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1.
普通野生稻和亚洲栽培稻遗传多样性的研究   总被引:31,自引:3,他引:28  
用44个RFLP标记对来自中国、印度、泰国等亚洲10个国家的普通野生稻(简称普野,下同)和来自多个国家的75个栽培稻品种,从多态位点的比率、等位基因数、平均杂合度及平均基因多样性等多个方面,比较了不同国家和不同地区的普通野生稻、栽培稻灿粳亚种及栽培与普野之间遗传多样性的差异。结果表明:中国普野的遗传多样性最大;其次是印度普野;南亚普野的平均基因多样性大于东南亚普野;而多态位点的比率、等位基因数及基  相似文献   

2.
长江中上游两个鲢群体遗传变异的微卫星分析   总被引:9,自引:0,他引:9  
王长忠  梁宏伟  邹桂伟  罗相忠  李忠  田华  呼光富 《遗传》2008,30(10):1341-1348
对长江中上游2个鲢群体使用39个微卫星标记进行了遗传多样性分析, 计算并统计了平均观测等位基因数、平均有效等位基因数、多态信息含量、遗传杂合度、Hardy-Weinberg平衡偏离指数、遗传相似系数、遗传距离等遗传参数。结果表明: 万州鲢和监利鲢群体所检测微卫星位点的平均观测等位基因数分别为6.128和4.974; 平均有效等位基因数分别为4.107和3.395; 多态位点百分率分别为100和94.87; 39个微卫星标记共有等位基因259个, 173个等位基因为两群体所共有; 多态微卫星位点的PIC在0.077~0.865之间变动,平均为0.617; 两群体所检测位点平均观测杂合度为0.834和0.775, 平均期望杂合度为0.713和0.623; 两个群体间的遗传相似系数为0.618, 群体间的遗传距离为0.482。结果显示长江中上游两个鲢群体间存在显著遗传分化, 应隶属于不同的种群。  相似文献   

3.
本研究利用20对微卫星引物对鳜(Siniperca chuatsi)原种群体和养殖群体进行遗传多样性分析。结果表明,在鳜原种群体中检测到多态性位点14个,养殖群体11个。在两个群体中共检测到等位基因数96个,其中原种群体检测到等位基因数53个,每个位点的等位基因数在1~7之间,平均有效等位基因数为2.7390;养殖群体检测到等位基因数43个,每个位点的等位基因数在1~6之间,平均有效等位基因数为2.1284。原种群体的平均观察杂合度0.5708,Nei氏期望杂合度0.5295,平均多态信息含量PIC0.5353;养殖群体的平均观察杂合度0.3839,Nei氏期望杂合度0.4011,平均多态信息含量PIC0.5043。因此,与养殖群体相比,鳜原种群体仍有丰富的遗传多样性。本研究可为鳜种质资源的保护、监测和遗传育种提供分子水平上的数据。  相似文献   

4.
桂东南地区普通野生稻遗传多样性研究   总被引:17,自引:6,他引:11  
利用25个微卫星位点对广西壮族自治区贺州、崇左、防城港3市8个居群301份普通野生稻材料的遗传多样性和遗传结构进行研究,结果表明桂东南地区普通野生稻遗传多样性丰富,平均等位基因数A=10.2400,有效等位基因数Ae=5.0221,平均期望杂合度He=0.7641,实际观察杂合度Ho=0.4840.根据固定指数(F=0.5653)计算出的异交率(t=0.2777)表明,普通野生稻的繁育系统是典型的混合繁育系统.对其遗传结构分析表明,总的遗传变异中有34.59%存在于居群间(Fst=0.3459).进一步研究发现大多数居群偏离了Hardy-Weinberg平衡且杂合体不足(Fis=0.2680,Fit=0.4817).最后根据各居群的遗传变异特点和遗传多样性比较,建议居群QT、YJ和TJ需要优先保护.  相似文献   

