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紫花苜蓿和豌豆之间的比较图谱

Comparative mapping between Medicago sativa and Pisum sativum.

作者信息

Kaló P, Seres A, Taylor S A, Jakab J, Kevei Z, Kereszt A, Endre G, Ellis T H N, Kiss G B

机构信息

Institute of Genetics, Agricultural Biotechnology Center, Szent-Györgyi A. u. 4, 2100 Gödöllo, Hungary.

出版信息

Mol Genet Genomics. 2004 Oct;272(3):235-46. doi: 10.1007/s00438-004-1055-z. Epub 2004 Sep 1.

DOI:10.1007/s00438-004-1055-z
PMID:15340836
Abstract

Comparative genome analysis has been performed between alfalfa (Medicago sativa) and pea (Pisum sativum), species which represent two closely related tribes of the subfamily Papilionoideae with different basic chromosome numbers. The positions of genes on the most recent linkage map of diploid alfalfa were compared to those of homologous loci on the combined genetic map of pea to analyze the degree of co-linearity between their linkage groups. In addition to using unique genes, analysis of the map positions of multicopy (homologous) genes identified syntenic homologs (characterized by similar positions on the maps) and pinpointed the positions of non-syntenic homologs. The comparison revealed extensive conservation of gene order between alfalfa and pea. However, genetic rearrangements (due to breakage and reunion) were localized which can account for the difference in chromosome number (8 for alfalfa and 7 for pea). Based on these genetic events and our increasing knowledge of the genomic structure of pea, it was concluded that the difference in genome size between the two species (the pea genome is 5- to 10-fold larger than that of alfalfa) is not a consequence of genome duplication in pea. The high degree of synteny observed between pea and Medicago loci makes further map-based cloning of pea genes based on the genome resources now available for M. truncatula a promising strategy.

摘要

已对紫花苜蓿(Medicago sativa)和豌豆(Pisum sativum)进行了比较基因组分析,这两个物种代表蝶形花亚科中两个亲缘关系密切的族,具有不同的基本染色体数。将二倍体紫花苜蓿最新连锁图谱上基因的位置与豌豆综合遗传图谱上同源位点的位置进行比较,以分析它们连锁群之间的共线性程度。除了使用单拷贝基因外,对多拷贝(同源)基因的图谱位置分析还鉴定出了同线同源物(其特征是在图谱上位置相似),并确定了非同线同源物的位置。比较结果显示紫花苜蓿和豌豆之间基因顺序具有广泛的保守性。然而,也发现了局部的基因重排(由于断裂和重连),这可以解释染色体数目的差异(紫花苜蓿为8条,豌豆为7条)。基于这些遗传事件以及我们对豌豆基因组结构的不断了解,得出的结论是,这两个物种之间基因组大小的差异(豌豆基因组比紫花苜蓿基因组大5至10倍)并非豌豆基因组加倍的结果。豌豆和苜蓿基因座之间观察到的高度同线性,使得基于目前可用于蒺藜苜蓿的基因组资源,进一步对豌豆基因进行基于图谱的克隆成为一种有前景的策略。

