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原亚萍  胡汉桥 《遗传学报》2000,27(12):1080-1083,T003
用生物素(Biotin-16-dUTP)标记的大麦Betzes基因组DNA作探针,以普通小麦中国春总DNA作封阻进行基因组原位杂交(Genome in siru hybridization,简称GISH),从13株小麦-大麦杂交后代中鉴定出2个含有3条大麦Betzes2H染色体的材料(2n=43);2个2H单体异代换系(2n=42);7个2H二体异代换系(2n=42)。用已定位有小麦第2部分同源群  相似文献   

4.
重复DNA沿染色体的分布是认识植物基因组的组织和进化的要素之一。本研究采用一种改良的基因组原位杂交程序,对基因组大小和重复DNA数量不同的6种植物进行了自身基因组原位杂交(self-genomic in situ hybridization,self-GISH)。在所有供试物种的染色体都观察到荧光标记探针DNA的不均匀分布。杂交信号图型在物种间有明显的差异,并与基因组的大小相关。小基因组拟南芥的染色体几乎只有近着丝粒区和核仁组织区被标记。基因组相对较小的水稻、高粱、甘蓝的杂交信号分散分布在染色体的全长,但在近着丝粒区或近端区以及某些异染色质臂的分布明显占优势。大基因组的玉米和大麦的所有染色体都被密集地标记,并在染色体全长显示出强标记区与弱标记或不标记区的交替排列。此外,甘蓝染色体的所有近着丝粒区和核仁组织区、大麦染色体的所有近着丝粒区和某些臂中间区还显示了增强的信号带。大麦增强的信号带带型与其N-带带型一致。水稻自身基因组原位杂交图型与水稻Cot-1DNA在水稻染色体上的荧光原位杂交图型基本一致。研究结果表明,自身基因组原位杂交信号实际上反映了基因组重复DNA序列对染色体的杂交,因而自身基因组原位杂交技术是显示植物基因组中重复DNA聚集区在染色体上的分布以及与重复DNA相关联的染色质分化的有效方法。  相似文献   

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小麦及其近缘种中基因组特异性DNA重复序列的研究进展   总被引:7,自引:1,他引:6  
白建荣  贾旭  王道文 《遗传》2002,24(5):595-600
本文对小麦族植物中基因组特异性DNA重复序列的分类、基本特征、分离和鉴定方法、在小麦遗传改良中的应用以及未来研究的发展趋势进行了简述。综合已有的研究结果可以看出基因组特异性DNA重复序列是小麦族植物基因组特异性形成的重要构成部分。对基因组特异性DNA重复序列的研究是认识小麦族植物基因组的有效途径之一,基因组特异性DNA重复序列的应用将进一步促进小麦族植物分子细胞遗传学和普通小麦遗传改良研究的进展。 Advances in Studies of Genome-Specific Repetitive DNA Sequences in Wheat and Related Species BAI Jian-rong1,2,JIA Xu1,WANG Dao-wen1 1.The State Key Laboratory of Plant Cell and Chromosome Engineering,Institute of Genetics and Developmental Biology,The Chinese Academy of Sciences,Beijing 100101,China; 2.Crop Genetics Institute,Shanxi Academy of Agricultural Sciences,Taiyuan 030031,China Abstract:In this paper we review recent advances in studies of several aspects of genome specific repetitive DNA sequences in wheat and related species.The available results demonstrate that genome specific repetitive DNA sequences are important components of genome specificity in wheat and related species.Research on genome specific repetitive DNA sequences is essential to the elucidation of genome function.The application of genome specific repetitive DNA sequences will aid molecular cytogenetic studies in wheat and related species and contributes to genetic improvement of common wheat. Key words:wheat;genome specific repetitive DNA sequence;chromosome  相似文献   

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采用生物素标记的拟南芥基因组DNA探针在75%杂交严谨度下对双子叶植物番茄、蚕豆和单子叶植物水稻、玉米、大麦的染色体进行了比较基因组荧光原位杂交(comparative genomic in situ hybridization,cGISH)分析,以揭示拟南芥与远缘植物基因组间的同源性.cGISH信号代表了拟南芥基因组DNA中的重复DNA与靶物种染色体上同源序列的杂交.探针DNA在所有靶物种的全部染色体上都产生了杂交信号.杂交信号为散在分布,并呈现随基因组增大,杂交信号增多,且分布更加分散的趋势.所有靶物种的核仁组织区(NOR)都显示了明显强于其他区域的杂交信号,表明拟南芥基因组DNA探针可用于植物NOR的物理定位.在所有的靶物种中,信号主要分布在染色体的臂中间区和末端,着丝粒或近着丝粒区有少数信号分布.大麦染色体显示了与C-和N-带不同的独特的cGISH信号带型,表明此探针可用于不同植物染色体的识别.这些结果表明,拟南芥基因组与远缘植物基因组之间,除rDNA和端粒重复序列外,还存在其它同源的重复DNA;一些重复DNA序列在被子植物分歧进化为单子叶和双子叶植物之前就已存在,虽经历了长期的进化过程,至今在远缘物种之间仍保持了较高的同源性.结果还提示,大基因组中古老而保守的重复DNA在进化过程中发生了明显的扩增.  相似文献   

