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1.
普通小麦-纤毛鹅观草染色体异附加系的分子标记鉴定   总被引:1,自引:0,他引:1  
孔令娜  李巧  王海燕  曹爱忠  陈佩度  王秀娥 《遗传》2008,30(10):1356-1362
随机选取定位于小麦和大麦7个部分同源群上的135对EST、27对STS和253对SSR引物对24个可能的普通小麦-纤毛鹅观草二体异附加系的基因组DNA进行扩增。结果表明, 55对引物在亲本普通小麦中国春、Inayama Komugi、纤毛鹅观草和Inayama Komugi-纤毛鹅观草双二倍体间有多态性扩增, 其中31对引物可以在异附加系中扩增到纤毛鹅观草特异条带。根据PCR扩增结果, 异附加系07K02、07K06、07K39、07K201、07K202、07K255和07K256所添加的纤毛鹅观草染色体归属小麦第1部分同源群; 07K07、07K08、07K09、07K11、07K14和07K17所添加的纤毛鹅观草染色体归属小麦第2部分同源群; 07K15、07K16、07K21和07K47所添加的纤毛鹅观草染色体归属小麦第6部分同源群。  相似文献   

2.
鹅观草(Roegneria kamoji,2n=42,SSHHYY)是小麦异源六倍体野生近缘种,对小麦赤霉病具有良好抗性,是改良小麦赤霉病抗性的重要遗传资源。通过远缘杂交,将鹅观草第一部分同源群染色体上的抗赤霉病基因Fhb6导入普通小麦。由于第一部分同源群染色体包含1S、1H和1Y三条染色体,为研究这些同源染色体对小麦赤霉病抗性的影响,筛选出4个鹅观草第一部分同源群染色体特异分子标记,通过PCR扩增鹅观草属不同野生种的基因组DNA,明确了抗赤霉病Fhb6基因位于鹅观草1Y#1染色体。进一步利用分子细胞遗传学技术从中国春与鹅观草的后代中选育出5份涉及鹅观草1Y#2和1S#2染色体的渗入系材料。其中:21RK?1为二体异代换系DS1Y#2(1A),21RK?2为二体异代换系DS1S#2(1D),21RK?3为二体异附加系DA1S#2,21RK?4为1S#2和TW·1S#2S的双单体附加系,21RK?5为纯合TW·1S#2S易位系。这些新种质为小麦抗赤霉病基因的发掘及遗传改良奠定了基础。  相似文献   

3.
用普通小麦-纤毛鹅观草双倍体与普通小麦中国春连续回交两次,然后连续自交,通过形态观察、根尖细胞染色体计数、花粉母细胞减数分裂中期I染色体配对分析及染色体C-分带,在BC2F2和BC2F3群体中,分别筛选到一个端二体异附加系94K227和一个二体异附加系94K280,其中C-分带显示94K227添加的是纤毛鹅观草染色体B的一对长臂,94K280添加的是纤毛鹅观草的一对染色体D。  相似文献   

4.
应用在小麦品种烟农15与中间偃麦草杂交的五个世代群体中直接筛选2n=22Ⅱ植株的方法,获得11个双体异附加株,分别命名为DAL1、DAL2、……、DAL11。双体异附加株的细胞学稳定性较强,外源染色体传递频率高。形态学和细胞学鉴定结果表明:DAL1、3、5、6、8、9、10、11等8个异附加系中附加的可能是中间偃麦草第2部分同源群的染色体。 其中,DAL5、9、10、11是同一种异附加系,DAL6和DAL8为同一种异附加系,DAL3可能与之相同;DAL1与上述7个异附加系均不同。DAL2和DAL4可能分别附加了中间偃麦草第5部分同源群的1对染色体,但二者在形态上存在差异。DAL7可能附加了中间偃麦草第7部分同源群的1对染色体。旗叶卷曲是异附加系DAL、3、5、6、8、9、10、11共有的形态标记。11个异附加系可作为进一步研究和转移中间偃麦草有益基因的良好中间材料。  相似文献   

5.
利用AABBDDDD八倍体培育小麦-簇毛麦二体附加系的研究   总被引:1,自引:0,他引:1  
对普通小麦(Triticumaestivum)-节节麦(Aegilopssquarrosa)八倍体(2n=8x=56,AABBDDDD)与硬粒小麦(Triticumdurum)-簇毛麦(Haynaldiavillosa)六倍体(2n=6x=42,AABBVV)杂交后,将所得七倍体杂种(AABBDDV)进行连续自交,在F4代中利用C-分带鉴定出可能的簇毛麦6V二体附加系95-7和2V二体附加系26-7,其花粉母细胞染色体在减数分裂中期I的配对构型分别为0.14I+20.42+1.5和0.10I+20.07+1.82;进一步将95-7和26-7的基因组DNA用EcoRI酶切,分别用小麦族第6部分同源群短臂探针Psr113和第2部分同源群长臂探针BCD240进行Southern杂交,结果显示具有簇毛麦的特异杂交带,进一步确证了95-7和26-7分别是普通小麦-簇毛麦6V和2V二体附加系。  相似文献   

