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1.
SSR和AFLP分析玉米遗传多样性的研究   总被引:26,自引:3,他引:26  
利用SSR,AFLP两种分子标记方法研究了23个玉米种质材料的遗传多样性,并对这两种分子标记系统进行了比较。利用筛选出的40对SSR引物,检测到了202个等位基因。用12对AFLP引物组,检测到了444条有多态性的带。SSR和AFLP分子标记均有很高的多态性,SSR位点的平均多态性信息量(PIC)值达0.60,而AFLP多态性带比例是72%。两种分子标记结果将玉米种质划分为5组,与系谱分析基本一致,两种分子标记划分的结果也相近。研究认为SSR,AFLP两种分子标记系统均适合于玉米种质的遗传多样性研究。  相似文献   

2.
近年来,AFLP分子标记技术已经逐步应用于甘薯的遗传育种研究中。本文简要概述了AFLP技术在甘薯的起源、进化与亲缘关系研究、遗传多样性分析、连锁图谱构建及基因定位和分子标记辅助育种等的应用进展,并对其发展前景进行了展望。  相似文献   

3.
中国金针菇工厂化生产用种SSR和AFLP遗传多样性分析   总被引:3,自引:2,他引:1  
探讨SSR、AFLP分子遗传标记技术在金针菇遗传变异分析和菌种鉴定上的应用。用SSR和AFLP分子标记技术比较分析了中国市场上20个主要的工厂化生产金针菇用种的遗传多样性。29对SSR引物和60对AFLP引物分别检测到37个及206个多态位点;遗传相似系数分别为0.56~1.00、0.54~0.97。AFLP标记的多态性比SSR高。2种标记的聚类分析结果均揭示出中国市场上工厂化金针菇用种遗传多样性相对较小,亲缘关系十分接近。  相似文献   

4.
AFLP(扩增片段长度多态性)是检测DNA多态性的一种高效的分子标记技术,该技术的运用不需要预知基因组的序列特征,可适用于任何来源和各种复杂度的DNA,兼具RFLP技术的可靠性和RAPD技术的方便性。近年来,AFLP技术已在干果遗传育种研究中得到广泛应用。本文对AFLP技术的基本原理和反应程序进行了介绍,综述了其在干果种质资源研究、遗传图谱构建、基因标记、分子辅助选择、基因表达等方面的应用,并对AFLP技术存在的问题及其在干果遗传育种研究上的应用前景进行了探讨。  相似文献   

5.
AFLP,SSR在黄瓜黑星病抗感材料上的多态性比较   总被引:2,自引:2,他引:0  
用AFLP和SSR 2种分子标记技术对黄瓜抗感黑星病材料Q6和Q12,及其F2极性集团和F2群体进行了分析,比较了它们的多态性。结果表明,AFLP和SSR 2种分子标记的多态性比率分别为36.5%,9.6%;阳性比率分别为22%,0。在F2群体中找到了1个AFLP标记E20/M64,与目的基因的遗传距离是4.83 cM;1个SSR标记CSWCT02B,与目的基因的遗传距离是28.7 cM。AFLP的多态性比率要比SSR的多态性比率高。分析探讨了2种分子标记技术的优缺点及其在目的基因连锁标记筛选、基因定位等研究中的应用。  相似文献   

6.
黄瓜作图亲本间分子标记的多态性分析   总被引:3,自引:1,他引:2  
利用AFLP,SRAP和SSR3种不同类型的分子标记技术,研究了作图亲本F-3与HZL04-1间的多态性。结果表明,这3种标记技术多态性检测效率不同,其中,AFLP揭示作图亲本间多态性效率最高,SRAP次之,SSR多态性检测效率最低。选择高效揭示多态性的分子标记技术是提高黄瓜遗传图谱构建效率的关键。分析探讨了几种分子标记技术的优缺点,认为应用AFLP,SRAP构建黄瓜遗传图谱为最佳,SSR可以作为补充的标记。  相似文献   

