Balke Darko, Wichert Claudia, Appel Bettina, Müller Sabine
Ernst Moritz Arndt Universität Greifswald, Institut für Biochemie, Felix Hausdorff Str. 4, 17487, Greifswald, Germany.
Appl Microbiol Biotechnol. 2014 Apr;98(8):3389-99. doi: 10.1007/s00253-014-5528-7. Epub 2014 Feb 5.
Over the past two decades, RNA catalysis has become a major topic of research. On the one hand, naturally occurring ribozymes have been extensively investigated concerning their structure and functional mechanisms. On the other hand, the knowledge gained from these studies has been used to engineer ribozyme variants with novel properties. In addition to RNA engineering by means of rational design, powerful techniques for selection of ribozymes from large pools of random sequences were developed and have been widely used for the generation of functional nucleic acids. RNA as catalyst has been accompanied by DNA, and nowadays a large number of ribozymes and deoxyribozymes are available. The field of ribozyme generation and selection has been extensively reviewed. With respect to the field of biotechnology, RNA and DNA catalysts working on peptides or proteins, or which are designed to control protein synthesis, are of utmost importance and interest. Therefore, in this review, we will focus on engineered nucleic acid catalysts for peptide synthesis and modification as well as for intracellular control of gene expression.
在过去二十年中,RNA催化已成为一个主要的研究课题。一方面,天然存在的核酶已就其结构和功能机制进行了广泛研究。另一方面,从这些研究中获得的知识已被用于设计具有新特性的核酶变体。除了通过合理设计进行RNA工程外,还开发了从大量随机序列中选择核酶的强大技术,并已广泛用于生成功能性核酸。RNA作为催化剂一直伴随着DNA,如今已有大量的核酶和脱氧核酶。核酶生成和选择领域已得到广泛综述。就生物技术领域而言,作用于肽或蛋白质或旨在控制蛋白质合成的RNA和DNA催化剂至关重要且备受关注。因此,在本综述中,我们将重点关注用于肽合成和修饰以及细胞内基因表达控制的工程化核酸催化剂。