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1.
芸薹属(Brassica)植物是双子叶植物比较基因组学研究的重点对象。经过十几年的研究, 芸薹属植物比较基因组学研究已取得很大进展。宏观共线性和微观共线性两个层次的研究均发现, 芸薹属植物之间以及芸薹属和拟南芥之间都存在广泛的共线性, 表明拟南芥信息在芸薹属中具有重要应用价值。芸薹属作物基因组内存在着多个拷贝的共线性区域, 支持二倍体芸薹属作物起源于多倍体祖先的假设。  相似文献   

2.
芸薹属植物比较基因组学研究进展   总被引:1,自引:0,他引:1  
芸薹(Brassica)植物是双子叶植物比较基因组学研究的重点对象。经过十几年的研究,芸薹属植物比较基因组学研究已取得很大进膜。宏观共线性和微观共线性两个层次的研究均发现,芸薹属植物之间以及芸薹属和拟南芥之间都存在广泛的共线性,表明拟南芥信息在芸薹属中具有重要应用价值。芸薹属作物基因组内存在着多个拷贝的共线性区域,支持二倍体芸薹属作物起源于多倍体祖先的假设。  相似文献   

3.
王磊  陈景堂  张祖新 《遗传》2007,29(9):1055-1060
随着拟南芥、水稻等模式植物基因组测序计划的完成, 比较基因组学作为一门新兴学科, 近年来发展迅速, 为植物基因组的进化、结构和功能研究开辟了新的途径。文章综述了比较基因组学在作物比较遗传作图、基因结构区域的微共线性、ESTs和蛋白质水平的比较以及基于比较基因组学的基因和QTL的克隆等方面内容与研究进展, 分析了不同水平上比较基因组学研究策略的原理、特点、可行性, 以期为利用模式生物的基因和基因组数据、采用比较基因组学策略克隆作物重要性状功能基因、阐明基因组结构与进化提供帮助。  相似文献   

4.
全基因组复制与串联复制是两种重要的基因扩增途径,在生物进化过程中普遍存在.这两种复制方式相互关系的研究在拟南芥中已经取得很多成果.白菜(Brassica rapa)属于十字花科(Brassicaceae)芸薹属(Brassca),是一类重要的经济作物,也是研究基因组多倍化和形态演化的模式植物.白菜基因组的测序与组装工作已经取得了重大成就,运用比较基因组学的方法,通过比较白菜与模式植物拟南芥,可以清晰鉴定白菜基因组经历的全基因组三倍化事件.同时,白菜与拟南芥同属于十字花科,有较近的起源关系和良好的基因组共线性关系.因此,拟南芥可以作为外群研究白菜全基因组三倍化以及串联重复之后基因的偏向性保留.结果发现,在白菜中存在物种特有的偏向性保留基因,即与环境刺激相关的基因和与激素相关的基因.  相似文献   

5.
芸薹属A,B和C基因组之间关系研究进展   总被引:4,自引:0,他引:4  
栗茂腾  张椿雨  刘列钊  余龙江 《遗传》2005,27(4):671-676
芸薹属A,B和C基因组之间的亲缘关系近年来取得了很大进展,大量细胞遗传学和分子生物学的研究结果表明A和C基因组之间的亲缘关系较A和B基因组以及B和C基因组之间更为接近。A,B和C基因组之间的比较基因组结果表明,这3个基因组是由更加原始物种进化而来的。在芸薹属基因组演化过程中发生了大量的染色体变异,如重复、缺失、重排等,从而造成了现在不同基因组之间的差别。最后,文章对芸薹属不同基因组和拟南芥基因组之间的亲缘关系进行了综述。  相似文献   

6.
拟南芥与油菜同属十字花科植物芸寡族,亲缘关系很近,基因组间的同源性很高,在用拟南芥EST克隆和油菜DNA克隆作探针定位了甘蓝型油菜一系列重要性状的基础上,对25个与油菜雄性不育恢复基因,硼高效利用基因,抗菌核病QTL及油菜种间杂种营养优势相关联的克隆进行了测序,在拟南芥基因组数据库中寻找到与这25个克隆高度同源的序列,根据这些高度同源序列在拟南芥染色体上的相位位置,将油菜DNA克隆整合到了拟南芥遗传图谱上,其中油菜硼高效基因BE1两侧的标记克隆整合在拟南芥第一染色体长臂一个较小的区段内,以该目标区段内的拟南芥EST克隆PA24为探针对甘蓝型油菜基因组比较作图,将该克隆定位在油菜连锁图BE1两侧标记之间,表明了利用基因组间的相互比较作图来精细定位芸薹属作物重要基因的可能性。  相似文献   

