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1.
张杰  王佳  李浩宇  张慧荣  王迎春 《生态学报》2012,32(14):4443-4452
采用 ISSR 分子标记对蒙古扁桃(Prunus mongolica)6个自然种群的遗传多样性进行了分析.12条ISSR引物共扩增出200条带,其中199条具多态性,多态位点比率为99.5%.在种群水平上多态位点百分率平均为55.3%.Nei's基因多样性、Shannon's信息指数在种群水平上分别为0.3241和0.4875,在物种水平上分别为0.3105和0.4722.根据基因分化系数,测得基因流值Nm为0.8266.UPGMA聚类分析结果表明:乌海千里沟种群和东升庙那仁乌拉种群遗传一致度最大,遗传关系最近.ISSR检测结果表明,包头萨拉齐种群的遗传多样性最丰富,在制定原位种质保护计划时,应优先保护包头萨拉齐周边地区的蒙古扁桃.  相似文献   

2.
扎龙芦苇遗传多样性ISSR分析   总被引:2,自引:0,他引:2  
采用ISSR分子标记技术对扎龙湿地的5个野生芦苇居群进行了遗传多样性研究.从75条ISSR引物中筛选出10个特异性强、稳定性好的引物进行ISSR分析.共获得96个位点,其中多态位点94个,多态位点百分率为97.92%.PopGene分析结果表明:居群的平均多态位点百分率为56.46%,Shannon's多样性指数(J)...  相似文献   

3.
鄱阳湖具刚毛荸荠居群遗传多样性和克隆结构的初步研究   总被引:1,自引:0,他引:1  
采用ISSR标记对鄱阳湖的2个具刚毛荸荠(Heleocharis valleculosa f.setosa)居群共120个个体的遗传多样性和克隆结构进行了研究.5条ISSR引物共检测到85个位点,其中49个为多态位点,占57.65%.具刚毛荸荠具有较高的遗传多样性(在物种水平上,Nei's基因多样性指数H=0.1545,Shannon信息指数I=0.2400),两居群间遗传分化很小.具刚毛荸荠的克隆多样性很高(D=0.9975),两居群不具有共同的基因型.空间自相关分析表明,具刚毛荸荠居群内遗传变异为随机分布格局.  相似文献   

4.
利用RAPD和ISSR分子标记分析地黄种质遗传多样性   总被引:8,自引:0,他引:8  
用RAPD与ISSR技术对地黄的8个品种和2个脱毒品系进行了种质遗传多样性分析.分别从80条RAPD引物和44条ISSR引物中筛选出适合地黄种质分析的17条RAPD引物和10条ISSR引物用于RAPD和ISSR分析.17条RAPD引物共扩增出177条带, 多态性位点数为109; 多态性位点比率为61.58%;平均多样性指数(I)为0.3135;每个位点的有效等位基因数(Ne)是1.3641; 10条ISSR引物共扩增出110条带. 多态性位点数为79; 多态性位点比率为71.58%;平均多样性指数(I)为0.3577;每个位点的有效等位基因数(Ne)是1.4037. 基于扩增条带数据库建立了各自的Jaccard遗传相关系数矩阵,构建了相似的分子树状图,将10个供试材料分为2类:一类群含组培85.5、大田85.5、组培9302、大田9302、金状元和金白6个材料;另一类群含北京1号、大红袍、地黄9104和野生地黄4个材料.两种分子标记的分析结果呈极显著正相关(r=0.649).结果表明,RAPD与ISSR标记适合于地黄种质遗传多样性分析,ISSR标记技术是一种多态性和重复性优于RAPD技术的实用技术.  相似文献   

5.
云南南部不同种源地小桐子遗传多样性的ISSR分析   总被引:20,自引:0,他引:20  
应用ISSR分子标记方法对采自云南的8个居群的小桐子(Jatropha curcas)共158个个体进行遗传多样性分析。8个ISSR引物共扩增到了67个位点,其中61个是多态性位点。分析结果表明:(1)云南小桐子的遗传多样性水平很高。在物种水平上,平均每个位点的多态位点百分率PPB=91.04%,有效等位基因数Ne=1.5244,Nei′s基因多样性指数He=0.3070,Shannon多样性信息指数Ho=0.4618;在居群水平上,PPB=55.04%,Ne=1.3826,He=0.2171,Shannon多样性信息指数Ho=0.3178。(2)居群间的遗传分化低于居群内的遗传分化。基于Nei′s遗传多样性分析得出的居群间遗传多样性分化系数Gst=0.2944。AMOVA分析显示:云南小桐子的遗传变异主要存在于居群内,占总变异的63.50%,居群间的遗传变异占36.50%。(3)居群间的地理距离及遗传一致度并不存在相关性。鉴于以上指标,我们推测云南小桐子可能来自不同的地区。  相似文献   