7.
AFLP分子标记在玉米优良自交系优势群划分中的应用   总被引:81,自引:0,他引:81  
本文利用AFLP分子标记技术研究了17个玉米优良自交系的遗传多样性, 4个AFLP引物组合分别扩增出30、 30、 44、 41条多态性带, 平均每个引物组合扩出36.25条带, 4个引物组合共扩增出145条带, 每一个引物组合都可将17个自交系完全分开。 利用AFLP数据、 进行聚类分析, 将17个优良自交系聚为6群, 结果表明, 用AFLP标记进  相似文献   

8.
分子标记技术在花生上的应用研究   总被引:3,自引:0,他引:3  
主要介绍了RFLP、RAPD、SSR、AFLP等四种分子标记技术的原理、方法、特点及其在花生上的应用现状:①RAPD、SSR、AFLP都可以分析花生品种的多样性;②RAPD技术可以对杂交后代进行鉴定;③利用RFLP、RAPD技术绘制花生指纹图谱;④利用分子标记技术研究花生根瘤菌;⑤基于花生的RFLP、RAPD技术的改进。同时,展望了分子标记技术在花生上的应用前景,以期对花生的分子标记育种有所帮助。  相似文献   

9.
分子标记技术的开发利用推动了玉米育种的发展,概述了5种常用分子标记SSR、RFLP、RAPD、AFLP、SNP的原理及特点。综述了分子标记技术在玉米自交系类群划分中的应用。  相似文献   

10.
AFLP在水稻类群划分研究中的应用   总被引:8,自引:1,他引:8  
李本逊  蔡健  谭学林  徐绍中  周苏文 《种子》2001,(4):26-27,53
利用AFLP分子标记技术研究了22个水稻品种的遗传多样性,从49对AFLP引物中筛选出了4对多态性高,分辨能力强的引物,4个AFLP引物组合分别扩增出43、37、49、33条多态性带,平均每个引物组合扩出40.5条多态性带,4个引物组合共扩增出246条带。利用AFLP数据进行聚类分析,将22个品种聚为8群,结果表明,AFLP在水稻类群划分的应用是可行的。  相似文献   

11.
Autotoxicity restricts reseeding of alfalfa (Medicago sativa L.) after alfalfa until autotoxic chemical(s) breaks down or is dispersed into external environments. A series of aqueous extracts from leaves, stems, roots and seeds of alfalfa ‘Vernal’ were bioassayed against alfalfa seedlings of the same cultivar to determine their autotoxicity. The highest inhibition was found in the extracts from the leaves. Extracts at 40 g dry tissue l?1 from alfalfa leaves were 15.4, 17.5 and 28.7 times more toxic to alfalfa root growth than were those from roots, stems and seeds, respectively. A high‐performance liquid chromatography (HPLC) analysis with nine standard compounds showed that the concentrations and compositions of allelopathic compounds depended on the plant parts. In leaf extracts that showed the most inhibitory effect on root growth, the highest amounts of allelochemicals were detected. Among nine phenolic compounds assayed for their phytotoxicity on root growth of alfalfa, coumarin, trans‐cinnamic acid and o‐coumaric acid at 10?3 m were most inhibitory. The type and amount of causative allelochemicals found in alfalfa plant parts were highly correlated with the results of the bioassay, indicating that the autotoxic effects of alfalfa plant parts significantly differed.  相似文献   

12.
Development of onion (Allium cepa L., cv. ‘Early Cream Gold’) seed under cool climate conditions in Tasmania, Australia occurred over a longer duration than previously reported, but similar patterns of change in yield components were recorded. In contrast to previous studies, umbel moisture content declined from 85 to 67 % over 57 days while seed moisture content decreased from 85 to 31 %. Seed yield continued to increase over the duration of crop development, with increasing seed weight compensating for seed loss resulting from capsule dehiscence in the later stages of maturation. Germination percentage was high and did not vary significantly from 53 to 77 days after full bloom (DAF), but mean germination time declined and uniformity of germination increased significantly over the same time period. The percentage abnormal seedlings declined with later harvest date, resulting in highest seed quality at 77 DAF. The results of this study suggest that the decision to harvest cool climate onion seed crops before capsule dehiscence will result in a loss of potential seed yield and quality.  相似文献   

