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1.
小麦种质资源农艺性状变异及其遗传多样性分析   总被引:5,自引:2,他引:3  
为了解不同小麦种质资源农艺性状变异及其遗传多样性,利用SSR分子标记分析了44份CIMMYT春小麦和45份国内主栽小麦种质资源的遗传变异。结果表明,小麦单株产量、株高和穗粒数的变异系数分别为36.7%、16.4%和15.6%,说明国内外种质材料在表型上存在较大差异。利用20对分子标记对89份小麦种质资源进行了多态性检测,结果显示,共检测到162个等位变异,每对引物检测到等位变异数目为6~9个,平均每对SSR标记能够检测到8.1个变异,其中Xgwm314的多态性最丰富;SSR标记的多态性信息含量(PIC)介于0.0223~0.8177,平均值为0.5109;平均每位点的有效等位基因数的变异范围为0.2984~8.7818,Xgwm165的多态性最丰富,平均值为1.2215;Shannon’s信息指数的变异范围为0.1114~0.3162,平均值为0.2307。聚类分析结果显示,89份小麦种质资源分为2大类群,第一类有25份,该类群株高较低,第二类有64份,国外材料大多集中在这一类中。本研究表明,44份CIMMYT春小麦及45份国内主栽小麦种质资源遗传相似性较大,地域性分布特征显著,聚类结果反映出小麦品种(系)多样性水平复杂,可为小麦新品种选育提供优异的亲本材料。  相似文献   

2.
为了揭示小麦抗蚜品种(系)的遗传多样性,在田间蚜虫圃对150份小麦品种(系)孕穗期和灌浆期蚜量比值进行2年对比的基础上,选取抗性结果较为一致的材料,利用筛选的54对具有多态性的SSR标记检测了43个不同抗蚜水平小麦品种(系)的遗传多态性。结果表明,54对SSR标记在这43份不同抗蚜水平小麦品种(系)中检测到365个等位变异,每个引物检测到2~18个等位变异,平均为6.7个;从每条谱带在所有材料中出现的频率来看,变异范围为2.3%~97.7%;多态性信息量为0.05~0.91,平均为0.65;43个小麦品种间的相对遗传距离为0.30~0.90,平均为0.52;SSR标记聚类分析在相对遗传距离为0.55处将43个不同抗蚜水平小麦品种(系)分为五大类群。选育和推广抗虫品种时尽可能选择聚类图中亲缘关系较远的材料;抗蚜品种京冬6号单独聚为一类,与其余品种亲缘关系较远,可作为新的抗源用于抗蚜育种。因此,用SSR分子标记分析不同抗蚜水平小麦品种(系)间的遗传多样性和亲缘关系,可以为培育和推广抗蚜小麦品种提供参考。  相似文献   

3.
通过对572份玉米种质资源(包括266份地方品种和306份普通自交系)进行粗缩病抗性鉴定,筛选到高抗材料2份,抗性材料11份,中抗材料9份,占总鉴定材料的3.9%。利用40对SSR标记对这些抗病材料进行遗传多样性分析,将玉米材料进行杂种优势类群的划分与归类。所得数据表明:共检测出328个多态性片段,平均每对引物检测出的等位变异数为8.2个。多态性信息含量PIC值在0.344~0.807之间,平均值为0.660。品种间的遗传相似系数为0.509~0.949,平均值为0.689,利用UPGMA法作图,将供试材料聚为7类。表明这些抗粗缩病材料存在较高的遗传多样性,具有较高的利用潜力。  相似文献   

4.
利用微卫星分子标记(SSR)对来自贵州省32个县(市)的115份大豆地方种质资源的遗传多样性进行了研究.结果表明,参试的115份大豆种质在8个位点共检测到56个等位变异,等位变异数在5~9个之间,平均每个位点的等位变异数为7个.聚类分析表明,115份大豆种质资源间的遗传距离变异范围为0.07~0.58,可将其分为11个类型,并发现其中5个材料与其它种质有明显差异.通过本研究为进一步开展贵州省大豆种质资源的遗传多样性研究提供了参考.  相似文献   

