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Isochores and replication time zones: a perfect match

机译:等时线和复制时区:完美匹配

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The mammalian genome is not a random sequence but shows a specific, evolutionarily conserved structure that becomes manifest in its isochore pattern. Isochores, i.e. stretches of DNA with a distinct sequence composition and thus a specific GC content, cause the chromosomal banding pattern. This fundamental level of genome organization is related to several functional features like the replication timing of a DNA sequence. GC richness of genomic regions generally corresponds to an early replication time during S phase. Recently, we demonstrated this interdependency on a molecular level for an abrupt transition from a GC-poor isochore to a GC-rich one in the NF1 gene region; this isochore boundary also separates late from early replicating chromatin. Now, we analyzed another genomic region containing four isochores separated by three sharp isochore transitions. Again, the GC-rich isochores were found to be replicating early, the GC-poor isochores late in S phase; one of the replication time zones was discovered to consist of one single replicon. At the boundaries between isochores, that all show no special sequence elements, the replication machinery stopped for several hours. Thus, our results emphasize the importance of isochores as functional genomic units, and of isochore transitions as genomic landmarks with a key function for chromosome organization and basic biological properties. Copyright (c) 2007 S. Karger AG, Basel
机译:哺乳动物基因组不是随机序列,而是显示出一种特定的,进化保守的结构,该结构以等时线模式表现出来。等时线,即具有不同序列组成并因此具有特定GC含量的DNA片段,会导致染色体谱带模式。基因组组织的基本水平与几个功能特征有关,例如DNA序列的复制时间。基因组区域的GC丰富度通常对应于S期的早期复制时间。最近,我们在分子水平上证明了这种相互依赖性,即从NF1基因区域中的贫GC等速突变到富含GC的突变。该等时线边界也与早期复制的染色质分开。现在,我们分析了另一个基因组区域,其中包含由三个尖锐的等时线过渡隔开的四个等时线。再次,富含GC的等时线被发现在早期复制,而缺乏GC的等时线则在S期晚期复制。发现复制时区之一由一个单个复制子组成。在等位线之间的边界(都没有显示特殊的序列元素)处,复制机制停止了几个小时。因此,我们的结果强调了等时线作为功能基因组单位的重要性,以及等时线过渡作为具有染色体组织和基本生物学特性的关键功能的基因组标志的重要性。版权所有(c)2007 S.Karger AG,巴塞尔

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