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1.
大麻性别的RAPD和SCAR分子标记   总被引:34,自引:0,他引:34  
利用随机扩增多态性DNA(random amplified polymorphic DNA,RAPD)技术获得与大麻性别连锁的分子标记,将10株雄性大麻或10株雌性麻的单个DNA样品等量混合分别组成雄性或雌性DNA池(DNApool),以提供具有相同遗传背景的雄,雄性DNA样品。每个随机引物分别用三个不同的循环程序进行PCR扩增,在30个随机引物中,用引物S401扩增得到一条约2.5kb雄性多态性片段,对该片段进行了克隆和序列分析 ,并根据序列分析结果将上述RAPD分子标记转化为重复性和特异性更好的SCAR(Sequence characterized amplified regions)分子标记。  相似文献   

2.
葎草雄性连锁的RAPD标记的克隆与SCAR标记的建立   总被引:1,自引:0,他引:1  
应用随机扩增的DNA多态性(RAPD)技术可以快速简便获得雌雄异株植物雌雄株间的基因组差异信息,本文采用该技术对律草雌雄混合基因池进行了扩增,在选用的100条10bD的随机引物中,引物S1519和S2142分别扩增出长度为1207bp和762bp的雄性连锁标记,对其进行回收克隆和测序后发现这两个片段富含AT序列,AT含量分别为64%、54.7%,经核苷酸数据库BLAST检索未发现其同源序列。根据测序结果设计的SCAR引物可以将这两个雄性连锁的RAPD标记转化为稳定性和特异性更好的SCAR标记。  相似文献   

3.
利用RAPD(Random amplified polymorphic DNA)分子标记技术,寻找谭清苏铁(Cycas tanqingii)中与性别相关的分子标记,筛选了160个10bp的随机引物,产生了2500多个RAPD条带。只有引物S0465 (CCCCGGTAAC)产生了一条大约500bp的雌性特异RAPD标记,该分子标记出现在所有的供试雌性植株中,而所有的供试雄性植株都不具有该标记。对该特异片段进行了克隆和序列测定,并根据序列分析结果将RAPD标记转化为重复性和特异性更好的特异特征序列扩增区域(SCAR)分子标记,并命名为STQC-S465-483。分子标记的建立可用于谭清苏铁幼苗性别的早期鉴定,为谭清苏铁就地保护和迁地保护提供技术支持。  相似文献   

4.
谭清苏铁性别连锁的RAPD和SCAR分子标记   总被引:2,自引:0,他引:2  
利用RAPD(Random amplified polymorphicDNA)分子标记技术,寻找谭清苏铁(Cycas tanqingii)中与性别相关的分子标记,筛选了160个10bp的随机引物,产生了2500多个RAPD条带。只有引物S0465(CCCCGGTAAC)产生了一条大约500bp的雌性特异RAPD标记,该分子标记出现在所有的供试雌性植株中,而所有的供试雄性植株都不具有该标记。对该特异片段进行了克隆和序列测定,并根据序列分析结果将RAPD标记转化为重复性和特异性更好的特异特征序列扩增区域(SCAR)分子标记,并命名为STQC-S465-483。分子标记的建立可用于谭清苏铁幼苗性别的早期鉴定,为谭清苏铁就地保护和迁地保护提供技术支持。  相似文献   

5.
与棱果沙棘性别相关的RAPD标记   总被引:4,自引:0,他引:4  
应用RAPD技术筛选与棱果沙棘性别相关的分子标记,对棱果沙棘雌雄株的基因组DNA进行混合分组分析(BSA),在194条随机引物中有50条引物能够在雌雄DNA反应池间形成多态性条带,应用这50条引物分别对棱果沙棘雌雄个体(雌雄个体各选取5个)进行RAPD分析,其中引物S10扩增得到1个约为1030 bp的与雌性相关的RAPD标记。该标记的获得进一步表明棱果沙棘雌雄株间存在基因水平的差异,为棱果沙棘的性别研究提供分子依据。进一步利用该雌性特异位点设计出更加稳定的SCAR标记,可望用于棱果沙棘的早期性别的准确鉴别。  相似文献   