13.
Jens Jensen 《Euphytica》1979,28(1):47-56
Summary The high-lysine gene in Risø mutant 1508 conditions an increased lysine content in the endosperm via a changed protein composition, a decreased seed size, and several other characters of the seed. The designation lys3a, lys3b, and lys3c, is proposed for the allelic high-lysine genes in three Risø mutants, nos 1508, 18, and 19. Linkage studies with translocations locate the lys3 locus in the centromere region of chromosome 7. A linkage study involving the loci lys3 and ddt (resistance to DDT) together with the marker loci fs (fragile stem), s (short rachilla hairs), and r (smooth awn) show that the order of the five loci on chromosome 7 from the long to the short chromosome arm is r, s, fs, lys3, ddt. The distance from locus r to locus ddt is about 100 centimorgans.  相似文献   

14.
[Objectives]This study aimed to establish a QAMS(quantitative analysis of multi-components by single-marker)method for simultaneous determination of four phenol...  相似文献   

15.
[Objectives]To optimize the water extraction process of Chinese Herbal Compound Man Gan Ning and establish a method for its extraction and content determination...  相似文献   

16.
Progress is being made, mainly by ICARDA but also elsewhere, in breeding for resistance to Botrytis, AScochyta, Uromyces, and Orobanche; and some lines have resistance to more than one pathogen. The strategy is to extend multiple resistance but also to seek new and durable forms of resistance. Internationally coordinated programs are needed to maintain the momentum of this work.Tolerance of abiotic stresses leads to types suited to dry or cold environments rather than broad adaptability, but in this cross-pollinated species, the more hybrid vigor expressed by a cultivar, the more it is likely to tolerate various stresses.  相似文献   

17.
T. Visser  E. H. Oost 《Euphytica》1981,30(1):65-70
Summary Apple and pear pollen was irradiated with doses of 0, 50, 100, 250 and 500 krad (gamma rays) and stored at 4°C and 0–10% r.h. From the in-vitro germination percentages an average LD 50 dose of about 220 krad was estimated. For both irradiated and untreated pollen a close and corresponding lineair relationship existed between germination percentage and pollen tube growth.Irradiated pollen was much more sensitive to dry storage conditions than untreated pollen, resulting in less germination and more bursting. Apparently, irradiation caused the pollen cell membrane to lose its flexibility faster than normal. Rehydration of dry-stored, irradiated pollen in water-saturated air restored germination percentages up to their initial levels. The importance of this procedure in germination trials is stressed.  相似文献   

18.
[Objectives] To determine the optimum extraction technology for total phenols of leaves in Acanthopanax giraldii Harms.[Methods]The single factor test and ortho...  相似文献   