5.
研究通过转录组测序对罗氏沼虾(Macrobrachium rosenbergii)SSR标记进行了发掘, 获得SSR位点18592个。随机选取了63个SSR位点设计引物并利用10个个体进行多态性位点筛选, 共获得31个具有多态的SSR标记, 利用其中19个SSR标记对全同胞家系群(FS)119尾虾及孟加拉F3代野生群(MJL)199尾虾的群体遗传多样性进行分析, 并对SSR位点与体质量性状进行关联性分析。结果表明: FS群体共检测到40个等位基因, 平均等位基因数为2.1053, 平均观测杂合度0.4525, 平均期望杂合度0.3804, 平均多态信息含量0.3076, 处于中度遗传多态水平; MJL群体共检测到65个等位基因, 平均等位基因数为3.4211, 平均观测杂合度0.4105, 平均期望杂合度0.4496, 平均多态信息含量0.3882, 处于中度遗传多态水平。 19个SSR位点与FS群体体质量没有相关性(P>0.05), 而在MJL群体中, 4个SSR位点与体质量显著相关(P<0.05)。对差异显著的位点进行不同基因型体质量性状的多重比较, MR28位点277/285基因型体质量均值极显著高于277/289和285/285基因型(P<0.01), 显著高于285/289、273/289、270/273和285/293基因型(P<0.05); MR32位点266/266和266/270基因型体质量均值显著高于270/270基因型(P<0.05); MR34位点210/214基因型体质量均值显著高于210/210和214/214基因型(P<0.05); MR45位点174/190基因型体质量均值显著高于182/182和182/190基因型(P<0.05)。研究结果为罗氏沼虾分子标记辅助育种奠定了基础。  相似文献   

6.
利用17个微卫星标记分析鳙鱼的遗传多样性   总被引:23,自引:5,他引:18  
选用本实验室克隆的17个鳙鱼微卫星分子标记分析四川泸州和江西鄱阳湖的两个种群鳙鱼的遗传多样性及种质特性,计算和统计了杂合度、多态信息含量(PIC)、有效等位基因数、等位基因频率、遗传距离、遗传相似系数、Hardy-Weinberg平衡偏离指数等方面内容。结果表明:选择使用17个微卫星标记,其中有4个为单态标记,13个为多态标记。江西和四川鳙鱼群体每个微卫星位点的平均等位基因数分别为3.325及3.882,平均有效等位基因数分别为3.531及2.676,多态位点百分率分别为82.4及70.5, 17个微卫星标记共有等位基因71个,多态微卫星位点的PIC在0.114~0.960之间变动,平均为0.417 ,两群体位点平均观测杂合度为0.385和0.452,平均期望杂合度为0.360和0.422,两个群体间的遗传相似系数为0.897,群体间的遗传距离为0.109。  相似文献   

7.
通过对分布于湖南省古丈县的南方红豆杉(Taxus chinensis)天然群体中30个个体的功能叶片的过氧化物酶(POD)和酯酶(EST)同工酶谱带的分析,研究了该天然群体的遗传多样性水平.结果表明:30个个体中都存在有迁移率相同的谱带(4条),占酶谱带总数的26.7%;两个酶系统共检出15条酶谱带,等位基因位点数4个,其中多态位点数3个,单态位点数1个,多态位点百分数P=75%,平均每个位点的等住基因数A=3,平均有效等位基因数Ae=2.75,平均期望杂合度He=60.7%,平均实际杂合度Ho=22.2%,表明该群体有较丰富的遗传多样性.  相似文献   