5.
利用363对SSR标记分析了在我国小麦生产和育种中发挥了重要作用的11份国外引进品种和33份选育品种的遗传组成,旨在揭示国外种质对我国小麦品种改良的遗传贡献,指导种质资源引进和利用。国外种质包含了选育品种所发现等位变异的76.3%。与不同时期小麦品种等位基因多样性比较发现,国外种质的平均等位变异数最多(3.92),20世纪60年代(2.86)和70年代(3.01)基本一致,80年代有所升高(3.46)。品种间遗传距离比较与品种等位基因多样性结果相吻合。比较引进和选育品种在SSR位点的等位变异频率变化,发现至少在33个SSR位点,国外种质等位变异在我国小麦育种中被优先选择(该等位变异在引进和选育品种的分布频率均高于70%),其中一些位点已知与产量、生育期和抗病等性状密切相关。表明引进品种在以上基因组区域对我国小麦品种具有非常高的遗传贡献。  相似文献   

6.
应用SSR分子标记分析国外种质对我国小麦品种的遗传贡献   总被引:7,自引:0,他引:7  
利用363对SSR标记分析了在我国小麦生产和育种中发挥了重要作用的11份国外引进品种和33份选育品种的遗传组成,旨在揭示国外种质对我国小麦品种改良的遗传贡献,指导种质资源引进和利用。国外种质包含了选育品种所发现等位变异的76.3%。与不同时期小麦品种等位基因多样性比较发现,国外种质的平均等位变异数最多(3.92),20世纪60年代(2.86)和70年代(3.01)基本一致,80年代有所升高(3.46)。品种间遗传距离比较与品种等位基因多样性结果相吻合。比较引进和选育品种在SSR位点的等位变异频率变化,发现至少在33个SSR位点,国外种质等位变异在我国小麦育种中被优先选择(该等位变异在引进和选育品种的分布频率均高于70%),其中一些位点已知与产量、生育期和抗病等性状密切相关。表明引进品种在以上基因组区域对我国小麦品种具有非常高的遗传贡献。  相似文献   

7.
玉米抗穗粒腐病QTL定位   总被引:5,自引:0,他引:5  
张帆  万雪琴  潘光堂 《作物学报》2007,33(3):491-496
用已构建的包括88个AFLP标记和151个SSR标记的遗传图谱和230个F2植株用于抗病QTL定位研究,在四川雅安、绵阳对F2株系进行抗病性鉴定,采用复合区间定位法进行抗病QTL检测。在雅安检测到位于第2、3、4、6和9染色体上的抗病QTL 6个,解释表型变异的8.3%~25.7%;在绵阳检测到位于第1、6、7和9染色体上的抗病QTL 4个,解释表型变异的11.3%~26.4%。在10个抗病QTL中,位于第6和第9染色体上的2个同时在两点被检测到,贡献率均超过15%,表明玉米穗粒腐病确实存在遗传抗病性。利用2个环境抗病指数的平均值进行抗性QTL检测,共检测到位于第1、6和7连锁群上的3个抗性QTL,单个QTL的贡献率在8.9%~17.2%之间。结果有助于了解玉米穗粒腐病的抗性机制,并为分子标记辅助选择提供理论支撑。  相似文献   

8.
国外种质对中国大豆育成品种遗传贡献的分子证据   总被引:6,自引:1,他引:5  
用SSR标记对32份中国大豆品种与40份国外引进大豆育成品种祖先亲本的遗传多样性进行分析,以明确引进国外大豆种质对中国大豆育种的遗传贡献。结果表明,在22个SSR位点共检测到170个等位变异,中国大豆和引进国外大豆平均等位变异数分别为6.0和6.9个,遗传多样性指数都为0.71,国外品种中检测到48个特有等位变异,而中国大豆中仅检测到22个,且共有等位变异在中外大豆中的分布频率差异较大。聚类分析也发现中国育成品种与国外引进大豆存在较大差异。遗传组成分析发现,Amsoy和十胜长叶2个国外种质的引入使5个中国大豆育成品种增加了23个国外种质特有等位变异;其在育成品种中的保留比例为29.13%,但不同遗传背景中保留的等位变异不同,说明国外种质在中国大豆育种中起着重要作用,而且仍有很多特有等位变异没有被利用,可以继续作为亲本在中国大豆改良中发挥作用。  相似文献   