7.
GRAS家族是一类植物特有的转录调控因子, 已有报道表明该家族基因在植物生长发育和光信号转导过程中具有重要作用。目前在拟南芥(Arabidopsis thaliana)基因组中已鉴定了33个GRAS家族基因。利用功能基因组学和生物信息学手段,通过基因芯片数据挖掘和基因功能预测, 对拟南芥GRAS家族基因在渗透和干旱胁迫过程中的应答模式进行了初步探索, 提出了一类响应渗透胁迫和干旱胁迫的拟南芥GRAS家族基因。以SCL13为例, 利用基因芯片相关性和GO分析, 对其在渗透胁迫信号转导过程中可能的调控机制进行了预测和分析。这一研究将为阐明GRAS家族基因参与水分胁迫的分子机制提供新的思路, 同时也为植物抗逆分子育种提供候选基因。  相似文献   

8.
GRAS家族是一类植物特有的转录调控因子,已有报道表明该家族基因在植物生长发育和光信号转导过程中具有重要作用.目前在拟南芥(Arabidopsis thaliana)基因组中已鉴定了33个GRAS家族基因.利用功能基因组学和生物信息学手段,通过基因芯片数据挖掘和基因功能预测,对拟南芥GRAS家族基因在渗透和干旱胁迫过程中的应答模式进行了初步探索,提出了一类响应渗透胁迫和干旱胁迫的拟南芥GRAS家族基因.以SCL13为例,利用基因芯片相关性和GO分析,对其在渗透胁迫信号转导过程中可能的调控机制进行了预测和分析.这一研究将为阐明GRAS家族基因参与水分胁迫的分子机制提供新的思路,同时也为植物抗逆分子育种提供候选基因.  相似文献   

9.
水稻、拟南芥等模式植物基因组测序计划的完成,验证预测基因的功能成为植物功能基因组学的重要内容,基因打靶(gene targeting)技术在哺乳动物中的成功应用为该技术在植物上展现了广阔的应用前景。现对植物基因打靶技术的影响因素、基因打靶在植物中的应用现状作一介绍。  相似文献   

10.
小麦的比较基因组学和功能基因组学   总被引:12,自引:1,他引:11  
小麦是异源多倍体植物,具有大的染色体组,并且基因组中重复序列所占比例较高,这些特征限制了小麦基因组研究的进展。比较基因组学方法为运用模式植物进行小麦基因组学研究提供了一个操作平台。功能基因组学的研究集中于基因组中转录表达的部分,基因功能的确定是功能基因组学研究的主要内容。对比较基因组学在小麦基因组研究中的应用和小麦功能基因组学的研究内容和方法进行了综述。  相似文献   

11.
The model dicotyledonous plant, Arabidopsis thaliana , is closely related to Brassica crop species. It is intended that information concerning the genetic control of basic biological processes in Arabidopsis will be transferable to other species. Genome collinearity and its potential to facilitate the identification of candidate genes in Arabidopsis homologous to genes controlling important agronomic traits in Brassica was investigated. Genetic mapping in B. nigra identified two loci influencing flowering time (FT), with loci on linkage groups 2 and 8 explaining 53% and 12% of the total variation in FT, respectively. The CO gene exerts an important control over FT in A. thaliana , and B. nigra homologues of CO probably also play an important role in regulating FT. B. nigra homologues of CO were identified on linkage groups 2 and 8, the homologue on group 2 was coincident with the major locus controlling FT while the homologue on group 8 was within the 90% confidence interval of the weaker FT gene. The CO homologue on group 2 exhibits abundant allelic variation suggesting that it naturally controls a wide range of flowering times. Fine-scale A. thaliana/B. nigra comparative mapping demonstrated short-range collinearity between the genomes of Arabidopsis and Brassica . Eleven DNA fragments spaced over a 1.5 Mb contig in A. thaliana were used as RFLP probes in B. nigra . Three collinear representations of the A. thaliana contig were identified in B. nigra , with one interrupted by a large chromosomal inversion. Collinearity over this range will allow the resources generated by the Arabidopsis genome project to facilitate map-based cloning in Brassica crops.  相似文献   