6.
不同海拔高度木荷种群遗传多样性的ISSR分析   总被引:4,自引:0,他引:4  
利用ISSR分子标记技术分析了浙江天台山不同海拔高度木荷种群的遗传多样性和遗传分化.用12个引物对4个木荷种群共80个样品进行扩增,共检测到170个位点,其中多态位点154个,多态位点百分率(P)为90.59%.木荷总的Shannon信息指数(I)为0.5033,Nei指数(h)为0.3408,表明种水平的遗传多样性较高.而种群水平的遗传多样性比种水平低,P平均为63.68%,I平均为0.3789,h平均为0.2608.AMOVA分子差异分析表明,在总的遗传变异中,29.56%的变异存在于种群间,70.44%的变异存在于种群内,种群间的基因分化系数(Gst)为0.2348.木荷种群间的基因流为1.6293,4个种群间的平均遗传距离为0.1500.  相似文献   

7.
辣椒种质遗传多样性的RAPD和ISSR及其表型数据分析   总被引:16,自引:3,他引:13  
用RAPDI、SSR分子标记及28个表型性状数据对辣椒属5个栽培种的13份材料进行了分析,结果表明:23条RAPD引物共扩增出209条带,平均每个引物扩增出9.09条,多态性位点比率为83.73%;16条ISSR引物共扩增出94条带,平均每个引物扩增出5.88条,多态性位点比率为79.79%.与RAPD相比,ISSR标记检测到的有效等位基因数(Ne)及Shannon多样性指数(I)、遗传离散度(Ht)和遗传分化系数(Gst)等遗传多样性参数都较大,多态性位点比例在亲缘关系较近的一年生辣椒(Capsicum annuum)种内较高,说明ISSR有更高的多态性检测效率,并且适合亲缘关系较近的种群间遗传多样性分析.基于RAPDI、SSR的聚类与基于表型数据的聚类之间存在极显著正相关,且都能将C.annuum与其它栽培种区分开来.  相似文献   

8.
红泡刺藤居群的遗传多样性研究   总被引:1,自引:0,他引:1  
利用ISSR分子标记对红泡刺藤的12个居群共242个个体进行了遗传多样性分析.结果表明:(1)16个ISSR引物共扩增到257个位点,其中236个是多态性位点,占91.83%.(2)红泡刺藤居群具有较高水平的遗传多样性,在物种水平上,平均每个位点的多态位点百分率为97.50%,有效等位基因数为1.267,Nei's遗传多样性为0.177,Shannon's多态信息指数为0.296;居群水平上多态位点百分率为51.43%,有效等位基因数为1.205,Nei's 遗传多样性为0.127,Shannon's多态信息指数为0.202.(3)居群间基因分化系数为0.2815,AMOVA分析居群间遗传变异占总量的34.47%,二者结果相近,说明红泡刺藤居群间存在一定程度的遗传分化.居群内的遗传变异为65.53%,基因流为1.2762.(4) Mantel检测显示居群间的遗传距离与地理距离不存在相关性.UPGMA聚类分析和二维主成分分析结果一致,红泡刺藤居群可分为2个居群组,即金沙江居群和维西居群为一个类群,其他居群为另外一大类,表明生态地理条件相似的居群优先集中.  相似文献   

9.
利用ISSR分子标记技术对太行山特有濒危物种太行菊11个自然居群的遗传多样性进行研究。用10个引物对11个居群的122个样品进行扩增,共得到150个扩增位点,其中多态性位点149个,多态位点百分率(PPL)为99.33%。POPGENE分析显示,太行菊具有较高的遗传多样性(H=0.2149,I=0.3455)。沁阳市大西天居群的遗传多样性水平最高(H=0.1910,I=0.2969),山西陵川县大双村居群的遗传多样性水平最低(H=0.1356,I=0.2155)。Nei’s遗传多样性分析表明,11个自然居群间出现了较高的遗传分化(基因分化系数Gst=0.2566,基因流Nm=1.4488)。生境的的片段化和基因流障碍可能是导致太行菊居群间遗传分化显著的主要原因。通过对太行菊居群遗传多样性和遗传结构的分析,该文提出了一些保护策略。  相似文献   