9.
Puccinia triticina引起的叶锈病是小麦主要病害之一, 引进种质C615具有叶锈病成株期抗性, 但其抗病性遗传机制尚不清楚。本研究以抗病亲本C615与高感叶锈病亲本宁麦18构建的F2:7代重组自交系群体为材料, 利用337对多态性SSR标记构建遗传连锁图谱, 结合2016、2017连续两年的叶锈病鉴定结果进行复合区间作图, 结果在1BL、2DS、3BS、4DL和6BS染色体上共发现了5个抗性QTL, 暂命名为QLr.njau-1BLQLr.njau-2DSQLr.njau-3BSQLr.njau-4DLQLr.njau-6BS。其中, QLr.njau-1BLQLr.njau-3BSQLr.njau-4DL在两年均被检测到, 分别解释10.1%~15.7%、10.9%~13.5%和8.2%~9.0%的表型变异; 另2个QTL只在一年被检测到, 解释6.2%和9.2%的表型变异。除QLr.njau-2DS外的4个抗性QTL均来源于抗病亲本C615。QLr.njau-1BLQLr.njau-4DL分别与已报道的慢病性基因Lr46Lr67在同一区域, QLr.njau-3B可能为一个新的抗叶锈病QTL。此外, 本研究在C615/扬麦13 (轮回亲本)BC4F5回交群体中选出了15个农艺性状优良且抗叶锈病的株系, 利用与C615所含抗性QTL紧密连锁的7个SSR标记对其进行基因型检测, 结果显示所有这15个株系均含有来自C615的抗性QTL, 且有3个株系聚合了全部抗性位点, 表明C615可作为抗源亲本用于高产、抗病育种。本研究结果将为分子标记选育抗叶锈品种提供材料和技术支撑。  相似文献   

10.
玉米抗纹枯病QTL定位   总被引:10,自引:1,他引:9  
以玉米自交系R15(抗)×掖478(感)的229个F2单株为作图群体,构建了包含146个SSR标记位点的遗传连锁图谱,全长1 666 cM,平均图距11.4 cM。通过麦粒嵌入法对F2:4群体进行人工接种纹枯病菌,并以相对病斑高为病级划分标准鉴定了玉米纹枯病的抗性。用复合区间作图法分析抗病QTL及遗传效应,共检测到9个抗性QTL,分布于第1、2、3、4、5、6和10条染色体上,单个QTL可解释表型方差的3.72%~7.19%,其中有2个QTL位于染色体6.01抗病基因簇附近。  相似文献   

11.
Summary Fusarium head blight (FHB) is a serious disease of wheat worldwide that may cause substantial yield and quality losses. Breeding for FHB-resistant cultivars is the most cost-effective approach to control FHB. The objective of the present study was to determine the relationship of resistance between new resistant sources and Sumai 3 using five simple sequence repeat (SSR) markers closely linked to the major QTL for FHB resistance on chromosome arms 3BS and 6BS. All five SSR markers were highly polymorphic between Sumai 3 (and its derivatives) and susceptible Canadian wheat lines. Most of the Sumai 3-derived Chinese wheat accessions and three Canadian FHB-resistant lines had all the Sumai 3 SSR marker alleles on chromosome arms 3BS and 6BS. The Chinese landrace Wangshuibai and two Japanese accessions Nobeokabozu and Nyu Bai had the same banding patterns as Sumai 3 for all five SSR marker alleles, and another Chinese landrace Fangshanmai had three of the five SSR markers in common with Sumai 3, and therefore most likely carries the same QTL as Sumai 3 on 3BS and 6BS. The Brazilian cultivar Frontana had no alleles in common with Sumai 3 on either QTL, and the Chinese landrace Hongheshang had only one of the five SSR markers in common with Sumai 3, therefore likely carrying resistance genes different from Sumai 3. The Italian cultivar Funo is not the donor of either the 3BS QTL or 6BS QTL. All five SSR seem to be effective candidates for marker-assisted selection to increase the level of resistance to FHB in wheat breeding programs.  相似文献   

12.
Fusarium head blight (FHB) caused by Fusarium species, is among the most devastating wheat diseases, causing losses in numerous sectors of the grain industry through yield and quality reduction, and the accumulation of poisonous mycotoxins. A germplasm collection of spring and winter wheat, including nine reference cultivars, was tested for Type II FHB resistance and deoxynivalenol (DON) content. Genetic diversity was evaluated on the basis of Simple Sequence Repeat (SSR) markers linked to FHB resistance quantitative trait loci (QTLs) and Diversity Arrays Technology (DArT) markers. The allele size of the SSR markers linked to FHB resistance QTLs from known resistance sources was compared to a germplasm collection to determine the presence of these QTLs and to identify potentially novel sources of resistance. Forty-two accessions were identified as resistant or moderately resistant to Fusarium spread, and two also had very low DON concentrations. Genetic relationships among wheat accessions were generally consistent with their geographic distribution and pedigree. SSR analysis revealed that several resistant accessions carried up to four of the tested QTLs. Resistant and moderately resistant lines without any known QTLs are considered to be novel sources of resistance that could be used for further genetic studies.  相似文献   

