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高粱3号染色体与水稻1号染色体基于序列的比对揭示了基因顺序的广泛保守性以及一次主要的染色体重排。

Sequence-based alignment of sorghum chromosome 3 and rice chromosome 1 reveals extensive conservation of gene order and one major chromosomal rearrangement.

作者信息

Klein Patricia E, Klein Robert R, Vrebalov Julia, Mullet John E

机构信息

Institute for Plant Genomics and Biotechnology, Texas A&M University, College Station, TX 77843, USA.

出版信息

Plant J. 2003 Jun;34(5):605-21. doi: 10.1046/j.1365-313x.2003.01751.x.

DOI:10.1046/j.1365-313x.2003.01751.x
PMID:12787243
Abstract

The completed rice genome sequence will accelerate progress on the identification and functional classification of biologically important genes and serve as an invaluable resource for the comparative analysis of grass genomes. In this study, methods were developed for sequence-based alignment of sorghum and rice chromosomes and for refining the sorghum genetic/physical map based on the rice genome sequence. A framework of 135 BAC contigs spanning approximately 33 Mbp was anchored to sorghum chromosome 3. A limited number of sequences were collected from 118 of the BACs and subjected to BLASTX analysis to identify putative genes and BLASTN analysis to identify sequence matches to the rice genome. Extensive conservation of gene content and order between sorghum chromosome 3 and the homeologous rice chromosome 1 was observed. One large-scale rearrangement was detected involving the inversion of an approximately 59 cM block of the short arm of sorghum chromosome 3. Several small-scale changes in gene collinearity were detected, indicating that single genes and/or small clusters of genes have moved since the divergence of sorghum and rice. Additionally, the alignment of the sorghum physical map to the rice genome sequence allowed sequence-assisted assembly of an approximately 1.6 Mbp sorghum BAC contig. This streamlined approach to high-resolution genome alignment and map building will yield important information about the relationships between rice and sorghum genes and genomic segments and ultimately enhance our understanding of cereal genome structure and evolution.

摘要

完整的水稻基因组序列将加速具有生物学重要意义的基因的鉴定和功能分类进程,并成为禾本科植物基因组比较分析的宝贵资源。在本研究中,开发了基于序列的高粱和水稻染色体比对方法,以及基于水稻基因组序列完善高粱遗传/物理图谱的方法。一个由135个BAC重叠群组成、跨度约33兆碱基对的框架被定位到高粱3号染色体上。从118个BAC中收集了有限数量的序列,并进行BLASTX分析以鉴定推定基因,进行BLASTN分析以鉴定与水稻基因组的序列匹配。观察到高粱3号染色体与同源水稻1号染色体之间基因含量和顺序的广泛保守性。检测到一个大规模重排,涉及高粱3号染色体短臂上一个约59厘摩区域的倒位。检测到基因共线性的几个小规模变化,表明自高粱和水稻分化以来,单个基因和/或小基因簇发生了移动。此外,高粱物理图谱与水稻基因组序列的比对使得一个约1.6兆碱基对的高粱BAC重叠群得以进行序列辅助组装。这种用于高分辨率基因组比对和图谱构建的简化方法将产生有关水稻和高粱基因及基因组片段之间关系的重要信息,并最终增进我们对谷类基因组结构和进化的理解。

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