6.
目的:利用ISSR分子标记技术初步检测和分析中国云南和内蒙地区毒品原植物大麻的遗传多样性。方法:用CTAR法提取大麻基因组DNA,设计10个ISSR引物,扩增产物采用6%中性聚丙烯酰胺凝胶电泳-硝酸银染色法检测,根据出现的条带数目和片段大小等分析大麻的多样性。结果:从10个ISSR引物中筛选出的4个引物用于2个地区的大麻基因组DNA扩增,PCR产物可以检测到51条重复性较好、带型清晰的DNA片段,其多态性总体比率为78.43%。云南地区和内蒙地区大麻样品可分别获得43和33条带,其中多态性条带分别为33条(76.74%)和21条(63.64%)。结论:ISSR分子标记技术揭示了大麻具有较高的遗传多样性,对于鉴别犯罪现场大麻检材的产地及种属来源具有一定的价值。  相似文献   

7.
RAPD分子标记在园艺植物遗传学研究中的应用   总被引:8,自引:2,他引:6  
薛淮  刘敏  张纯花  潘毅 《生物技术》2003,13(2):42-43
1971年Khorana等提出多聚链式反应 (PolymeraseChainRe action ,PCR)的基本概念之后 ,1985年Saiki等阐述了具体原理和作法 ,并在 1988年从细菌中发现了热稳定性的TaqDNA聚合酶 ,从而实现了PCR反应的自动化。在PCR技术的基础上 ,Williams等[1 ] 1990年采用随机核苷酸序列为引物扩增基因组DNA的随机片段 ,产生了一种新的分子标记———随机扩增多态性DNA (RandomAmplifiedPolymorphicDNA) ,简称RAPD ,即以一个寡聚核苷酸序列 (通常为 10碱基 )为引物 ,对基因组DNA随机扩增 ,从而得到多态性图谱作为遗传标记的方法。同年Welsh…  相似文献   

8.
分子标记在苹果品种鉴定中的应用   总被引:18,自引:0,他引:18  
本文报道了应用随机扩增多态性DNA(RAPD)标记鉴定苹果“Fuji”品种的芽变和实生苗植株的结果。17个10核苷酸随机引物用于扩增6个品种的基础组DNA,共产生150条DNA片段,其中9个引物产生了18条多态性DNA片段,将6个品种分成2组,第一组包括“Fuji",Red Fuji,和Nagafu Fuji;第二级则包括Senshu Fuji,FLava Fuji和Ultraearli Fuji。在每一组样品之间观察不到任何变异,结果表明:(1)RAPD能区分开芽变与实生苗株株,但检测不到芽变株之间的遗传变异;(2)Senshu Fuji,Flava Fuji和Ultraearli fuji具有一致的基因型,可能是同一实生苗的无性繁殖后代。  相似文献   

9.
运用随机扩增多态性DNA(RandomamplifiedpolymorphicDNA,RAPD)技术对发生于中国东北的大豆发斑病菌(Cercosporidiumsojinum)的10个生理小种进行基因组DNA多态性分析。用13个10-核苷酸随机引物共计获得了111个RAPD标记,其中86.5%具有多态性,通过聚类分析确定了供试小种间的亲缘关系。试验证明,RAPD技术分析大豆灰斑病菌遗传变异可提供大量分子标记,综合分析13个随机引物的扩增谱带可将供试菌株清楚分开。RAPD技术是一项操作简单、快速和灵敏的方法,极具对病菌群体遗传分析的潜力。  相似文献   

10.
应用RAPD标记检测导入普通小麦中的Elymus rectisetus遗传物质   总被引:9,自引:0,他引:9  
以72个含16株系的BC2F5(小麦/Elymus rectisetus//小麦)单株为供体材料,用筛选出的12个10碱基随机引物对其进行多态性扩增。以E.rectisetus和Fukuhokomugi(Triticum aestivum)为亲本,建立RAPD标记。实验表明:12个随机引物中,有10个随机引物能够在16个株系的68个单株中分别扩增出普通小麦所没有的E.rectisetus的DNA片段,可分为6个类型,此外,1040-2-5-1和1048-Y3-3-1可能含5种异源染色体。  相似文献   