10.
利用ISSR标记对新疆梭梭遗传多样性的研究   总被引:5,自引:0,他引:5  
利用ISSR分子标记对新疆梭梭8个居群、218个个体进行了遗传多样性的比较分析,在供试材料中,11个引物共扩增出222个多态位点,多态位点百分率为89.23%,8个居群的多态位点百分率差异在23.42%~45.05%之间,多态位点百分率最高的是乌苏居群,最低的为托克逊居群.遗传变异分析表明,物种水平的基因分化系数Gst为63.78.居群间的基因流Nm为0.284 0,Shannon多样性指数(I)为0.506 0,物种水平的Nei s基因多样度(H)为0.336 2.遗传分析表明乌苏居群和莫索湾居群有较近的遗传距离.  相似文献   

11.
七筋菇自然居群的遗传结构分析   总被引:4,自引:0,他引:4  
采用ISSR分子标记,对七筋菇(Clintonia udensis)17个居群的遗传多样性与遗传结构进行了研究。结果表明:七筋菇不同居群的多态位点百分率PPB为11.90%~59.52%,总的多态位点百分率PPB为98.8%,具有高的遗传多样性。Shannon多样性指数(0.6903)和基因分化系数(GST=0.6944)均揭示出七筋菇居群间存在明显的遗传差异,AMOVA分析结果也显示遗传变异主要发生在居群之间(81.47%),而居群内部的遗传变异仅为18.53%。七筋菇居群间的遗传距离从0.1871~0.6632,平均为0.3838,大于同一物种居群间的平均遗传距离值(0.05),同样表明七筋菇居群间的遗传多样性存在较大差异。七筋菇居群间的基因流Nm=0.2200,远远低于一般广布种植物的基因流(Nm=1.881)。Mantel检测显示居群间的遗传距离与地理距离之间没有显著相关性(r=0.029,P=0.3196)。七筋菇分布范围广以及其进化历史是其具有高遗传多样性的原因;居群间存在较高遗传变异可能是由于七筋菇本身的生物学特性、有限的基因流以及遗传漂变等原因造成的。  相似文献   

12.
应用ISSR 分子标记方法对采自云南的8 个居群的小桐子( Jatropha curcas) 共158 个个体进行遗传多样性分析。8 个ISSR 引物共扩增到了67 个位点, 其中61 个是多态性位点。分析结果表明: (1) 云南小桐子的遗传多样性水平很高。在物种水平上, 平均每个位点的多态位点百分率PPB = 91.04% , 有效等位基因数Ne = 1.5244, Nei′s 基因多样性指数He= 0.3070, Shannon 多样性信息指数Ho = 0.4618; 在居群水平上, PPB = 55.04%, Ne = 1.3826, He = 0.2171, Shannon 多样性信息指数Ho = 0.3178。(2) 居群间的遗传分化低于居群内的遗传分化。基于Nei''s 遗传多样性分析得出的居群间遗传多样性分化系数Gst = 0.2944。AMOVA分析显示: 云南小桐子的遗传变异主要存在于居群内, 占总变异的63.50%, 居群间的遗传变异占36.50%。(3) 居群间的地理距离及遗传一致度并不存在相关性。鉴于以上指标, 我们推测云南小桐子可能来自不同的地区。  相似文献   

13.
The genetic diversity of 158 individuals from eight semi-wild populations from Yunnan Province was estimated using ISSR method (8 primers). The results revealed an extraordinarily high level of genetic diversity ( at species level,percentage of polymorphic loci PPB = 91.04% , effective number of alleles Ne = 1.5244 , Nei′s (1973 ) gene diversity He= 0.3070, and Shannon′s information index Ho = 0 . 4618 ; at population level, PPB = 55. 04% , Ne = 1.3826, Nei′s (1973) gene diversity He = 0.2171, and Shannon′s information index Ho = 0.3178). The level of genetic differentiation between populations is lower than that among populations . The low level of genetic differentiation among populations was detected, based on Nei′s genetic diversity analysis (29.44%), and AMOVA (36.50%). There is no associations between geographical distance and genetic identity.We suggest that Jatropha curcas of Yunnan Province might not be introduced from the same place.  相似文献   