6.
为转移与利用百萨偃麦草耐盐、抗病等优良基因,用普通小麦中国春-百萨偃麦草双倍体与中国春杂交,通过染色体C-分带、分子原位杂交并结合减数分裂中期I的染色体配对分析,从回交后代中选育出一套小麦-百萨偃麦草二体异附加系。对这套异附加系进行的鉴定与分析表明,各附加系除添加了一对百萨偃麦草染色体外,小麦的21对染色体未见明显变化。各附加系所添加的百萨偃麦草染色体在减数分裂中期I配对基本正常,仅有少量单价体,其自交后代中外源染色体亦能正常传递。这说明所培育的这套二体异附加系在细胞学上已相对稳定,暂分别编号为DAJ1、DAJ2、DAJ3、DAJ4、DAJ5、DAJ6和DAJ7。各异附加系中百萨偃麦草染色体在小麦族中的部分同源群归属和百萨偃麦草耐盐抗病基因在染色体上的定位研究正在进行之中。  相似文献   

7.
小麦-中间偃麦草双体异附加系的鉴定   总被引:12,自引:1,他引:11  
利用形态学、细胞学、A-PADE和RAPD方法,对5个小麦-中间偃麦草(Thinopyrum intermedium)双体异附加系Line 1、Line 4、Line 10、Line 14和Line 15进行了鉴定。细胞学鉴定结果表明,它们根尖细胞染色体数目为2n=44,花粉母细胞减数分裂中期Ⅰ(PMCMⅠ)染色体构型为2n=22 Ⅱ,具有高度的细胞学稳定性;形态学鉴定和A-PADE电泳分析证明,Line 1和Line 15可能附加了中间偃麦草第7部分同源群的染色体,Line 10和Line 14可能附加了中间偃麦草第1部分同源群的染色体,Line4则可能同时存在多种染色体变异;RAPD分析表明,在供试的100个随机引物中,有5个引物S21、S29、S57、S121和S152能够在亲本中间偃麦草和双体异附加系中稳定扩增出特异带型,并可作为异附加系所附加染色体的特异RAPD标记。  相似文献   

8.
王秀娥  陈佩度 《遗传学报》1997,24(2):137-140
用普通小麦-纤毛鹅观草双倍体与普通小麦中国春连续回交两次,然后连续自交,通过形态观察、根细胞染色体计数,花粉母细胞减数分裂中期I染色体配对分析及染色体C-分型,在BC2F2和BC2F3群体中,分别筛选到一个端二体异附加系94K227和一个二体异附加系94K280,其中C-分带显示94227添加的是纤毛鹅鸡草染色体B的一对长壁94K280添加的是纤毛鹅观草的一对染色体D。  相似文献   

9.
筛选利用小麦微卫星标记追踪簇毛麦各条染色体   总被引:11,自引:0,他引:11  
张伟  高安礼  周波  陈佩度 《遗传学报》2006,33(3):236-243
选用定位于普通小麦7个部分同源群上的276对微卫星引物对普通小麦中同春和簇毛麦的基因组DNA进行扩增分析,有148对引物可在两个物种间检测到多态性。利用上述显示多态性的引物进一步对7个中国春-簇毛麦二体附加系进行扩增分析,筛选出分别可用来追踪簇毛麦1V至7V染色体的引物wmc49(1BS)、wmc25(2BS)、gdm36(3DS)、gdml45(4AL)、wmc233(5DS)、wmc256(6AL)和gwm344(7BL)。此外还发现6DS上的微卫星引物gwm469可以用来追踪簇毛麦的2V染色体;2DS上的微卫星引物gdm107可用来追踪簇毛麦的6V染色体。进一步用涉及不同簇毛麦和小麦背景的小麦一簇毛麦染色体附加系、代换系和易位系进行扩增分析,这些微卫星标记也可用来鉴定簇毛麦的各条染色体。因此,这然簇毛麦染色体特异的微卫星标记可用来追踪普通小麦背景中的簇毛麦染色体。  相似文献   