8.
虹鳟6个养殖群体遗传多样性的微卫星分析   总被引:12,自引:0,他引:12  
赵莹莹  朱晓琛  孙效文 《遗传》2006,28(8):956-962
利用14对微卫星分子标记对虹鳟的6个养殖群体进行遗传多样性分析。结果表明:6个群体的平均等位基因数A为 2.89~4.22,平均有效等位基因数Ne 为2.15~2.78,平均观察杂合度Ho 为0.4801~0.6786,平均期望杂合度He 为0.5052~0.6211,平均多态信息含量PIC 为0.4298~0.5762;其中渤海站群体的等位基因数最多、多态信息含量最高,有效种群最大,通过基因型的P值发现6个群体只在位点AF375034符合Hardy-Weinberg平衡,在其他位点都不同程度的偏离平衡,同时对6个群体的遗传距离进行了估算,聚类分析发现挪威群体与其他群体遗传距离最远。  相似文献   

9.
五个家系吉富罗非鱼的遗传多样性分析   总被引:3,自引:0,他引:3  
吉富罗非鱼是用家系选育方法获得的优良品系.该方法可避免近亲交配引起的衰退.从罗非鱼的第二代遗传图谱上选取10个微卫星标记,对吉富罗非鱼5个家系共121尾鱼进行遗传多样性分析.结果表明:各位点的等位基因数为2~6个,平均等位基因数为4;有效等位基因数1.3920~3.6689,平均有效等位基因数为2.4733;平均杂合度观测值0.5984,平均杂合度期望值0.5642.5个家系的多态信息含量从小到大以依次为22家系、25家系、59家系、49家系、31家系,均为中度多态性.家系间基因分化系数(GST)为0.1676,各家系之间存在一定遗传分化.根据遗传距离采用UPGMA法对5个家系进行聚类,49家系和59家系遗传距离最小聚为一类, 它们与31家系遗传距离最远.对10个微卫星位点的基因型进行分析,结果发现在GM578位点,22家系呈其他几个家系没有的BB基因型,有望成为22家系的标记.  相似文献   

10.
新铁炮百合自交初代遗传分化的等位酶分析   总被引:4,自引:0,他引:4  
采用等位酶分析技术,检测了新铁炮百合自交初代各株系的遗传多样性与遗传分化。结果表明,在人工辅助自交和选择作用下,随着世代的增加,多态位点的比率下降,每个位点平均等位基因数降低,观测杂合度和期望杂合度下降。由于选择作用,株系间纯合的位点和速度不同,固定的等位基因不同。F4代株系间平均遗传距离较F3、代株系有一定增大,加强了株系间的分化。  相似文献   

11.
Forty fourth single-copy RFLP markers were used to evaluate the genetic diversity of 122 accessions of common wild rice (CWR, Oryza rufipogon Griff.) and 75 entries of cultivated rice (Oryza sativa L. ) from more than ten Asian countries. A comparison of the parameters showing genetic diversity, including the percentage of polymorphic loci (P), the average number of alleles per locus (A), the number of genotypes (Ng), the average heterozygosity (Ho) and the average genetic multiplicity (Hs) of CWR and indica and japonica subspecies of cultivated rice from different countries and regions, indicated that CWR from China possesses the highest genetic diversity, followed by CWR from South Asia and Southeast Asia. The genetic diversity of CWR from India is the second highest. Although the average gene diversity (Hs)of the South Asian CWR is higher than that of the Southeast Asian CWR, its percentage of polymorphic loci (P), number of alleles (Na) and number of genotypes (Ng) are all smaller. It was also found that the genetic diversity of cultivated rice is obviously lower than that of CWR. At the 44 loci investigated, the number of polymorphic loci of cultivated rice is only 3/4 that of CWR, while the number of alleles, 60%, and the number of genotypes is about 1/2 that of CWR. Of the two subspecies studied, the genetic diversity of indica is higher than that of japonica. The average heterozygosity of the Chinese CWR is the highest among all the entries studied. The average heterozygosity of CWR is about two-times that of cultivated rice. It is suggested that during the course of evolution from wild rice to cultivated rice, many alleles were lost through natural and human selection, leading to the lower heterozygosity and genetic diversity of the cultivated rice. Received: 19 May 1999 / Accepted: 26 April 2000  相似文献   