13.
Quantitative trait loci (QTLs) for black‐point resistance have been mapped in two doubled haploid‐derived wheat populations, each thought to contain unrelated sources of resistance. In the ‘Sunco’בTasman’‐derived population, QTLs were located on chromosomes 1D, 2B, 3D, 4A, 5A and 7A with each QTL explaining between 4 and 15% of the observed phenotypic variance. QTLs were contributed by both parents. In the ‘Cascades’בAUS1408’‐derived population, QTLs from ‘Cascades’ were identified on chromosomes 2A, 2D and 7A with each QTL explaining between 12 and 18% of the phenotypic variance. Several markers were identified which are promising candidates for use in marker‐assisted selection programmes. If one, two or three of these markers would have been used to select for black‐point resistance in the ‘Sunco’בTasman’ population, then with one marker 34 of 39 resistant lines, with two markers 23 of 32 and with three markers 17 of 32 would have been selected. At the same time, 67 false positives obtained by selecting with one marker are reduced to 24 by selection with two markers and to 11 by selection with three markers. Similarly, if one, two or three markers are used to select for black‐point resistance in the ‘Cascades’בAUS1408’ populations, then with one marker 25 of 31 resistant lines, with two markers 26 of 31 and with three markers 10 of 31 are selected. At the same time, 14 false positives are obtained with one marker are reduced to six by selection with two markers and no false positives are selected using three markers.  相似文献   

14.
宁麦9号是江苏省农业科学院选育的优质弱筋专用小麦品种,具有高产、稳产和广泛的适应性及抗小麦黄花叶病、赤霉病等特点,近年来已成为江苏淮南麦区小麦育种的重要亲本。为了解宁麦9号对新育成小麦品种的遗传贡献,利用170对SSR引物,对宁麦9号及其9个衍生品种进行全基因组扫描分析。共检测到471个等位变异位点,每对引物可检测1~6个,平均2.8个。UPGMA聚类分析表明,扬麦18与宁麦9号遗传距离最小,扬辐麦4与宁麦9号遗传距离最大。遗传相似系数表明,在人工选择的作用下,这些以宁麦9号为亲本育成品种的遗传背景一半以上来自宁麦9号。宁麦9号等位变异在其衍生材料中的分布比例因品种而异,且不同染色体间差异较大,但相同位点的等位变异比例在A、B、D染色体组间相近。全基因组SSR扫描分析发现,10个标记位点在宁麦9号和由其选育的9个新品种具有完全相同的扩增带型,其中9个位点与重要农艺性状相关,或与控制优良性状的基因紧密连锁。将宁麦9号与主要弱筋小麦生产品种宁麦13(宁麦9号系选)进行基因组比较,两者遗传相似系数达0.732,说明宁麦13与宁麦9号遗传背景高度相似,而且两品种在蛋白质含量和抗赤霉病位点相关标记位点高度一致,这一结果可以部分解释宁麦13同样具有的抗赤霉病与优质弱筋的优点。  相似文献   

15.
为鉴定小麦-偃麦草杂种后代以及我国小麦品种和育种中间品系对纹枯病的抗性,并且解析偃麦草染色体与纹枯病抗性的关系,在徐州和南京两个试点,采用田间病圃法对321份普通小麦品种或品系和56份小麦-偃麦草杂种后代材料进行了纹枯病抗性鉴定。在徐州试点没有发现高抗纹枯病的种质,但是有52份材料表现中抗反应型,包括34份普通小麦材料,其中萧农8506-1、小偃81、冀植4001、农大195、徐州8913和京东3066A-3的相对抗病指数高于0.7。在南京试点,全部普通小麦材料都不抗纹枯病,只有5份小麦-偃麦草种质表现中抗反应型。部分小麦-偃麦草种质的病情指数不但显著低于感病对照品种苏麦3号和扬麦158,而且还低于抗病对照品种安农8455和宁麦9号,如小麦-中间偃麦草4Ai#2或4Ai#2S附加系、代换系和易位系材料TA3513、TA3516、TA3517和TA3519及小麦-长穗偃麦草第4部分同源群染色体代换系SS767,说明中间偃麦草4Ai#2染色体和长穗偃麦草4J染色体可能与纹枯病病情指数降低有关。基因组原位杂交分析结果表明,4Ai#2染色体属中间偃麦草的Js基因组,而长穗偃麦草与纹枯病抗性相关的第4部分同源群染色体属J基因组。虽然纹枯病与眼斑病的发病部位和症状非常相似,但抗眼斑病基因Pch1 (Madsen)和Pch2 (Cappelle-Desprez)对纹枯病无效。  相似文献   

