首页> 外文期刊>Medical hypotheses >Novel drug discovery and molecular biological methods, via DNA, RNA and protein changes using structure-function transitions: Transitional structural chemogenomics, transitional structural chemoproteomics and novel multi-stranded nucleic acid microar
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Novel drug discovery and molecular biological methods, via DNA, RNA and protein changes using structure-function transitions: Transitional structural chemogenomics, transitional structural chemoproteomics and novel multi-stranded nucleic acid microar

机译:利用结构-功能转换,通过DNA,RNA和蛋白质变化的新型药物发现和分子生物学方法:过渡结构化学基因组学,过渡结构化学蛋白质组学和新型多链核酸微阵列

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Nucleic acids and proteins are dynamic molecules that undergo structural changes which control gene expression. The authors have developed two novel techniques, viz., transitional structural chemogenomics and transitional structural chemoproteomics. Transitional structural chemogenomics is used to regulate gene expression, employing ultrasensitive small-molecule drugs targeted toward nucleic acids. Gene expression can be regulated by using chemicals to target transitional changes in the helical conformations of single-stranded (ss-) and double-stranded (ds-) DNA (e.g., B- to Z-DNA), and RNA (e.g., A- to Z-RNA). This method also targets alternative types of ds- and ss-DNA and RNA (e.g., cruciform DNA), and other multi-stranded nucleic acids (e.g., triplex-DNA). Our second technique, transitional structural chemoproteomics, targets a protein before, during or after post-translational modifications which alters its structure and function. Both a proteins' structured and unstructured regions are targeted. These two novel methods represent the next step in the evolution of chemical genomics and chemical proteomics. They allow for two approaches to regulate gene expression, viz., turning genes "on", "off" or variable control (e.g., dimmer switch). This article also discusses the confusion that exists between the term chemical genomics and other related subdisciplines, such as chemical proteomics. Additionally, we have developed a novel multi-stranded DNA, RNA and plasmid microarray which immobilizes intact nondenatured ds-DNA, alternative, and other multiple-stranded nucleic acids onto a substrate surface. This technique represents the next generation of nucleic acid microarrays, which will enhance the characterization of nucleic acids and the drug discovery process. These three novel techniques allow for a multifaceted approach that will greatly enhance the success of molecular biology, the "omics" and drug discovery. They represent the next era of gene expression tools.
机译:核酸和蛋白质是动态分子,它们经受控制基因表达的结构变化。作者开发了两种新技术,即过渡结构化学基因组学和过渡结构化学蛋白质组学。过渡结构化学基因组学用于调控基因表达,采用针对核酸的超灵敏小分子药物。基因表达可以通过使用化学物质来调节,以靶向单链(ss-)和双链(ds-)DNA(例如,B-至Z-DNA)和RNA(例如,A -到Z-RNA)。该方法还靶向ds-和ss-DNA和RNA的替代类型(例如十字形DNA),以及其他多链核酸(例如三链DNA)。我们的第二种技术是过渡结构化学蛋白质组学,在翻译后修饰之前,之中或之后靶向蛋白质,从而改变其结构和功能。蛋白质的结构化和非结构化区域都是目标。这两种新方法代表了化学基因组学和化学蛋白质组学发展的下一步。它们允许调节基因表达的两种方法,即,将基因“打开”,“关闭”或可变控制(例如,调光开关)。本文还讨论了化学基因组学与其他相关子学科(例如化学蛋白质组学)之间存在的混淆。此外,我们开发了一种新颖的多链DNA,RNA和质粒微阵列,可将完整的未变性ds-DNA,替代核酸和其他多链核酸固定在基质表面上。该技术代表了下一代核酸微阵列,它将增强核酸的表征和药物开发过程。这三种新技术允许采用多方面的方法,这将大大增强分子生物学,“组学”和药物发现的成功。它们代表了基因表达工具的下一个时代。

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