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DNA helix: the importance of being GC-rich

机译:DNA螺旋:富含GC的重要性

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A new explanation for the emergence of heavy (GC-rich) isochores is proposed, based on the study of thermostability, bendability, ability to B-Z transition and curvature of the DNA helix. The absolute values of thermostability, bendability and ability to B-Z transition correlated positively with GC content, whereas curvature correlated negatively. The relative values of these parameters were determined as compared to randomized sequences. In genes and intergenic spacers of warm-blooded animals, both the relative bendability and ability to B-Z transition increased with elevation of GC content, whereas the relative thermostability and curvature decreased. The usage of synonymous codons in GC-rich genes was also found to augment bendability and ability to B-Z transition and to reduce thermostability of DNA ( as compared to synonymous codons with the same GC content). The analysis of transposable elements (Alu and B2 repeats in the human and mouse) showed that the level of their divergence from the consensus sequence positively correlated with relative bendability and ability to B-Z transition and negatively with relative thermostability. The bendability and ability to B-Z transition are known to relate to open chromatin and active transcription, whereas curvature facilitates chromatin condensation. Because heavy isochores are known to be gene-rich and show a high level of transcription, it is suggested here that isochores arose not as an adaptation to elevated temperature but because of a certain grade of general organization and correspondingly advanced level of genomic organization, reflected in genome structuring, with physical properties of DNA in the gene-rich regions being optimized for active transcription and in the gene-poor regions for chromatin condensation ('transcription/grade' concept).
机译:基于对热稳定性,可弯曲性,B-Z跃迁能力和DNA螺旋曲率的研究,提出了重(富含GC的)等时线团出现的新解释。热稳定性,可弯曲性和B-Z转变能力的绝对值与GC含量呈正相关,而曲率则呈负相关。与随机序列相比,确定了这些参数的相对值。在温血动物的基因和基因间隔区中,相对弯曲性和向B-Z过渡的能力均随GC含量的增加而增加,而相对热稳定性和曲率则下降。还发现在富含GC的基因中使用同义密码子可增强弯曲性和向B-Z过渡的能力,并降低DNA的热稳定性(与具有相同GC含量的同义密码子相比)。对转座因子(人和小鼠中Alu和B2重复序列)的分析表明,它们与共有序列的偏离水平与相对弯曲性和B-Z过渡能力成正相关,与相对热稳定性呈负相关。已知可弯曲性和B-Z过渡的能力与开放的染色质和活跃的转录有关,而曲率有助于染色质的凝聚。因为已知重等位基因富含基因并且显示出高水平的转录,所以在这里建议等重基因的产生不是由于对高温的适应,而是由于一定等级的一般组织和相应高级的基因组组织,反映了在基因组构建中,优化了在富基因区域中的DNA的物理特性以进行主动转录,而在缺乏基因的区域中进行染色质浓缩(“转录/等级”概念)。

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