Literature DB >> 17325014

RNA helix stability in mixed Na+/Mg2+ solution.

Zhi-Jie Tan1, Shi-Jie Chen.   

Abstract

A recently developed tightly bound ion model can account for the correlation and fluctuation (i.e., different binding modes) of bound ions. However, the model cannot treat mixed ion solutions, which are physiologically relevant and biologically significant, and the model was based on B-DNA helices and thus cannot directly treat RNA helices. In the present study, we investigate the effects of ion correlation and fluctuation on the thermodynamic stability of finite length RNA helices immersed in a mixed solution of monovalent and divalent ions. Experimental comparisons demonstrate that the model gives improved predictions over the Poisson-Boltzmann theory, which has been found to underestimate the roles of multivalent ions such as Mg2+ in stabilizing DNA and RNA helices. The tightly bound ion model makes quantitative predictions on how the Na+-Mg2+ competition determines helix stability and its helix length-dependence. In addition, the model gives empirical formulas for the thermodynamic parameters as functions of Na+/Mg2+ concentrations and helix length. Such formulas can be quite useful for practical applications.

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Year:  2007        PMID: 17325014      PMCID: PMC1853146          DOI: 10.1529/biophysj.106.100388

Source DB:  PubMed          Journal:  Biophys J        ISSN: 0006-3495            Impact factor:   4.033


  97 in total

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  51 in total

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3.  Predicting ion binding properties for RNA tertiary structures.

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4.  Predicting 3D Structure, Flexibility, and Stability of RNA Hairpins in Monovalent and Divalent Ion Solutions.

Authors:  Ya-Zhou Shi; Lei Jin; Feng-Hua Wang; Xiao-Long Zhu; Zhi-Jie Tan
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5.  Electrostatic free energy landscapes for DNA helix bending.

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Review 7.  Importance of diffuse metal ion binding to RNA.

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Review 8.  RNA folding: conformational statistics, folding kinetics, and ion electrostatics.

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10.  Salt-dependent folding energy landscape of RNA three-way junction.

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