12.
It is generally accepted that Oryza rufipogon is the progenitor of Asian cultivated rice (O. sativa). However, how the two subspecies of O. sativa (indica and japonica) were domesticated has long been debated. To investigate the genetic differentiation in O. rufipogon in relation to the domestication of O. sativa, we developed 57 subspecies-specific intron length polymorphism (SSILP) markers by comparison between 10 indica cultivars and 10 japonica cultivars and defined a standard indica rice and a standard japonica rice based on these SSILP markers. Using these SSILP markers to genotype 73 O. rufipogon accessions, we found that the indica alleles and japonica alleles of the SSILP markers were predominant in the O. rufipogon accessions, suggesting that SSILPs were highly conserved during the evolution of O. sativa. Cluster analysis based on these markers yielded a dendrogram consisting of two distinct groups: one group (Group I) comprises all the O. rufipogon accesions from tropical (South and Southeast) Asia as well as the standard indica rice; the other group (Group II) comprises all the O. rufipogon accessions from Southern China as well as the standard japonica rice. Further analysis showed that the two groups have significantly higher frequencies of indica alleles and japonica alleles, respectively. These results support the hypothesis that indica rice and japonica rice were domesticated from the O. rufipogon of tropical Asia and from that of Southern China, respectively, and suggest that the indica-japonica differentiation should have formed in O. rufipogon long before the beginning of domestication. Furthermore, with an O. glaberrima accession as an outgroup, it is suggested that the indica-japonica differentiation in O. ruffpogon might occur after its speciation from other AA-genome species.  相似文献   

13.
It is known that the common cultivated rice (Oryza sativa) was domesticated from Asian wild rice, O. rufipogon. Among the morphological differences between them, loss of seed shattering is one of the striking characters specific for the cultivated forms. In order to understand the genetic control on shattering habit, QTL analysis was carried out using BC(2)F(1) backcross population between O. sativa cv. Nipponbare (a recurrent parent) and O. rufipogon acc. W630 (a donor parent). As a result, two strong QTLs were detected on chromosomes 1 and 4, and they were found to be identical to the two major seed-shattering loci, qSH1 and sh4, respectively. The allelic interaction at these loci was further examined using two sets of backcross populations having reciprocal genetic backgrounds, cultivated and wild. In the genetic background of cultivated rice, the wild qSH1 allele has stronger effect on seed shattering than that of sh4. In addition, the wild alleles at both qSH1 and sh4 loci showed semi-dominant effects. On the other hand, in the genetic background of wild rice, non-shattering effects of Nipponbare alleles at both loci were examined to inspect rice domestication from a viewpoint of seed shattering. It was serendipitous that the backcross plants individually having Nipponbare homozygous alleles at either shattering locus (qSH1 or sh4) shed all the seeds. This fact strongly indicates that the non-shattering behavior was not obtained by a single mutation in the genetic background of wild rice. Probably, some other minor genes are still associated with the formation or activation of abscission layer, which enhance the seed shattering.  相似文献   

14.
T Ishii  Y Xu  S R McCouch 《Génome》2001,44(4):658-666
Simple sequence length polymorphism analysis was carried out to reveal microsatellite variation and to clarify the phylogenetic relationships among A-genome species of rice. Total DNA from 29 cultivars (23 Oryza sativa and 6 O. glaberrima) and 30 accessions of wild A-genome species (12 O. rufipogon, 5 O. glumaepatula, 2 O. longistaminata, 6 O. meridionalis, and 5 O. barthii) was used as a template for PCR to detect 24 nuclear and 10 chloroplast microsatellite loci. Microsatellite allelic diversity was examined based on amplified banding patterns. Microsatellites amplified clearly in all 59 accessions, with an average of 18.4 alleles per locus. The polymorphism information content (PIC) value ranged from 0.85 to 0.94, with an average of 0.89. At the species level, high average PIC values were observed in O. sativa (0.79) and O. rufipogon (0.80). For chloroplast microsatellites, the average number of alleles per locus and the average PIC value were 2.9 and 0.38, respectively. While the magnitude of diversity was much greater for nuclear microsatellites than for chloroplast microsatellites, they showed parallel patterns of differentiation for each taxonomic group. Using the ratio of common alleles (estimated as size of amplified fragments) as a similarity index, the average percentages of common microsatellite alleles were calculated between taxa. For both nuclear and chloroplast microsatellites, O. sativa showed the highest similarity values to O. rufipogon, and O. glaberrima was most similar to O. barthii. These data support previous evidence that these cultivars originated from the corresponding wild ancestral species.  相似文献   