14.
Sinojackia dolichocarpa, a species endangered and endemic to China, is distributed only in the regional area of Shimen and Sangzhi in Hunan Province. Inter-simple sequence repeat (ISSR) markers were used to investigate the genetic diversity within and among the four natural populations of S. dolichocarpa. Leaf samples were collected from 84 individuals. Thirteen ISSR primers selected from 80 primers gave rise to 137 discernible DNA bands of which 100 (72.99%) were polymorphic. On average each primer gave rise to 10.5 bands including 7.7 bands with polymorphic profile. At the species level, high genetic diversity was detected (PPB: 72.99%; HE: 0.2255; Ho: 0.3453). However, relatively low genetic diversity existed within populations. Population in Maozhuhe (MZH) exhibits the greatest level of variability (PPB: 40.38%, HE: 0.1566, Ho: 0.2330), whereas the population in Jingguanmen (JGM) finds its own variability at the lowest level (PPB: 30.66%; HE: 0.1078; Ho: 0.1601). A high level of genetic differentiation among populations was revealed by Nei's gene diversity statistics (45.30%), Shannon's information measure (45.24%) and analysis of molecular variance (AMOVA) (52.88%). The main factors responsible for the high level of differentiation among populations are probably related to the selfing reproductive system and the isolation of populations. The strong genetic differentiation among populations indicates that the management for the conservation of genetic variability in S. dolichocarpa should aim to preserve every population.  相似文献   

15.
ISSR markers were used to analyze the genetic diversity and genetic structure of eight natural populations of Cupressus chengiana in China. ISSR analysis using 10 primers was carried out on 92 different samples. At the species level, 136 polymorphic loci were detected. The percentage of polymorphic bands (PPB) was 99%. Genetic diversity (He) was 0.3120, effective number of alleles (Ae) was 1.5236, and Shannon's information index (I) was 0.4740. At the population level, PPB = 48%, Ae = 1.2774, He = 0.1631, and I = 0.2452. Genetic differentiation (Gst) detected by Nei's genetic diversity analysis suggested 48% occurred among populations. The partitioning of molecular variance by AMOVA analysis indicated significant genetic differentiation within populations (54%) and among populations (46%; P < 0.0003). The average number of individuals exchanged between populations per generation (Nm) was 0.5436. Samples from the same population clustered in the same population-specific cluster, and two groups of Sichuan and Gansu populations were distinguishable. A significantly positive correlation between genetic and geographic distance was detected (r = 0.6701). Human impacts were considered one of the main factors to cause the rarity of C. chengiana, and conservation strategies are suggested based on the genetic characters and field investigation, e.g., protection of wild populations, reestablishment of germplasm bank, and reintroduction of more genetic diversity.  相似文献   

16.
Genetic diversity of Elymus sibiricus (Poaceae) was examined in eight populations from the southeast Qinghai-Tibet Plateau. We detected 291 RAPD polymorphic loci in 93 samples. The percentage of polymorphic bands (PPB) was 79%. Genetic diversity (H(E)) was 0.264, effective number of alleles (N(E)) was 1.444, Shannon's information index (H(O)) was 0.398, and expected Bayesian heterozygosity (H(B)) was 0.371. At the population level, PPB = 51%, N(E) = 1.306, H(E) = 0.176, I = 0.263, and H(B) = 0.247. A high level of genetic differentiation was detected based on Nei's genetic diversity analysis (G(ST) = 32.0%), Shannon's index analysis (33.7%), and the Bayesian method (θ(B) = 33.5%). The partitioning of molecular variance by AMOVA demonstrated significant genetic differentiation within populations (60%) and among populations (40%). The average number of individuals exchanged between populations per generation (N(m)) was 1.06. The populations were found to share high levels of genetic identity. No significant correlation was found between geographic distance and pairwise genetic distance (r = 0.7539, P = 0.9996). Correlation analysis revealed a significant correlation (r = 0.762) between RAPD H(E) found in this study and ISSR H(E) values from a previous study.  相似文献   

