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Integration of the cytogenetic map with the draft human genome sequence.

机译:细胞遗传图谱与人类基因组草图序列的整合。

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摘要

Chemically staining metaphase chromosomes resulting in an alternating dark and light banding pattern provide a tool by which abnormalities in chromosomes from diseased cells can be identified. The localization of these aberrations to a chromosomal region provides clues as to which gene or genes may contribute to a particular disease. With the sequencing of the human genome, it became critical to determine the positions of these cytogenetic bands within the sequence in order to take advantage of vast amount of information now anchored to the sequence, especially the locations of genes. The molecular basis of cytogenetic bands is not well understood, therefore their positions cannot be determined solely based on sequence information. We developed a dynamic programming algorithm that employs results from approximately 9500 fluorescence in situ hybridization experiments to approximate the locations of the 850 high-resolution bands in the June 2002 version of the draft human genome sequence. These band predictions support previously identified correlations between band stain intensity and certain structural characteristics of chromosomes, namely GC content, repeat structure content, CpG island density, gene density and degree of condensation.
机译:化学染色的中期染色体导致交替的暗带和亮带模式,提供了一种工具,通过该工具可以识别患病细胞的染色体异常。这些像差在染色体区域的定位提供了有关哪些基因可能导致特定疾病的线索。随着人类基因组的测序,确定这些细胞遗传学带在序列中的位置变得至关重要,以利用现在锚定在序列上的大量信息,尤其是基因的位置。细胞遗传学带的分子基础尚不完全清楚,因此不能仅根据序列信息确定其位置。我们开发了一种动态编程算法,该算法利用了大约9500个荧光原位杂交实验的结果来估计2002年6月版人类基因组序列草案中850个高分辨率条带的位置。这些条带预测支持先前确定的条带染色强度与染色体的某些结构特征之间的相关性,即GC含量,重复结构含量,CpG岛密度,基因密度和缩合度。

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