15.
普通野生稻和亚洲栽培稻线粒体DNA的RFLP分析   总被引:7,自引:0,他引:7  
通过7个探针、17种内切酶探针组合对118份普通野生稻和76份亚洲栽培稻的线粒体DNA(mtDNA)RFLP分析表明,籼粳分化是亚洲栽培稻线粒体基因组分化的主流,76个栽培稻中,36个品种mtDNA为籼型,40个品种mtDNA为粳型。普通野生稻mtDNA以籼型为主(86份),粳型较少(7份),1份类型难以确定,还有24份没有籼粳分化。  相似文献   

16.
江西东乡野生稻苗期抗旱基因定位   总被引:2,自引:0,他引:2  
普通野生稻是栽培稻的祖先种,其遗传多样性远远大于栽培稻,蕴涵着栽培品种中难以找到的重要性状.以江西东乡普通野生稻为供体、以桂朝2号为遗传背景的野生稻基因渗入系(BC4F5、BC4F6)为材料,利用30%的PEG人工模拟干旱环境,对渗入系二叶一心苗期进行抗旱鉴定,共定位了12个与抗旱有关的QTL,其中在第2、6和12染色体上发现了4个QTL的加性效应值为正,来自东乡野生稻的等位基因能使渗入系的抗旱性增强,特别是位于第12染色体RM17附近的qSDT12-2在多次重复中均被检测到,在PEG处理后1-8 d能稳定表达.通过对抗旱性QTL的动态分析,发现不同QTL表达时间不同.  相似文献   

17.
Introgression lines population was effectively used in mapping quantitative trait loci (QTLs), identifying favorable genes, discovering hidden genetic variation, evaluating the action or interaction of QTLs in multiple conditions and providing the favorable experimental materials for plant breeding and genetic research. In this study, an advanced backcross and consecutive selfing strategy was used to develop introgression lines (ILs), which derived from an accession of Oryza rufipogon Griff. collected from Yuanjiang County, Yunnan Province of China, as the donor, and an elite indica cultivar Teqing (O. sativa L.), as the recipient. Introgression segments from O. rufipogon were screened using 179 polymorphic simple sequence repeats (SSR) markers in the genome of each IL. Introgressed segments carried by the introgression lines population contained 120 ILs covering the whole O. rufipogon genome. The mean number of homozygous O. rufipogon segments per introgression line was about 3.88. The average length of introgressed segments was approximate 25.5 cM, and about 20.8% of these segments had sizes less than 10 cM. The genome of each IL harbored the chromosomal fragments of O. rufipogon ranging from 0.54% to 23.7%, with an overall average of 5.79%. At each locus, the ratio of substitution of O. rufipogon alleles had a range of 1.67-9.33, with an average of 5.50. A wide range of alterations in morphological and yield-related traits were also found in the introgression lines population. Using single-point analysis, a total of 37 putative QTLs for yield and yield components were detected at two sites with 7%-20% explaining the phenotypic variance. Nineteen QTLs (51.4%) were detected at both sites, and the alleles from O. rufipogon at fifteen loci (40.5%) improved the yield and yield components in the Teqing background. These O. rufipogon-O, sativa introgression lines will serve as genetic materials for identifying and using favorable genes from common wild rice.  相似文献   

