Entropy-Driven Folding of an RNA Helical Junction: An Isothermal Titration Calorimetric Analysis of the Hammerhead Ribozyme
- 24 April 2004
- journal article
- research article
- Published by American Chemical Society (ACS) in Biochemistry
- Vol. 43 (19) , 5870-5881
- https://doi.org/10.1021/bi0360657
Abstract
Helical junctions are extremely common motifs in naturally occurring RNAs, but little is known about the thermodynamics that drive their folding. Studies of junction folding face several challenges: non-two-state folding behavior, superposition of secondary and tertiary structural energetics, and drastically opposing enthalpic and entropic contributions to folding. Here we describe a thermodynamic dissection of the folding of the hammerhead ribozyme, a three-way RNA helical junction, by using isothermal titration calorimetry of bimolecular RNA constructs. By using this method, we show that tertiary folding of the hammerhead core occurs with a highly unfavorable enthalpy change, and is therefore entropically driven. Furthermore, the enthalpies and heat capacities of core folding are the same whether supported by monovalent or divalent ions. These properties appear to be general to the core sequence of bimolecular hammerhead constructs. We present a model for the ion-induced folding of the hammerhead core that is similar to those advanced for the folding of much larger RNAs, involving ion-induced collapse to a structured, non-native state accompanied by rearrangement of core residues to produce the native fold. In agreement with previous enzymological and structural studies, our thermodynamic data suggest that the hammerhead structure is stabilized in vitro predominantly by diffusely bound ions. Our approach addresses several significant challenges that accompany the study of junction folding, and should prove useful in defining the thermodynamic determinants of stability in these important RNA motifs.Keywords
This publication has 62 references indexed in Scilit:
- The Fastest Global Events in RNA Folding: Electrostatic Relaxation and Tertiary Collapse of the Tetrahymena RibozymeJournal of Molecular Biology, 2003
- Diffusely Bound Mg2+ Ions Slightly Reorient Stems I and II of the Hammerhead Ribozyme To Increase the Probability of Formation of the Catalytic CoreBiochemistry, 2003
- The linkage between magnesium binding and RNA folding 1 1Edited by B. HonigJournal of Molecular Biology, 2002
- Role of counterion condensation in folding of the Tetrahymena ribozyme II. Counterion-dependence of folding kineticsJournal of Molecular Biology, 2001
- Thermodynamics of Three-Way Multibranch Loops in RNABiochemistry, 2001
- Is Counterion Delocalization Responsible for Collapse in RNA Folding?Biochemistry, 2000
- Enthalpy and Heat Capacity Changes for Formation of an Oligomeric DNA Duplex: Interpretation in Terms of Coupled Processes of Formation and Association of Single-Stranded HelicesBiochemistry, 1999
- Folding of branched RNA speciesBiopolymers, 1998
- Contribution of hydration and non-covalent interactions to the heat capacity effect on protein unfoldingJournal of Molecular Biology, 1992
- Thermodynamics of base interaction in (A)n and (A·U)nJournal of Molecular Biology, 1978