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串联重复DNA序列结构中的编码域。

Code domains in tandem repetitive DNA sequence structures.

作者信息

Vogt P

机构信息

Section Molecular Human Genetics, University of Heidelberg, Federal Republic of Germany.

出版信息

Chromosoma. 1992 Oct;101(10):585-9. doi: 10.1007/BF00360534.

Abstract

Traditionally, many people doing research in molecular biology attribute coding properties to a given DNA sequence if this sequence contains an open reading frame for translation into a sequence of amino acids. This protein coding capability of DNA was detected about 30 years ago. The underlying genetic code is highly conserved and present in every biological species studied so far. Today, it is obvious that DNA has a much larger coding potential for other important tasks. Apart from coding for specific RNA molecules such as rRNA, snRNA and tRNA molecules, specific structural and sequence patterns of the DNA chain itself express distinct codes for the regulation and expression of its genetic activity. A chromatin code has been defined for phasing of the histone-octamer protein complex in the nucleosome. A translation frame code has been shown to exist that determines correct triplet counting at the ribosome during protein synthesis. A loop code seems to organize the single stranded interaction of the nascent RNA chain with proteins during the splicing process, and a splicing code phases successive 5' and 3' splicing sites. Most of these DNA codes are not exclusively based on the primary DNA sequence itself, but also seem to include specific features of the corresponding higher order structures. Based on the view that these various DNA codes are genetically instructive for specific molecular interactions or processes, important in the nucleus during interphase and during cell division, the coding capability of tandem repetitive DNA sequences has recently been reconsidered.

摘要

传统上,如果一个给定的DNA序列包含一个用于翻译成氨基酸序列的开放阅读框,许多从事分子生物学研究的人就会将编码特性归因于该序列。DNA的这种蛋白质编码能力大约在30年前被发现。其基本遗传密码高度保守,存在于迄今研究的每一个生物物种中。如今,很明显DNA在其他重要任务方面具有更大的编码潜力。除了编码特定的RNA分子,如rRNA、snRNA和tRNA分子外,DNA链本身的特定结构和序列模式还表达了其遗传活动调控和表达的独特密码。已经定义了一种染色质密码,用于确定核小体中组蛋白八聚体蛋白复合物的相位。已经证明存在一种翻译框架密码,它在蛋白质合成过程中决定核糖体上正确的三联体计数。一种环密码似乎在剪接过程中组织新生RNA链与蛋白质的单链相互作用,并且一种剪接密码确定连续的5'和3'剪接位点的相位。这些DNA密码大多不仅基于DNA一级序列本身,似乎还包括相应高级结构的特定特征。基于这些各种DNA密码对特定分子相互作用或过程具有遗传指导作用的观点,这些相互作用或过程在间期和细胞分裂期间在细胞核中很重要,最近人们重新审视了串联重复DNA序列的编码能力。

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