探测逆转录病毒和反转录转座子基因组结构:未来事物的“形状”。

Molecular biology international Pub Date : 2012-01-01 Epub Date: 2012-05-17 DOI:10.1155/2012/530754
Joanna Sztuba-Solinska, Stuart F J Le Grice
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引用次数: 6

摘要

了解与生物学功能相关的RNA结构的细微差别仍然是逆转录病毒研究和基于RNA的治疗方法开发的一个巨大挑战,这是一个对防治艾滋病毒感染特别重要的领域。尽管各种化学和酶促RNA探测技术已经成功应用了30多年,但它们主要是询问已经从其生物环境中移除的小(100-500 nt) RNA,潜在地消除了可能发挥关键调节作用的远程第三级相互作用(如接吻环和假结)。通过引物延伸分析选择性2'羟基酰化(SHAPE)是美利诺及其同事最近首创的一种简单、用户友好的技术,能够用单一试剂分析RNA结构,并结合自动毛细管电泳,可以在几周内分析整个10,000个核苷酸的RNA基因组。尽管有这些明显的优势,SHAPE本质上提供了一个核苷酸“连接图”,将其转换为3-D结构需要各种互补的方法。本文总结了SHAPE对我们理解逆转录病毒基因组结构的贡献,为解决其局限性而开发的技术修改,以及未来的挑战。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Probing Retroviral and Retrotransposon Genome Structures: The "SHAPE" of Things to Come.

Probing Retroviral and Retrotransposon Genome Structures: The "SHAPE" of Things to Come.

Probing Retroviral and Retrotransposon Genome Structures: The "SHAPE" of Things to Come.

Probing Retroviral and Retrotransposon Genome Structures: The "SHAPE" of Things to Come.
Understanding the nuances of RNA structure as they pertain to biological function remains a formidable challenge for retrovirus research and development of RNA-based therapeutics, an area of particular importance with respect to combating HIV infection. Although a variety of chemical and enzymatic RNA probing techniques have been successfully employed for more than 30 years, they primarily interrogate small (100–500 nt) RNAs that have been removed from their biological context, potentially eliminating long-range tertiary interactions (such as kissing loops and pseudoknots) that may play a critical regulatory role. Selective 2′ hydroxyl acylation analyzed by primer extension (SHAPE), pioneered recently by Merino and colleagues, represents a facile, user-friendly technology capable of interrogating RNA structure with a single reagent and, combined with automated capillary electrophoresis, can analyze an entire 10,000-nucleotide RNA genome in a matter of weeks. Despite these obvious advantages, SHAPE essentially provides a nucleotide “connectivity map,” conversion of which into a 3-D structure requires a variety of complementary approaches. This paper summarizes contributions from SHAPE towards our understanding of the structure of retroviral genomes, modifications to which technology that have been developed to address some of its limitations, and future challenges.
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