17.
ISSR analysis was used to investigate genetic variations of 184 haploid and diploid samples from nine North Atlantic Chondrus crispus Stackhouse populations and one outgroup Yellow Sea Chondrus ocellatus Holmes population. Twenty-two of 50 primers were selected and 163 loci were scored for genetic diversity analysis. Genetic diversity varied among populations, percentage of polymorphic bands (PPB) ranged from 27.0 to 55.8%, H (Nei's genetic diversity) ranged from 0.11 to 0.20 and I (Shannon's information index) ranged from 0.16 to 0.30. Estimators PPB, H and I had similar values in intra-population genetic diversity, regardless of calculation methods. Analysis of molecular variance (AMOVA) apportioned inter-population and intra-population variations for C. crispus, showing more genetic variance (56.5%) occurred in intra-population, and 43.5% variation among nine populations. The Mantel test suggested that genetic differentiation between nine C. crispus populations was closely related with geographic distances (R = 0.78, P = 0.002). Results suggest that, on larger distance scale (ca. >1000 km), ISSR analysis is useful for determining genetic differentiations of C. crispus populations including morphologically inseparable haploid and diploid individuals.  相似文献   

18.
苹果属山荆子遗传多样性的RAPD分析   总被引:5,自引:2,他引:3  
采用RAPD分子标记对东北、华北地区山荆子8个天然居群的137株个体进行了遗传多样性研究,10个引物共得到72个扩增位点,其中多态性位点63个.多态位点百分率为87.50%,有效等位基因数(Ne)为1.602 1,Nei's基因多样性(H)为0.338 6,Shannon信息指数(J)为0.496 1,表明山荆子遗传多样性水平较高.基因流(Nm)为1.735 3,说明山荆子各居群间存在一定的基因交流.居群间基因分化系数(Gst)值为0.223 7,说明虽然山荆子居群的遗传变异主要存在于居群内,但各居群间也存在着较高的遗传分化.  相似文献   

19.
Hemarthria compressa is one of the most important and widely utilized forage crops in south China, owing to its high forage yield and capability of adaptation to hot and humid conditions. We examined the population structure and genetic variation within and among 12 populations of H. compressa in south China using sequence-related amplified polymorphism (SRAP) markers. High genetic diversity was found in these samples [percentage polymorphic bands (PPB) = 82.21%, Shannon's diversity index (I) = 0.352]. However, there was relatively low level of genetic diversity at the population level (PPB = 29.17%, I = 0.155). A high degree of genetic differentiation among populations was detected based on other measures and molecular markers (Nei's genetic diversity analysis: G(ST) = 54.19%; AMOVA analysis: F(ST) = 53.35%). The SRAP markers were found to be more efficient than ISSR markers for evaluating population diversity. Based on these findings, we propose changes in sampling strategies for appraising and utilizing the genetic resources of this species.  相似文献   

20.
Studies were performed to investigate the genetic variation of 14 natural populations of Gynostemma pentaphyllum (Thunb.) Makino, an outcrossing clonal plant species in China, using inter-simple sequence repeat (ISSR) markers. Fourteen selected primers were used to amplify DNA samples from 140 individuals, and totally 194 loci were detected. The percentage of polymorphic bands (PPBs) showed that the genetic diversity was pretty high at the species level (PPB = 96.39%) but quite low at the population level (PPB = 1.03–25.26%). Shannon's information index (I) and Nei's gene diversity (h) displayed a similar trend to PPB. According to the hierarchical analysis of molecular variance (AMOVA) and Nei's analysis of gene diversity, the percentages of genetic variation among populations were 88.66 and 88.94%, respectively, indicating a high level of inter-population genetic differentiation. The low levels of genetic diversity within populations and high genetic differentiation among populations were assumed to result from the limited gene flow, the clonal nature and genetic drift. Based on the genetic data, effective conservation strategies were proposed for conserving this traditional Chinese medicinal herb. Concerning the management of G. pentaphyllum, we suggested that in situ conservation be an important and practical measure for maintaining the genetic diversity and that a possibly maximum number of populations be conserved. Populations EMS and HLT, in which particularly low levels of genetic variation were characterized, should be given the priority for ex situ conservation.  相似文献   

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