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应用基因组原位杂交鉴定蓝粒小麦及其诱变后代   总被引:9,自引:0,他引:9  
杨国华  李滨  刘建中  英加  穆素梅  周汉平  李振声 《遗传学报》2002,29(3):255-259,T001
应用基因组原位杂交技术(GISH)对普通小麦(Triticum aestivumL.)和长穗偃麦草[Agropyron elongatum(Host)Beauv,2n=10x=70]杂交后选育出的蓝粒小麦蓝-58及其诱变后代的染色体组成进行了鉴定。结果表明,GISH可方便地检测到小麦遗传背景中的长穗偃麦草染色体或易位的片段。如前人报道,蓝-58(2n=42)是一个具有2条长穗偃麦草4E染色体的异代换系(4E/4D)。LW004可能是一个具有两对相互易位染色体的纯合系,其田间表现磷高效特性,LW43-3-4为41条染色体的蓝单体(40W 1’4E),种子颜色为浅蓝色,通过此法还检测出一些染色体结构发生很大变异的材料如4E的单端体(40W 1‘4E),种子颜色为浅蓝色,通过此法还检测出一些染色结构发生很大变异的材料如4E的单端体(40W 1‘t4E)以及组型为39W 1‘4E 1‘t4E的个体,此项研究结果更为直观地表明控制蓝粒体状的基因的确在来自长穗偃麦草的染色体上。同时说明有效的突变方法与灵活方便的检测手段的有机结合在染色体工程材料的创制和染色体工程育种中起着至关重要的作用。  相似文献   

8.
应用基因组原位杂交及RFLP标记鉴定小麦中的大麦染色体   总被引:8,自引:2,他引:8  
用生物素(Biotin-6-dUTP)标记的大麦Betzes基因组DNA作探针,以普通小麦中国春总DNA作封阻进行基因组原位杂交(Genomeinsituhybridization,简称GISH),从13株小麦-大麦杂交后代中鉴定出2个含有3条大麦Betzes2H染色体的材料(2n=43);2个2H单体异代换系(2n=42);7个2H二体异代换系(2n=42)。用已定位在小麦第2部分同源群短臂上的探针psr131进行RFLP分析,结果表明大麦Betzes、代换系A5有1条区别于小麦中国春的特异带,A  相似文献   

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大肠杆菌不同菌株基因组DNA的多态性分析   总被引:1,自引:0,他引:1       下载免费PDF全文
从大肠杆菌K12菌株JM109基因组克隆了两段DNA重复序列,长度为0.9和0.6kb,分别命名为ECR-1和ECR-6。以ECR-1和ECR-6重复序列作DNA多态性分析的探针,可以鉴别大肠杆菌非常相近的菌株。表明ECR-1和ECR-6 DNA序列可用于大肠杆菌菌株的分类、流行病学和微生态学研究以及大肠杆菌各种致病菌株的临床诊断。  相似文献   

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用原位杂交技术检测小麦异源染色质及定位核糖体DNA   总被引:8,自引:0,他引:8  
  相似文献   

11.
Common wheat ( Triticum aestivum L.) is an allohexaploid, consisting of three different genomes (Au, B and D ) which are genetically closely related. Genomic DNA of the three possible genome donors, T. urartu Thum., Aegilops speltoides Tausch and Ae. tauschii Coss.,were employed as probes to hybridize with the diploid genomic DNA digested by Eco RⅠand Hin dⅢ respectively. Both the hybridization strength and band patterns among the genomes would be good indicators of genome relationships. Combining distr ibution data of some repetitive DNA sequences cloned from T. urartu in the three genomes, the authors draw a conclusion that Au and D are more closely related to each other than either one to the B genome. Genomic in situ hybridization (GISH) of T. aestivum cv. Chinese Spring with genomic DNA probes of the three diploid progenitors respectively indicated that the three genomes could be discriminated clearly via GISH. The signals on the chromosomes of Au and D genomes were even. However, when Ae. speltoides DNA was used as probe, there were very strong cross hybridization and the signals condensed on some areas of the metaphasic chromosomes. In the interphase nucleus, the chromatin of B genome dispersed on the same region and the signals on the homologous chromosomes distributed symmetrically. Rich repetitive DNA sequences in B genome, especially the tandem repetitives, perhaps take an important role for the formation of the special hybridization pattern. The main difference between B and the other two genomes probably is in the repetitive DNA sequences.  相似文献   