19.
E. Keep 《Euphytica》1986,35(3):843-855
Summary Cytoplasmic male sterility (cms) is described in the F1 hybrids Ribes × carrierei (R. glutinosum albidum × R. nigrum) and R. sanguineum × R. nigrum. In backcrosses to R. nigrum, progenies with R. glutinosum cytoplasm were either all male sterile, or segregated for full male fertility (F) and complete (S) and partial (I) male sterility. Ratios of F:I+S suggested that two linked genes controlled cms, F plants being dominant for one (Rf 1) and recessive for the other (Rf 2).Segregation for cms in relation to three linded genes, Ce (resistance to the gall mite, Cecidophyopsis ribes), Sph 3(resistance to American gooseberry mildew, Sphaerotheca mors-uvae) and Lf 1(one of two dominant additive genes controlling early season leafing out) indicated that Rf 1and Rf 2were in this linkage group. The gene order and approximate crossover values appeared to be: % MathType!MTEF!2!1!+-% feaafiart1ev1aaatCvAUfeBSjuyZL2yd9gzLbvyNv2CaerbuLwBLn% hiov2DGi1BTfMBaeXafv3ySLgzGmvETj2BSbqef0uAJj3BZ9Mz0bYu% H52CGmvzYLMzaerbd9wDYLwzYbItLDharqqr1ngBPrgifHhDYfgasa% acOqpw0xe9v8qqaqFD0xXdHaVhbbf9v8qqaqFr0xc9pk0xbba9q8Wq% Ffea0-yr0RYxir-Jbba9q8aq0-yq-He9q8qqQ8frFve9Fve9Ff0dme% aabaqaciGacaGaamqadaabaeaafaaakeaacaWGdbGaamyzamaamaaa% baGaaiiiaiaacccacaGGWaGaaiOlaiaacgdacaGG0aGaaiiiaiaacc% caaaGaaiiiaiaacccacaGGGaGaamOuaiaadAgaliaaigdakmaamaaa% baGaaiiiaiaacccacaGGGaGaaiiiaiaaccdacaGGUaGaaiOmaiaacs% dacaGGGaGaaiiiaiaacccacaGGGaGaaiiiaaaacaWGsbGaamOzaSGa% aGOmaOWaaWaaaeaacaGGGaGaaiiiaiaacccacaGGGaGaaiiiaiaacc% cacaGGGaGaaiiiaiaacccaaaGaamitaiaadAgaliaaigdakmaamaaa% baGaaiiiaiaacccacaGGGaGaaiiiaiaacccacaGGGaGaaiiiaiaacc% cacaGGGaGaaiiiaiaacccacaGGGaaaaiaadofacaWGWbGaamiAaSGa% aG4maaaa!6E4D!\[Ce\underline { 0.14 } Rf1\underline { 0.24 } Rf2\underline { } Lf1\underline { } Sph3\]. Crossover values of 0.36 for Ce-Lf 1, and 0.15 for Lf 1-Sph 3were estimated from the relative mean differences in season of leafing out between seedlings dominant and recessive for Ce and Sph 3.It is suggested that competitive disadvantage of lf 1-carrying gametes and/or zygotes at low temperatures may be implicated in the almost invariable deficit of plants dominant for the closely linked mildew resistance allele Sph 3. Poor performance of lf 1- (and possibly lf 2-) carrying gametes and young zygotes during periods of low temperature at flowering might also account for the liability of some late season cultivars and selections to premature fruit drop (running off).  相似文献   

20.
Parasitic angiosperms cause great losses in many important crops under different climatic conditions and soil types. The most widespread and important parasitic angiosperms belong to the genera Orobanche, Striga, and Cuscuta. The most important economical hosts belong to the Poaceae, Asteraceae, Solanaceae, Cucurbitaceae, and Fabaceae. Although some resistant cultivars have been identified in several crops, great gaps exist in our knowledge of the parasites and the genetic basis of the resistance, as well as the availability of in vitro screening techniques. Screening techniques are based on reactions of the host root or foliage. In vitro or greenhouse screening methods based on the reaction of root and/or foliar tissues are usually superior to field screenings and can be used with many species. To utilize them in plant breeding, it is necessary to demonstrate a strong correlation between in vitro and field data. The correlation should be calculated for every environment in which selection is practiced. Using biochemical analysis as a screening technique has had limited success. The reason seems to be the complex host-parasite interactions which lead to germination, rhizotropism, infection, and growth of the parasite. Germination results from chemicals produced by the host. Resistance is only available in a small group of crops. Resistance has been found in cultivated, primitive and wild forms, depending on the specific host-parasite system. An additional problem is the existence of pathotypes in the parasites. Inheritance of host resistance is usually polygenic and its transfer is slow and tedious. Molecular techniques have yet to be used to locate resistance to parasitic angiosperms. While intensifying the search for genes that control resistance to specific parasitic angiosperms, the best strategy to screen for resistance is to improve the already existing in vitro or greenhouse screening techniques.  相似文献   

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