16.
Fusarium head blight (FHB) is a devastating disease that reduces the yield, quality and economic value of wheat. For quantitative trait loci (QTL) analysis of resistance to FHB, F3 plants and F3:5 lines, derived from a ‘Wangshuibai’ (resistant)/‘Seri82’(susceptible) cross, were spray inoculated during 2001 and 2002, respectively. Artificial inoculation was carried out under field conditions. Of 420 markers, 258 amplified fragment length polymorphism and 39 simple sequence repeat (SSR) markers were mapped and yielded 44 linkage groups covering a total genetic distance of 2554 cM. QTL analysis was based on the constructed linkage map and area under the disease progress curve. The analyses revealed a QTL in the map interval Xgwm533‐Xs18/m12 on chromosome 3BS accounting for up to 17% of the phenotypic variation. In addition, a QTL was detected in the map interval Xgwm539‐Xs15/m24 on chromosome 2DL explaining up to 11% of the phenotypic variation. The QTL alleles originated from ‘Wangshuibai’ and were tagged with SSR markers. Using these SSR markers would facilitate marker‐assisted selection to improve FHB resistance in wheat.  相似文献   

17.
Ascochyta blight (AB) caused by Ascochyta rabiei, is globally the most important foliar disease that limits the productivity of chickpea (Cicer arietinum L.). An intraspecific linkage map of cultivated chickpea was constructed using an F2 population derived from a cross between an AB susceptible parent ICC 4991 (Pb 7) and an AB resistant parent ICCV 04516. The resultant map consisted of 82 simple sequence repeat (SSR) markers and 2 expressed sequence tag (EST) markers covering 10 linkage groups, spanning a distance of 724.4 cM with an average marker density of 1 marker per 8.6 cM. Three quantitative trait loci (QTLs) were identified that contributed to resistance to an Indian isolate of AB, based on the seedling and adult plant reaction. QTL1 was mapped to LG3 linked to marker TR58 and explained 18.6% of the phenotypic variance (R 2) for AB resistance at the adult plant stage. QTL2 and QTL3 were both mapped to LG4 close to four SSR markers and accounted for 7.7% and 9.3%, respectively, of the total phenotypic variance for AB resistance at seedling stage. The SSR markers which flanked the AB QTLs were validated in a half-sib population derived from the same resistant parent ICCV 04516. Markers TA146 and TR20, linked to QTL2 were shown to be significantly associated with AB resistance at the seedling stage in this half-sib population. The markers linked to these QTLs can be utilized in marker-assisted breeding for AB resistance in chickpea.  相似文献   

18.
菜豆普通细菌性疫病是世界上危害普通菜豆生产的最严重的病害之一。龙芸豆5号是我国黑龙江省的主栽品种,对菜豆普通细菌性疫病表现出良好的抗性。为定位来源于龙芸豆5号的抗性基因,本研究构建了包含785个单株的F2分离群体。基于该群体构建了一张包含206个SSR标记,总长度1648.42 c M,标记间平均遗传距离8.00 c M的遗传图谱。图谱包含12个连锁群,各连锁群平均长度137.37 c M,连锁群上标记数量3~35个。结合温室表型鉴定结果,采用QTL Ici Mapping v4.0软件的完备区间作图法进行QTL定位和效应估计。接种14 d后在Pv06染色体上检测到一个抗病QTL。该位点位于标记p6s249与p6s183之间,加性效应值为0.44,说明增效基因来源于龙芸豆5号,LOD值为5.93,表型贡献率为4.61%,该抗病QTL的效应值相对较低,将在培育稳定持久的抗菜豆普通细菌性疫病的品种中发挥作用。最后,对抗性基因紧密连锁的11对SSR引物与菜豆普通细菌性疫病抗性的关联分析表明,SSR标记p6s249与菜豆普通细菌性疫病抗性极显著关联(P0.001),该标记可用于抗病分子育种。  相似文献   

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