18.
BACKGROUND AND AIMS: Tolerance of complete submergence is recognized in a small number of accessions of domesticated Asian rice (Oryza sativa) and can be conferred by the Sub1A-1 gene of the polygenic Submergence-1 (Sub1) locus. In all O. sativa varieties, the Sub1 locus encodes the ethylene-responsive factor (ERF) genes Sub1B and Sub1C. A third paralogous ERF gene, Sub1A, is limited to a subset of indica accessions. It is thought that O. sativa was domesticated from the gene pools of the wild perennial species O. rufipogon Griff. and/or the annual species O. nivara Sharma et Shastry. The aim of this study was to evaluate the orthologues of the Sub1 locus in the closest relatives of O. sativa to provide insight into the origin of the gene and allelic variation of the Sub1 locus. METHODS: Orthologues of the Sub1 genes were isolated from O. rufipogon and O. nivara by use of oligonucleotide primers corresponding to the most highly conserved regions of the Sub1 genes of domesticated rice. The phylogenetic relatedness of Sub1 genes of O. sativa and its wild relatives was evaluated. KEY RESULTS AND CONCLUSIONS: Both O. rufipogon and O. nivara possess two Sub1 gene orthologues with strong sequence identity to the Sub1B and Sub1C alleles of cultivated rice. The phylogeny of the Sub1 genes of the domesticated and wild rice suggests that Sub1A arose from duplication of Sub1B. Variation in Sub1B alleles is correlated with the absence or presence of Sub1A. Together, the results indicate that genetic variation at the Sub1 locus is due to gene duplication and divergence that have occurred both prior to and after rice domestication.  相似文献   

19.
Gao LZ  Innan H 《Genetics》2008,179(2):965-976
The origins of the Asian cultivated rice Oryza sativa from its wild ancestor O. rufipogon have been debated for decades. The question mainly concerns whether it originated monophyletically or polyphyletically. To shed light on the origins and demographic history of rice domestication, we genotyped a total of 92 individual plants from the two O. sativa subspecies and O. rufipogon for 60 microsatellites. An approximate Bayesian method was applied to estimate demographic parameters for O. rufipogon vs. O. sativa ssp. indica and O. rufipogon vs. O. sativa ssp. japonica. We showed that the japonica subspecies suffered a more severe bottleneck than the indica subspecies and thus a greater loss of genetic variation during its domestication. Across microsatellite loci there is a significant positive correlation in the reduction of genetic diversity between the two subspecies. The results suggest that completely independent domestication of indica and japonica subspecies may not explain our data and that there is at least partial sharing of their ancestral populations and/or recent gene flow between them.  相似文献   

20.
Evolutionary Genomics of Weedy Rice in the USA   总被引:8,自引:0,他引:8  
Red rice Is an Interfertlle, weedy form of cultivated rice (Oryza sativa L.) that competes aggressively with the crop In the southern US, reducing yields and contaminating harvests. No wild Oryza species occur In North America and the weed has been proposed to have evolved through multiple mechanisms, Including "de-domestication" of US crop cultlvars, accidental introduction of Asian weeds, and hybridization between US crops and Asian wild/weedy Oryza strains. The phenotype of US red rice ranges from "crop mimics", which share some domestication traits with the crop, to strains closely resembling Asian wild Oryza species. Assessments of genetic diversity have Indicated that many weed strains are closely related to Asian taxa (Including indica and aus rice varieties, which have never been cultivated In the US, and the Asian crop progenitor O. ruflpogon), whereas others show genetic similarity to the tropical Japonica varieties cultivated In the southern US. Herein, we review what Is known about the evolutionary origins and genetic diversity of US red rice and describe an ongoing research project to further characterize the evolutionary genomlcs of this aggressive weed.  相似文献   

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