12.
双探针原位杂交揭示稻属BB、cc 和EE基因组之间的分化 李常宝1 张大明1* 葛颂1 卢宝荣2 洪德元1  相似文献   

13.
The St and E are two important basic genomes in the perennial tribe Triticeae (Poaceae). They exist in many perennial species and are very closely related to the A, B and D genomes of bread wheat (Triticum aestivum L.). Genomic Southern hybridization and genomic in situ hybridization (GISH) were used to analyze the genomic relationships between the two genomes (St and E) and the three basic genomes (A, B and D) of T. aestivum. The semi-quantitative analysis of the Southern hybridization suggested that both St and E genomes are most closely related to the D genome, then the A genome, and relatively distant to the B genome. GISH analysis using St and E genomic DNA as probes further confirmed the conclusion. St and E are the two basic genomes of Thinopyrum ponticum (StStE^eE^bE^x) and Th. intermedium (StE^eE^b), two perennial species successfully used in wheat improvement. Therefore, this paper provides a possible answer as to why most of the spontaneous wheat-Thinopyrum translocations and substitutions usually happen in the D genome, some in the A genome and rarely in the B genome. This would develop further use of alien species for wheat improvement, especially those containing St or E in their genome components.  相似文献   

14.
The St and E are two important basic genomes in the perennial tribe Triticeae (Poaceae). They exist in many perennialspecies and are very closely related to the A, B and D genomes of bread wheat (Triticum aestivum L.). Genomic Southernhybridization and genomic in situ hybridization (GISH) were used to analyze the genomic relationships between the twogenomes (St and E) and the three basic genomes (A, B and D) of T. aestivum. The semi-quantitative analysis of the Southernhybridization suggested that both St and E genomes are most closely related to the D genome, then the A genome, andrelatively distant to the B genome. GISH analysis using St and E genomic DNA as probes further confirmed the conclusion.St and E are the two basic genomes of Thinopyrum ponticum (StStE~eE~bE~x) and Th. intermedium (StE~eE~b), two perennialspecies successfully used in wheat improvement. Therefore, this paper provides a possible answer as to why most of thespontaneous wheat-Thinopyrum translocations and substitutions usually happen in the D genome, some in the A genomeand rarely in the B genome. This would develop further use of alien species for wheat improvement, especially thosecontaining St or E in their genome components.  相似文献   

15.
Y. Wang  H. Nan  Q. Chen  W. He  L. Zhang 《Plant biosystems》2016,150(3):404-411
To further investigate the phylogenetic relationship between Rubus coreanus and its relatives in the section Idaeobatus, we used genomic in situ hybridization (GISH) to ascertain the degree of their genomic homology. Genomic DNA from R. parvifolius and R. inopertus hybridized throughout the centromeric and sub-terminal regions on 14 and 12 chromosomes of R. coreanus, respectively. The probes from R. niveus and R. ellipticus var. obcordatus gave robust signals at the same region of eight chromosomes. R. ellipticus and R. pinfaensis generated strong signals at the centromeric and sub-terminal parts of six chromosomes. The hybridization signals from the R. tsangii and R. corchorifolius probes existed only at the telomeric parts of four chromosomes. The two signals at the sub-terminal region on chromosome 6 of R. coreanus might be 45S rDNA repeats. These results indicated that R. coreanus and R. parvifolius shared many repeat sequences. It could be deduced that the genome of R. parvifolius was most closely related to that of R. coreanus among the species tested, R. inopertus came next, while R. tsangii and R. corchorifolius showed the farthest relationship. The phylogenetic relationships between R. parvifolius and R. coreanus, as well as among the five subsections were mainly discussed.  相似文献   

16.
旱麦草属(Eremopyrum)是用于小麦品种改良的又-潜在的植物资源。为了筛选小麦-旱麦草异附加系、异代换系,对普通小麦品种 Fukoho×东方旱麦草属间杂种的 BC2F3代材料的96粒种子进行了染色体数目的检测,共检出15粒2n=43的种子, 8粒 2n= 44的种子,进一步对以上材料进行的基因组DNA原位杂交,共鉴定出3个单体附加系,2个二体附加系,1个双单体附加,1个小麦三体单体附加,1个附加3条东方旱麦草染色体的小麦单体,在染色体数为42的个体中,检测出1个单体代换,1个双单体代换。根据BC2F3代自交品系来源的不同,初步认为由双单体附加自交比单体附加自交选择异附加系的效率高。  相似文献   

17.
普通小麦与东方旱麦草杂交世代的细胞遗传学研究   总被引:3,自引:0,他引:3  
对普通小麦(TriticumaestivumL.)与东方旱麦草(Eremopyrumorientale(Ledeb)Jaub.etspach)属间杂种的回交和自交不同世代(BC2F1、BC3F1、BC2F2、BC3F2和BC2F3)进行了细胞遗传学研究。结果表明,BC2F1代(2n=44)的植株回交产生的BC3F1代分离2n=43植株的比例较高;为41.09%,2n=44的植株类型的比例仅为4.11%;从自交后代BC2F2中分离2n=44植株类型的比例较高,为13.21%。回交二代(BC2F1)多数单株花粉母细胞(PMC)减数分裂过程中出现的单价体数较高,且回交结实率和自交结实率分别与该植株平均每PMC中出现的单价体数呈负相关,其相关系数分别为-0.6766和-0.7429。对BC2F3代部分种子进行的基因组原位杂交检测显示,2n=44的不同植株所含有的外源染色体数目仍有不同。这些结果说明,由于外源染色体的存在,影响了小麦本身同源染色体的正常配对和分离,降低了小麦染色体的遗传稳定性。  相似文献   

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