小麦染色体的物理组织。

T Schwarzacher
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引用次数: 0

摘要

分子细胞遗传学将DNA序列的分子信息与其染色体组织相结合。使用全基因组DNA作为探针的基因组原位杂交被证明对杂交、同种异体物种和外来植物育种系中来自不同基因组的染色体的绘制特别有用。在中期和间期可以检测到外来染色体或染色体片段的数量和形态。该方法还提供了有关物种关系和密切相关物种之间共同或不同DNA序列分布的大量信息。染色染色体可以贯穿体细胞和减数分裂细胞周期的所有阶段,为减数分裂中染色体行为和配对提供新的信息。原位杂交与定义探针使特定的DNA序列的物理位置沿着染色体和分析特定染色体区域的长期组织进行检查。综合遗传、物理和功能图谱的生成将有助于了解谷物基因组的组织和结构。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
The physical organization of Triticeae chromosomes.

Molecular cytogenetics combines molecular information of DNA sequences with their chromosomal organization. Genomic in situ hybridization using total genomic DNA as a probe is proving particularly useful to paint chromosomes originating from different genomes in hybrids, alloploid species and alien plant breeding lines. Both the numbers and morphologies of alien chromosomes or chromosome segments can be detected at metaphase and interphase. The method also gives considerable information about species relationships and the distribution of common or diverse DNA sequences between closely related species. Painted chromosomes can be followed through all stages of the cell cycle of somatic and meiotic division, providing new information about chromosome behaviour and pairing at meiosis. In situ hybridization with defined probes enables the physical location of particular DNA sequences to be examined along chromosomes and the analysis of the long range organization of specific chromosome regions. The generation of an integrated genetical, physical and functional map will be useful for the understanding of the organization and structure of the cereal genome.

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