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类病毒加工:从切割到连接的转变由从四环结构到环E构象的变化驱动。

Viroid processing: switch from cleavage to ligation is driven by a change from a tetraloop to a loop E conformation.

作者信息

Baumstark T, Schröder A R, Riesner D

机构信息

Institut für Physikalische Biologie, Heinrich-Heine-Universität Düsseldorf, Germany.

出版信息

EMBO J. 1997 Feb 3;16(3):599-610. doi: 10.1093/emboj/16.3.599.

Abstract

A longer-than-unit-length transcript of potato spindle tuber viroid is correctly processed in a potato nuclear extract only if the central conserved region is folded into a multi-helix junction containing at least one GNRA tetraloop-hairpin. The cleavage-ligation site between G95 and G96 was mapped with S1 nuclease and primer extension. The structural motifs involved in the processing mechanism were analysed by UV crosslinking, chemical mapping, phylogenetic comparison and thermodynamic calculations. For processing, the first cleavage occurs within the stem of the GNRA tetraloop; a local conformational change switches the tetraloop motif into a loop E motif, stabilizing a base-paired 5' end. The second cleavage yields unit-length linear intermediates, whose 3' end is also base-paired and most probably coaxially stacked in optimum juxtaposition to the 5' end. They are ligated to mature circles autocatalytically, with low efficiency, or enzymatically, with high efficiency.

摘要

只有当马铃薯纺锤块茎类病毒的中心保守区域折叠成包含至少一个GNRA四环-发夹的多螺旋连接时,其长于单位长度的转录本才能在马铃薯核提取物中正确加工。用S1核酸酶和引物延伸法确定了G95和G96之间的切割-连接位点。通过紫外线交联、化学图谱分析、系统发育比较和热力学计算分析了加工机制中涉及的结构基序。为了进行加工,第一次切割发生在GNRA四环的茎内;局部构象变化将四环基序转变为环E基序,稳定了碱基配对的5'端。第二次切割产生单位长度的线性中间体,其3'端也进行了碱基配对,并且很可能与5'端以最佳并列方式同轴堆积。它们以低效率自动催化连接成成熟环,或以高效率酶促连接成成熟环。

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