10.
抗条锈病小麦—中间偃麦草异附加系的生化与分子标记   总被引:10,自引:2,他引:10  
对小麦-中间偃麦草部分双二倍体无芒中4、异附加系C076、宛7107和中国春进行了肽链内切酶(EP-1)等电聚焦电泳。结果表明,肽链内切酶在阳极处有一特异带。肽链内切酶已定位于小麦第7部分同源群,故附加的染色体为第7部分同源群的2条染色体,对中间偃麦草,无芒中4、C076和宛7107进行了RAPD分析。获得了可用于检测C076中外源染色体的3个RAPD标记,即OPI05-800、OPI10-600、OPK01-900。  相似文献   

11.
Genomic in situhybridization (GISH) to root-tip cells at mitotic metaphase, using genomic DNA probes from Thinopyrum intermedium and Pseudoroegneria strigosa, was used to examine the genomic constitution of Th. intermedium, the 56-chromosome partial amphiploid to wheat called Zhong 5 and disease-resistant derivatives of Zhong 5, in a wheat background. Evidence from GISH indicated that Th. intermedium contained seven pairs of St, seven JS and 21 J chromosomes; three pairs of Th. intermedium chromosomes with satellites in their short arms belonging to the St, J, J genomes and homoeologous groups 1, 1, and 5 respectively. GISH results using different materials and different probes showed that seven pairs of added Th. intermedium chromosomes in Zhong 5 included three pairs of St chromosomes, two pairs of JS chromosomes and two pairs of St-JS reciprocal tanslocation chromosomes. A pair of chromosomes, which substituted a pair of wheat chromosomes in Yi 4212 and in HG 295 and was added to 21 pairs of wheat chromosomes in the disomic additions Z1, Z2 and Z6, conferred BYDV-resistance and was identical to a pair of St-JS tanslocation chromosomes (StJS) in Zhong 5. The StJS chromosome had a special GISH signal pattern and could be easily distinguished from other added chromosomes in Zhong 5; it has not yet been possible to locate the BYDV-resistant gene(s) of this translocated chromosome either in the St chromosome portion belonging to homoeologous group 2 or in the JS chromosome portion whose homoeologous group relationship is still uncertain. Among 22 chromosome pairs in disomic addition line Z3, the added chromosome pair had satellites and belonged to the St genome and homoeologous group 1. Disomic addition line Z4 carried a pair of added chromosomes which was composed of a group-7 JS chromosome translocated with a wheat chromosome; this chromosome was different to 7 Ai-1, but was identical to 7 Ai-2. The leaf rust and stem rust resistance genes were located in the distal region of the long arm, whereas the stripe rust resistance gene(s) was located in the short arm or in the proximal region of the long arm of 7 Ai-2. A pair of JS-wheat translocation chromosomes, which originated from the WJS chromosomes in Z4, was added to the disomic addition line Z5; the added chromosomes of Z5 carried leaf and stem rust resistance but not stripe rust resistance; Z5 is a potentially useful source for rust resistance genes in wheat breeding and for cloning these novel rust-resistant genes. GISH analysis using the St genome as a probe has proved advantageous in identifying alien Th. intermedium in wheat. Received: 17 May 1999 / Accepted: 22 June 1999  相似文献   

12.
Barley yellow dwarf is the most damaging virus-caused disease in bread wheat (Triticum aestivum L.). A resistant line, SW335.1.2-13-11-1-5 (2n = 47), derived from a cross of T. aestivum x Lophopyrum ponticum was characterized by meiotic chromosome pairing, by in situ DNA hybridization and by expression of molecular markers to determine its chromosome constitution. All progeny of this line had three pairs of L. ponticum chromosomes from homoeologous chromosome groups 3, 5, and 6 and the 2n = 47 progeny had an additional L. ponticum monosome. The pairs from groups 3 and 6 were in the added state, while the group 5 pair was substituted for wheat chromosome 5D. Several wheat-wheat translocations with respect to the parental wheat genotype occurred in this line, presumably owing to the promotion of homoeologous chromosome pairing by L. ponticum chromosomes. It was hypothesized that homoeologous recombination results in homoeologous duplication-deletions in wheat chromosomes. An aberrant 3:1 disjunction creates the potential at each meiosis for replacement of these wheat chromosomes by homoeologous L. ponticum chromosomes. Wheat chromosomes 3A and 6A appeared to be in intermediate stages of this substitution process.  相似文献   

13.

Key message

A cytogenetic map of wheat was constructed using FISH with cDNA probes. FISH markers detected homoeology and chromosomal rearrangements of wild relatives, an important source of genes for wheat improvement.