11.
Genetics of control mechanisms that underlies sex differentiation in date palm is not known. Sex of the plants becomes known only at the time of first flowering, which takes around 5 years. In comparison, molecular diagnosis (if available/feasible) promises quick and reliable identification of sex types very early when plantlets are growing in seedbeds. To develop such an assay, genomic DNA from 45 individual plants (25 female and 20 male) belonging to different varieties of date palm was subjected to PCR amplification using 100 random amplified polymorphic DNA (RAPD) and 104 intersimple sequence repeat (ISSR) primers. Initially, two bulk genomic DNA samples (each made by pooling DNA from ten male and female plants, separately) were used. A primer showing sex-specific band in bulked samples was further used for amplification of the genomic DNA of the individual samples of that bulk. Only one RAPD primer, OPA-02, amplified a fragment of ~1.0 kb in all the individual samples of male genotypes, whereas this fragment was absent in all the female genotypes. This male-specific fragment was cloned and sequenced (GenBank accession no. JN123357), and a sequence-characterized amplified region (SCAR) primer pair was designed that amplified a 406-bp fragment in both female and male genotypes and a unique fragment of 354 bp in only male genotypes. The SCAR marker was further validated using 25 female and ten male date palm plants belonging to different varieties collected from different locations.  相似文献   

12.
Bulk segregant analysis, random amplified polymorphic DNA (RAPD), and sequence characterized amplified region (SCAR) methods were used to identify sex‐linked molecular markers in the haploid‐diploid rhodophyte Gracilaria chilensis C. J. Bird, McLachlan et E. C. Oliveira. One hundred and eighty 10 bp primers were tested on three bulks of DNA: haploid males, haploid females, and diploid tetrasporophytes. Three RAPD primers (OPD15, OPG16, and OPN20) produced male‐specific bands; and one RAPD primer (OPD12), a female‐specific band. The sequences of the cloned putative sex‐specific PCR fragments were used to design specific primers for the female marker SCAR‐D12‐386 and the male marker SCAR‐G16‐486. Both SCAR markers gave unequivocal band patterns that allowed sex and phase to be determined in G. chilensis. Thus, all the females presented only the female band, and all the males only the male band, while all the tetrasporophytes amplified both male and female bands. Despite this sex‐specific association, we were able to amplify SCAR‐D12‐386 and SCAR‐G16‐486 in both sexes at low melting temperature. The differences between male and female sequences were of 8%–9% nucleotide divergence for SCAR‐D12‐386 and SCAR‐G16‐486, respectively. SCAR‐D12‐386 and SCAR‐G16‐486 could represent degenerated or diverged sequences located in the nonrecombining region of incipient sex chromosomes or heteromorphic sex chromosomes with sequence differences at the DNA level such that PCR primers amplify only one allele and not the other in highly specific PCR conditions. Seven gametic progenies composed of 19 males, 19 females, and the seven parental tetrasporophytes were analyzed. In all of them, the two SCAR markers segregated perfectly with sexual phenotypes.  相似文献   

13.
芦笋(Asparagus officinalis L.)又名石刁柏、龙须菜,系雌雄异株宿根性植物,是重要的经济作物之一。芦笋的性染色体为一对同形的L5染色体,雌性的性染色体为XX,雄性的性染色体为XY。性别决定的多态性是由位于一对L5性染色体上的一个显性基因M决定的[1-3],雌株基因型为隐性纯合子mm,雄株为显性纯合子MM(又称超雄株)或杂合子Mm。在生产上,由于雄株比雌株高产25%以上[4],并具有极强的抗病性和生命力,故雄株特别是超雄株则倍受生产者的青睐,但芦笋雌雄鉴定只有等到种植的第二年待植株开花时才能进行,这就严重影响了芦笋的有目的种植和经济效…  相似文献   

