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哺乳动物前体mRNA聚腺苷酸化信号的下游元件:一级、二级和高级结构

Downstream elements of mammalian pre-mRNA polyadenylation signals: primary, secondary and higher-order structures.

作者信息

Zarudnaya Margarita I, Kolomiets Iryna M, Potyahaylo Andriy L, Hovorun Dmytro M

机构信息

Molecular Biophysics Department, Institute of Molecular Biology and Genetics, National Academy of Sciences of Ukraine, 150, vul. Zabolotnoho, Kyiv, 03143, Ukraine.

出版信息

Nucleic Acids Res. 2003 Mar 1;31(5):1375-86. doi: 10.1093/nar/gkg241.

Abstract

Primary, secondary and higher-order structures of downstream elements of mammalian pre-mRNA polyadenylation signals [poly(A) signals] are re viewed. We have carried out a detailed analysis on our database of 244 human pre-mRNA poly(A) signals in order to characterize elements in their downstream regions. We suggest that the downstream region of the mammalian pre-mRNA poly(A) signal consists of various simple elements located at different distances from each other. Thus, the downstream region is not described by any precise consensus. Searching our database, we found that approximately 80% of pre-mRNAs with the AAUAAA or AUUAAA core upstream elements contain simple downstream elements, consisting of U-rich and/or 2GU/U tracts, the former occurring approximately 2-fold more often than the latter. Approximately one-third of the pre-mRNAs analyzed here contain sequences that may form G-quadruplexes. A substantial number of these sequences are located immediately downstream of the poly(A) signal. A possible role of G-rich sequences in the polyadenylation process is discussed. A model of the secondary structure of the SV40 late pre-mRNA poly(A) signal downstream region is presented.

摘要

本文综述了哺乳动物前体mRNA聚腺苷酸化信号(poly(A)信号)下游元件的一级、二级和高级结构。我们对包含244个人类前体mRNA聚(A)信号的数据库进行了详细分析,以表征其下游区域的元件。我们认为,哺乳动物前体mRNA聚(A)信号的下游区域由彼此距离不同的各种简单元件组成。因此,下游区域没有任何精确的共有序列描述。在我们的数据库中搜索发现,约80%具有AAUAAA或AUUAAA核心上游元件的前体mRNA包含简单的下游元件,这些元件由富含U的序列和/或2GU/U片段组成,前者出现的频率约为后者的2倍。本文分析的前体mRNA中约三分之一包含可能形成G-四链体的序列。其中大量序列位于聚(A)信号的紧邻下游。文中讨论了富含G的序列在聚腺苷酸化过程中的可能作用。本文还给出了SV40晚期前体mRNA聚(A)信号下游区域的二级结构模型。

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