12.
Lan TH  Paterson AH 《Genetics》2000,155(4):1927-1954
The enlarged inflorescence (curd) of cauliflower and broccoli provide not only a popular vegetable for human consumption, but also a unique opportunity for scientists who seek to understand the genetic basis of plant growth and development. By the comparison of quantitative trait loci (QTL) maps constructed from three different F(2) populations, we identified a total of 86 QTL that control eight curd-related traits in Brassica oleracea. The 86 QTL may reflect allelic variation in as few as 67 different genetic loci and 54 ancestral genes. Although the locations of QTL affecting a trait occasionally corresponded between different populations or between different homeologous Brassica chromosomes, our data supported other molecular and morphological data in suggesting that the Brassica genus is rapidly evolving. Comparative data enabled us to identify a number of candidate genes from Arabidopsis that warrant further investigation to determine if some of them might account for Brassica QTL. The Arabidopsis/Brassica system is an important example of both the challenges and opportunities associated with extrapolation of genomic information from facile models to large-genome taxa including major crops.  相似文献   

13.
U Lagercrantz 《Genetics》1998,150(3):1217-1228
Chromosome organization and evolution in the Brassicaceae family was studied using comparative linkage mapping. A total of 160 mapped Arabidopsis thaliana DNA fragments identified 284 homologous loci covering 751 cM in Brassica nigra. The data support that modern diploid Brassica species are descended from a hexaploid ancestor, and that the A. thaliana genome is similar in structure and complexity to those of each of the hypothetical diploid progenitors of the proposed hexaploid. Thus, the Brassica lineage probably went through a triplication after the divergence of the lineages leading to A. thaliana and B. nigra. These duplications were also accompanied by an exceptionally high rate of chromosomal rearrangements. The average length of conserved segments between A. thaliana and B. nigra was estimated at 8 cM. This estimate corresponds to approximately 90 rearrangements since the divergence of the two species. The estimated rate of chromosomal rearrangements is higher than any previously reported data based on comparative mapping. Despite the large number of rearrangements, fine-scale comparative mapping between model plant A. thaliana and Brassica crops is likely to result in the identification of a large number of genes that affect important traits in Brassica crops.  相似文献   

14.
Due to their relatedness to Arabidopsis thaliana (Arabidopsis), the cultivated Brassica species represent the first group of crops with which to evaluate comparative genomics approaches to understanding biological processes and manipulating traits. We have constructed a high-quality binary BAC library (JBo) from genomic DNA of Brassica oleracea var. alboglabra, in order to underpin such investigations. Using the Arabidopsis genome sequence and clones from the JBo library, we have analysed aspects of gene conservation and microsynteny between a 222 kb region of the genome of Arabidopsis and homoeologous segments of the genome of B. oleracea. All 19 predicted genes tested were found to hybridize to clones in the JBo library, indicating a high level of gene conservation. Further analyses and physical mapping with the BAC clones identified allowed us to construct clone contig maps and analyse in detail the gene content and organization in the set of paralogous segments identified in the genome of B. oleracea. Extensive divergence of gene content was observed, both between the B. oleracea paralogous segments and between them and their homoeologous segment within the genome of Arabidopsis. However, the genes present show highly conserved collinearity with their orthologues in the genome of Arabidopsis. We have identified one example of a Brassica gene in a non-collinear position and one rearrangement. Some of the genes not present in the discernible homoeologous regions appear to be located elsewhere in the B. oleracea genome. The implications of our findings for comparative map-based cloning of genes from crop species are discussed.  相似文献   

15.
Self-incompatibility in Brassica species is regulated by a set of S-locus genes: SLG, SRK, and SP11/SCR. In the vicinity of the S-locus genes, several expressed genes, SLL2 and SP2/ClpP, etc., were identified in B. campestris. Arabidopsis thaliana is a self-compatible Brassica relative, and its complete genome has been sequenced. From comparison of the genomic sequences between B. campestris and A. thaliana, microsynteny between gene clusters of Arabidopsis and Brassica SLL2 regions was observed, though the S-locus genes, SLG, SRK, and SP11/SCR were not found in the region of Arabidopsis. Almost all genes predicted in this region of Arabidopsis were expressed in both vegetative and reproductive organs, suggesting that the genes in the SLL2 region might not be related to self-incompatibility. Considering the recent speculation that the S-locus genes were translocated as a single unit between Arabidopsis and Brassica, the translocation might have occurred in the region between the SLL2 and SP7 genes.  相似文献   