14.
葡萄感霜霉病基因的分子标记(英文)   总被引:4,自引:0,他引:4  
 在葡萄抗病育种中 ,幼苗期排除感霜霉病的后代具有特别重要的意义 .用 BSA,RAPD和SCAR方法研究了葡萄感霜霉病基因的分子标记 .分析了两个种间杂交组合 [毛葡萄 (抗病 )×欧洲葡萄 (感病 ) ]88- 1 1 0和 88- 84与 88- 1 1 0的 F1代自交或互交所得的 3个 F2 代 ,以及欧洲葡萄品种和中国野生葡萄种 .共筛选了 2 80个随机引物 .引物 OPO1 0产生了一个 RAPD标记 OPO1 0 - 80 0与葡萄感霜霉病主效基因紧密联锁 .将该 DNA片段克隆并测序 .OPO1 0 - 80 0的实际长度为 835bp,所以 OPO1 0 - 80 0应为 OPO1 0 - 835.据其两端序列 ,设计了一对长度为 2 6bp和 2 8bp的特异引物分别扩增上述试材 ,获得了与该 RAPD标记相同大小的一条带 ,将 RAPD标记转化为 SCAR标记SCO1 0 - 835.并证实了此 SCAR标记的通用性 ,该 SCAR标记可用于葡萄抗病育种中杂种后代对霜霉病的抗病与感病性鉴定 .  相似文献   

15.
Abstract

A method is described for developing a sheep‐ vs. goat‐specific DNA marker using sequence characterized amplified regions (SCARs) derived from a random amplified polymorphic DNA (RAPD) marker from sheep DNA samples. A sheep 645 bp DNA fragment that was absent in goat DNA was identified by analyzing pools of sheep and goat DNA with RAPD primers. This fragment was cloned and partially sequenced to design extended, strand‐specific 24‐mer oligonucleotide primers. Each primer contained the original 10 bases of the RAPD primer and the following 14 internal bases. The pair of primers resulted in the amplification of a single band of 645 bp when used to amplify sheep DNA, and in no amplification when used to amplify goat DNA. These SCAR primers successfully amplified the equivalent of DNA from one nucleated sheep cell in a sample of 5000 nucleated goat cells. This level of sensitivity is especially desirable for research involving the detection of interspecific chimerism.  相似文献   

16.
以陕西省杂交油菜研究中心选育的单显性核不育油菜分离群体为材料,利用集群分离法(BSA)对该油菜单显性核不育基因进行了RAPD分析。在随机选取的300个10碱基随机引物中,引物S243(5′CTATGCCGAC3′)在可育集团与不育集团间扩增出特异而可重复的1.5kb的多态性片段OPU-031500,而在细胞质雄性不育和其它核不育类型油菜中均未扩增出上述特异性片段,从而确证此RAPD标记OPU-031500。片段是与甘蓝型油菜单显性核不育基因连锁的。将该多态性片段克隆并测序,发现其序列与拟南芥的一段DNA序列高度同源。根据同源序列及测序结果设计两对特异引物(P1/P2和P3/P4),引物P3/P4在可育系中可扩增到约1.5kb的单一特异片断,而在不育系中无带,从而将RAPD标记转化为稳定可靠的SCAR标记。  相似文献   

17.
The random amplified polymorphic DNA (RAPD) technique was used to determine the sex of a dioecious species, Carica papaya L., with three sex types, male, female and hermaphrodite. A 450 bp marker fragment, named PSDM(Papaya Sex Determination Marker), exists in all male and hermaphrodite plants but not in the female plants so far analyzed. The DNA sequence of PSDM exhibited no significant similarity to previously reported sequences. A sequence-characterized amplified region (SCAR) marker, SCARps, was developed from PSDM to determine the sex of papaya. Southern hybridization, using PSDM as a probe, showed that PSDM exists in the male and hermaphrodite genomes, but not in the female genome. This result strongly suggests that PSDM is located on the chromosome region that is specific to the male and the hermaphrodite. SCARps is a suitable marker for the precise and rapid diagnosis of sex in papaya. Received: 1 February 2001 / Accepted: 22 May 2001  相似文献   

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