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本文引用的文献

1
RFLP variation in diploid and tetraploid alfalfa.二倍体和四倍体紫花苜蓿的 RFLP 变异。
Theor Appl Genet. 1991 Nov;83(1):89-96. doi: 10.1007/BF00229230.
2
RFLP maps of potato and their alignment with the homoeologous tomato genome.马铃薯的 RFLP 图谱及其与同源番茄基因组的比对。
Theor Appl Genet. 1991 Nov;83(1):49-57. doi: 10.1007/BF00229225.
3
Comparative genome analysis of mungbean (Vigna radiata L. Wilczek) and cowpea (V. unguiculata L. Walpers) using RFLP mapping data.利用 RFLP 图谱数据进行绿豆(Vigna radiata L. Wilczek)和豇豆(V. unguiculata L. Walpers)的比较基因组分析。
J Exp Bot. 2022 Jun 24;73(12):3978-3990. doi: 10.1093/jxb/erac132.
4
The Cowpea Kinome: Genomic and Transcriptomic Analysis Under Biotic and Abiotic Stresses.豇豆激酶组:生物和非生物胁迫下的基因组和转录组分析
Front Plant Sci. 2021 Jun 14;12:667013. doi: 10.3389/fpls.2021.667013. eCollection 2021.
5
Genetic and Molecular Genetic Basis of Nuclear-Plastid Incompatibilities.核质体不相容性的遗传和分子遗传基础。
Plants (Basel). 2019 Dec 23;9(1):23. doi: 10.3390/plants9010023.
6
First genetic linkage map of based on RNA sequencing-derived markers: Key tool for genetic mapping of disease resistance.基于RNA测序衍生标记构建的首个遗传连锁图谱:抗病性基因定位的关键工具。
Hortic Res. 2018 Sep 1;5:45. doi: 10.1038/s41438-018-0047-9. eCollection 2018.
7
High-Throughput RNA-Seq Data Analysis of the Single Nucleotide Polymorphisms (SNPs) and Zygomorphic Flower Development in Pea (Pisum sativum L.).豌豆(Pisum sativum L.)中单核苷酸多态性(SNPs)和左右对称花发育的高通量 RNA-Seq 数据分析。
Int J Mol Sci. 2017 Dec 20;18(12):2710. doi: 10.3390/ijms18122710.
8
Pea Marker Database (PMD) - A new online database combining known pea (Pisum sativum L.) gene-based markers.豌豆标记数据库(PMD)——一个整合了已知基于豌豆(Pisum sativum L.)基因的标记的新在线数据库。
PLoS One. 2017 Oct 26;12(10):e0186713. doi: 10.1371/journal.pone.0186713. eCollection 2017.
9
Genetic Variation Controlling Wrinkled Seed Phenotypes in Pisum: How Lucky Was Mendel?控制豌豆皱粒种子表型的遗传变异:孟德尔有多幸运?
Int J Mol Sci. 2017 Jun 6;18(6):1205. doi: 10.3390/ijms18061205.
10
Microsatellite markers: what they mean and why they are so useful.微卫星标记:它们的含义以及为何如此有用。
Genet Mol Biol. 2016 Jul-Sep;39(3):312-28. doi: 10.1590/1678-4685-GMB-2016-0027. Epub 2016 Aug 4.
Theor Appl Genet. 1993 Aug;86(7):797-810. doi: 10.1007/BF00212605.
4
Development of an RFLP map in diploid alfalfa.双体紫花苜蓿 RFLP 图谱的构建。
Theor Appl Genet. 1993 Apr;86(2-3):329-32. doi: 10.1007/BF00222097.
5
Genome conservation among three legume genera detected with DNA markers.利用 DNA 标记检测到三个豆科属间的基因组保守性。
Genome. 1995 Oct;38(5):928-37. doi: 10.1139/g95-122.
6
The relationship between genetic and cytogenetic maps of pea. II. Physical maps of linkage mapping populations.豌豆的遗传和细胞遗传学图谱之间的关系。II. 连锁图谱群体的物理图谱。
Genome. 1997 Oct;40(5):755-69. doi: 10.1139/g97-798.
7
RFLP Maps Based on a Common Set of Clones Reveal Modes of Chromosomal Evolution in Potato and Tomato.基于一组共同克隆的 RFLP 图谱揭示了马铃薯和番茄的染色体进化模式。
Genetics. 1988 Dec;120(4):1095-103. doi: 10.1093/genetics/120.4.1095.
8
Conservation of gene repertoire but not gene order in pepper and tomato.辣椒和番茄中基因库的保守性而非基因顺序的保守性。
Proc Natl Acad Sci U S A. 1988 Sep;85(17):6419-23. doi: 10.1073/pnas.85.17.6419.
9
Estimating genome conservation between crop and model legume species.估算作物与豆科模式植物物种之间的基因组保守性。
Proc Natl Acad Sci U S A. 2004 Oct 26;101(43):15289-94. doi: 10.1073/pnas.0402251101. Epub 2004 Oct 15.
10
The Arabidopsis genome sequence as a tool for genome analysis in Brassicaceae. A comparison of the Arabidopsis and Capsella rubella genomes.拟南芥基因组序列作为十字花科基因组分析的工具。拟南芥与风花菜基因组的比较。
Plant Physiol. 2004 Jun;135(2):735-44. doi: 10.1104/pp.104.040030.