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异质动力学的结构基础:对发夹状核酶进行重新设计

Structural basis for heterogeneous kinetics: reengineering the hairpin ribozyme.

作者信息

Esteban J A, Walter N G, Kotzorek G, Heckman J E, Burke J M

机构信息

Markey Center for Molecular Genetics, Department of Microbiology and Molecular Genetics, The University of Vermont, Burlington, VT 05405, USA.

出版信息

Proc Natl Acad Sci U S A. 1998 May 26;95(11):6091-6. doi: 10.1073/pnas.95.11.6091.

Abstract

The RNA cleavage reaction catalyzed by the hairpin ribozyme shows biphasic kinetics, and chase experiments show that the slow phase of the reaction results from reversible substrate binding to an inactive conformational isomer. To investigate the structural basis for the heterogeneous kinetics, we have developed an enzymatic RNA modification method that selectively traps substrate bound to the inactive conformer and allows the two forms of the ribozyme-substrate complex to be separated and analyzed by using both physical and kinetic strategies. The inactive form of the complex was trapped by the addition of T4 RNA ligase to a cleavage reaction, resulting in covalent linkage of the 5' end of the substrate to the 3' end of the ribozyme and in selective and quantitative ablation of the slow kinetic phase of the reaction. This result indicates that the inactive form of the ribozyme-substrate complex can adopt a conformation in which helices 2 and 3 are coaxially stacked, whereas the active form does not have access to this conformation, because of a sharp bend at the helical junction that presumably is stabilized by inter-domain tertiary contacts required for catalytic activity. These results were used to improve the activity of the hairpin ribozyme by designing new interfaces between the two domains, one containing a non-nucleotidic orthobenzene linkage and the other replacing the two-way junction with a three-way junction. Each of these modified ribozymes preferentially adopts the active conformation and displays improved catalytic efficiency.

摘要

发夹状核酶催化的RNA切割反应呈现双相动力学,追踪实验表明,该反应的慢相是由底物与无活性构象异构体的可逆结合所致。为了研究这种异质动力学的结构基础,我们开发了一种酶促RNA修饰方法,该方法可选择性捕获与无活性构象体结合的底物,并能通过物理和动力学策略分离和分析核酶-底物复合物的两种形式。通过在切割反应中添加T4 RNA连接酶来捕获复合物的无活性形式,这导致底物的5'端与核酶的3'端共价连接,并选择性且定量地消除了反应的慢动力学相。该结果表明,核酶-底物复合物的无活性形式可采用螺旋2和螺旋3同轴堆积的构象,而活性形式无法形成这种构象,因为螺旋连接处有一个急剧的弯曲,推测该弯曲由催化活性所需的结构域间三级相互作用稳定。这些结果被用于通过设计两个结构域之间的新界面来提高发夹状核酶的活性,其中一个界面含有非核苷酸邻苯二酚连接键,另一个界面用三向连接取代双向连接。这些修饰后的核酶均优先采用活性构象,并表现出更高的催化效率。

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