicated that there are at least three types of serogroup 127 strains. Our results suggest that the pMJS12 gene probe may be useful in selecting compatible host-strain combinations and in determining the suitability of field sites for the placement of soybean genotypes containing restrictive nodulation alleles.  相似文献   

19.
We previously reported the identification of a soybean plant introduction (PI) genotype, PI 417566, which restricts nodulation by Bradyrhizobium japonicum MN1-1c (USDA 430), strains in serogroup 129, and USDA 110 (P. B. Cregan, H. H. Keyser, and M. J. Sadowsky, Appl. Environ. Microbiol. 55:2532-2536, 1989, and Crop Sci. 29:307-312, 1989). In this study, we further characterized nodulation restriction by PI 417566. Twenty-four serogroup 110 isolates were tested for restricted nodulation on PI 417566. Of the 24 strains examined, 62.5% were restricted in nodulation by the PI genotype. The remainder of the serogroup 110 strains tested (37.5%), however, formed significant numbers of nodules on PI 417566, suggesting that host-controlled restriction of nodulation by members of serogroup 110 is strain dependent. Analysis of allelic variation at seven enzyme-encoding loci by multilocus enzyme electrophoresis indicated that the serogroup 110 isolates can be divided into two major groups. The majority of serogroup 110 isolates which nodulated PI 417566 belonged to the same multilocus enzyme electrophoresis group. B. japonicum USDA 110 and USDA 123 were used as coinoculants in competition-for-nodulation studies using PI 417566. Over 98% of the nodules formed on PI 417566 contained USDA 123, whereas less than 2% contained USDA 110. We also report the isolation of a Tn5 mutant of USDA 110 which has overcome nodulation restriction conditioned by PI 417566. This mutant, D4.2-5, contained a single Tn5 insertion and nodulated PI 417566 to an extent equal to that seen with the unrestricted strain USDA 123. The host range of D4.2-5 on soybean plants and other legumes was unchanged relative to that of USDA 110, except that the mutant nodulated Glycine max cv. Hill more efficiently. While strain USDA 110 has the ability to block nodulation by D4.2-5 on PI 417566, the nodulation-blocking phenomenon was not seen unless strain USDA 110 was inoculated at a 100-fold greater concentration than the mutant strain.  相似文献   

20.
Nodulation, acetylene reduction activity, dry matter accumulation, and total nitrogen accumulation by nodulated plants growing in a nitrogen-free culture system were used to compare the symbiotic effectiveness of the fast-growing Rhizobium fredii USDA 191 with that of the slow-growing Bradyrhizobium japonicum USDA 110 in symbiosis with five soybean (Glycine max (L.) Merr.) cultivars. Measurement of the amount of nitrogen accumulated during a 20-day period of vegetative growth (28 to 48 days after transplanting) showed that USDA 110 fixed 3.7, 39.1, 4.6, and 57.3 times more N2 than did USDA 191 with cultivars Pickett 71, Harosoy 63, Lee, and Ransom as host plants, respectively. With the unimproved Peking cultivar as the host plant, USDA 191 fixed 3.3 times more N2 than did the USDA 110 during the 20-day period. The superior N2 fixation capability of USDA 110 with the four North American cultivars as hosts resulted primarily from higher nitrogenase activity per unit nodule mass (specific acetylene reduction activity) and higher nodule mass per plant. The higher N2-fixation capability of USDA 191 with the Peking cultivar as host resulted primarily from higher nodule mass per plant, which was associated with higher nodule numbers. There was significant variation in the N2-fixation capabilities of the four North American cultivar-USDA 191 symbioses. Pickett 71 and Lee cultivars fixed significantly more N2 in symbiosis with USDA 191 than did the Harosoy 63 and Ransom cultivars. This quantitative variation in N2-fixation capability suggests that the total incompatibility (effectiveness of nodulation and efficiency of N2 fixation) of host soybean plants and R. fredii strains is regulated by more than one host plant gene. These results indicate that it would not be prudent to introduce R. fredii strains into North American agricultural systems until more efficient N2-fixing symbioses between North American cultivars and these fast-growing strains can be developed. When inoculum containing equal numbers of USDA 191 and of strain USDA 110 was applied to the unimproved Peking cultivar in Perlite pot culture, 85% of the 160 nodules tested were occupied by USDA 191. With Lee and Ransom cultivars, 99 and 85% of 140 and 96 nodules tested, respectively, were occupied by USDA 110.  相似文献   

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