16.
Aliphatic glucosinolates and their derived isothiocyanates are important secondary metabolites in crucifers. Some of these compounds have beneficial activities such as carcinogen detoxification, pesticidal and antifungal properties, but others are anti-nutritional; the differences are largely due to side chain modifications. We report the cloning and in planta functionality analysis of BoGSL-ALK, a gene whose protein product influences side-chain modifications in the glucosinolate pathway. Expression of this Brassica gene was demonstrated in Arabidopsis thaliana by assaying RNA activity and monitoring changes in the glucosinolate profiles in leaves and seeds of transformed plants. Dependent on the proposed uses of the crops under development, the ability to regulate BoGSL-ALK expression is a key step towards engineering Brassica crops with specific glucosinolate content.  相似文献   

17.
The cultivated Brassica species are the group of crops most closely related to Arabidopsis thaliana (Arabidopsis). They represent models for the application in crops of genomic information gained in Arabidopsis and provide an opportunity for the investigation of polyploid genome formation and evolution. The scientific literature contains contradictory evidence for the dynamics of the evolution of polyploid genomes. We aimed at overcoming the inherent complexity of Brassica genomes and clarify the effects of polyploidy on the evolution of genome microstructure in specific segments of the genome. To do this, we have constructed bacterial artificial chromosome (BAC) libraries from genomic DNA of B. rapa subspecies trilocularis (JBr) and B. napus var Tapidor (JBnB) to supplement an existing BAC library from B. oleracea. These allowed us to analyse both recent polyploidization (under 10,000 years in B. napus) and more ancient polyploidization events (ca. 20 Myr for B. rapa and B. oleracea relative to Arabidopsis), with an analysis of the events occurring on an intermediate time scale (over the ca. 4 Myr since the divergence of the B. rapa and B. oleracea lineages). Using the Arabidopsis genome sequence and clones from the JBr library, we have analysed aspects of gene conservation and microsynteny between six regions of the genome of B. rapa with the homoeologous regions of the genomes of B. oleracea and Arabidopsis. Extensive divergence of gene content was observed between the B. rapa paralogous segments and their homoeologous segments within the genome of Arabidopsis. A pattern of interspersed gene loss was identified that is similar, but not identical, to that observed in B. oleracea. The conserved genes show highly conserved collinearity with their orthologues across genomes, but a small number of species-specific rearrangements were identified. Thus the evolution of genome microstructure is an ongoing process. Brassica napus is a recently formed polyploid resulting from the hybridization of B. rapa (containing the Brassica A genome) and B. oleracea (containing the Brassica C genome). Using clones from the JBnB library, we have analysed the microstructure of the corresponding segments of the B. napus genome. The results show that there has been little or no change to the microstructure of the analysed segments of the Brassica A and C genomes as a consequence of the hybridization event forming natural B. napus. The observations indicate that, upon polyploid formation, these segments of the genome did not undergo a burst of evolution discernible at the scale of microstructure.  相似文献   

18.
The major difference between annual and biennial cultivars of oilseed Brassica napus and B. rapa is conferred by genes controlling vernalization-responsive flowering time. These genes were compared between the species by aligning the map positions of flowering time quantitative trait loci (QTLs) detected in a segregating population of each species. The results suggest that two major QTLs identified in B. rapa correspond to two major QTLs identified in B. napus. Since B. rapa is one of the hypothesized diploid parents of the amphidiploid B. napus, the vernalization requirement of B. napus probably originated from B. rapa. Brassica genes also were compared to flowering time genes in Arabidopsis thaliana by mapping RFLP loci with the same probes in both B. napus and Arabidopsis. The region containing one pair of Brassica QTLs was collinear with the top of chromosome 5 in A. thaliana where flowering time genes FLC, FY and CO are located. The region containing the second pair of QTLs showed fractured collinearity with several regions of the Arabidopsis genome, including the top of chromosome 4 where FRI is located. Thus, these Brassica genes may correspond to two genes (FLC and FRI) that regulate flowering time in the latest flowering ecotypes of Arabidopsis.  相似文献   

19.
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