Abstract

To transfer agronomically important genes from wild relatives to bread wheat (Triticum aestivum L., 2n = 6x = 42, AABBDD) by induced homoeologous recombination, it is important to know the chromosomal relationships of the species involved. Fluorescence in situ hybridization (FISH) can be used to study chromosome structure. The genomes of allohexaploid bread wheat and other species from the Triticeae tribe are colinear to some extent, i.e., composed of homoeoloci at similar positions along the chromosomes, and with genic regions being highly conserved. To develop cytogenetic markers specific for genic regions of wheat homoeologs, we selected more than 60 full-length wheat cDNAs using BLAST against mapped expressed sequence tags and used them as FISH probes. Most probes produced signals on all three homoeologous chromosomes at the expected positions. We developed a wheat physical map with several cDNA markers located on each of the 14 homoeologous chromosome arms. The FISH markers confirmed chromosome rearrangements within wheat genomes and were successfully used to study chromosome structure and homoeology in wild Triticeae species. FISH analysis detected 1U-6U chromosome translocation in the genome of Aegilops umbellulata, showed colinearity between chromosome A of Ae. caudata and group-1 wheat chromosomes, and between chromosome arm 7S#3L of Thinopyrum intermedium and the long arm of the group-7 wheat chromosomes.  相似文献   

14.
The relationships of three wheat-Aegilops longissima chromosome addition lines A, C, and D with homoeologous wheat chromosomes were studied in PMC meiosis. Substitutions of alien chromosome A for wheat chromosome 6 B, chromosome C for 1 B and chromosome D for 4 B were obtained. The production of 4 BS/C and 7 BS/D chromosome translocations indicated cytogenetic relationships of C partially to homoeologous wheat chromosomes of group 1 and 4, and D partially to homoeologous wheat chromosomes of group 4 and 7.  相似文献   

15.
16.
Summary Using in situ hybridization techniques, we have been able to identify the translocated chromosomes resulting from whole arm interchanges between homoeologous chromosomes of wheat and rye. This was possible because radioactive probes are available which recognize specific sites of highly repeated sequence DNA in either rye or wheat chromosomes. The translocated chromosomes analysed in detail were found in plants from a breeding programme designed to substitute chromosome 2R of rye into commercial wheat cultivars. The distribution of rye highly repeated DNA sequences showed modified chromosomes in which (a) most of the telomeric heterochromatin of the short arm and (b) all of the telomeric heterochromatin of the long arm, had disappeared. Subsequent analyses of these chromosomes assaying for wheat highly repeated DNA sequences showed that in type (a), the entire short arm of 2R had been replaced by the short arm of wheat chromosome 2B and in (b), the long arm of 2R had been replaced by the long arm of 2B. The use of these probes has also allowed us to show that rye heterochromatin has little effect on the pairing of the translocated wheat arm to its wheat homologue during meiosis. We have also characterized the chromosomes resulting from a 1B-1R translocation event.From these results, we suggest that the observed loss of telomeric heterochromatin from rye chromosomes in wheat is commonly due to wheat-rye chromosome translocations.  相似文献   

17.
45S rDNA在小麦及其近缘物种染色体上的分布   总被引:5,自引:0,他引:5  
徐川梅  别同德  王春梅  周波  陈佩度 《遗传》2007,29(9):1126-1130
将染色体C-分带和原位杂交技术相结合,系统研究了45S rDNA在栽培一粒小麦、野生二粒小麦、普通小麦、大麦、簇毛麦、硬簇麦、六倍体燕麦及鹅观草等物种染色体上的分布情况。这些物种染色体的次缢痕区都有45S rDNA位点, 某些非随体染色体上也有45S rDNA位点分布。以小麦—鹅观草1Rk#1二体附加系为材料,通过顺序C分带-FISH技术首次将一个45S rDNA定位到1Rk#1染色体短臂末端。  相似文献   

18.
A collection of 19 wheat (Triticum aestivum) probes, detecting sequences in the seven homoeologous groups of chromosomes, were hybridized to DNA from the 'Kanota' series of oat monosomic lines (Avena byzantina) to investigate their use for identifying groups of homoeologous oat chromosomes. Three probes from homoeologous group 1 of wheat, psr161, psr162, and psr121, mapped among the set of oat chromosomes 1C, 14, and 17. One homoeologous group 6 probe, psr167, mapped to oat chromosomes 1C and 17. Two oat probes that had previously been shown to map to oat chromosomes 1C, 14, and 17 were then hybridized to DNA from the 'Chinese Spring' wheat ditelosomics. They localized to homoeologous group 1 wheat chromosomes, one to the short arm and one to the long arm. These results reveal that in hexaploid oat there is a group of three chromosomes that correspond at least in part to homoeologous group 1 of wheat. The remaining wheat probes identifying other wheat homoeologous sets did not detect a complete series of homoeologous chromosomes in oat. This was presumably due to the incomplete status of the 'Kanota' monosomic series, chromosomal rearrangement in Avena, weak hybridization signals owing to low probe-target sequence homology, and (or) detection of only two hybridization bands by the wheat probe.  相似文献   

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