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人工核糖开关作为生物传感器的设计。

Design of Artificial Riboswitches as Biosensors.

机构信息

Bioinformatics Group, Department of Computer Science, and Interdisciplinary Center for Bioinformatics, University Leipzig, Härtelstraße 16-18, 04107 Leipzig, Germany.

Faculty of Computer Science, Research Group Bioinformatics and Computational Biology, University of Vienna, Währingerstraße 29, A-1090 Vienna, Austria.

出版信息

Sensors (Basel). 2017 Aug 30;17(9):1990. doi: 10.3390/s17091990.

Abstract

RNA aptamers readily recognize small organic molecules, polypeptides, as well as other nucleic acids in a highly specific manner. Many such aptamers have evolved as parts of regulatory systems in nature. Experimental selection techniques such as SELEX have been very successful in finding artificial aptamers for a wide variety of natural and synthetic ligands. Changes in structure and/or stability of aptamers upon ligand binding can propagate through larger RNA constructs and cause specific structural changes at distal positions. In turn, these may affect transcription, translation, splicing, or binding events. The RNA secondary structure model realistically describes both thermodynamic and kinetic aspects of RNA structure formation and refolding at a single, consistent level of modelling. Thus, this framework allows studying the function of natural riboswitches in silico. Moreover, it enables rationally designing artificial switches, combining essentially arbitrary sensors with a broad choice of read-out systems. Eventually, this approach sets the stage for constructing versatile biosensors.

摘要

RNA 适体能够以高度特异性的方式识别小分子有机化合物、多肽以及其他核酸。许多这样的适体是作为自然界调节系统的一部分进化而来的。SELEX 等实验选择技术在寻找各种天然和合成配体的人工适体方面非常成功。配体结合时适体结构和/或稳定性的变化可以在较大的 RNA 结构中传播,并在远端位置引起特定的结构变化。反过来,这些变化可能会影响转录、翻译、剪接或结合事件。RNA 二级结构模型在单个一致的建模水平上真实地描述了 RNA 结构形成和重折叠的热力学和动力学方面。因此,这个框架允许在计算机上研究天然核酶开关的功能。此外,它还能够合理设计人工开关,将基本任意的传感器与广泛的读出系统选择相结合。最终,这种方法为构建多功能生物传感器奠定了基础。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4193/5621056/a0f33133689a/sensors-17-01990-g001.jpg

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