| Literature DB >> 25726472 |
Maria T Panteva1, Thakshila Dissanayake1, Haoyuan Chen1, Brian K Radak1, Erich R Kuechler1, George M Giambaşu1, Tai-Sung Lee1, Darrin M York2.
Abstract
RNA catalysis is of fundamental importance to biology and yet remains ill-understood due to its complex nature. The multidimensional "problem space" of RNA catalysis includes both local and global conformational rearrangements, changes in the ion atmosphere around nucleic acids and metal ion binding, dependence on potentially correlated protonation states of key residues, and bond breaking/forming in the chemical steps of the reaction. The goal of this chapter is to summarize and apply multiscale modeling methods in an effort to target the different parts of the RNA catalysis problem space while also addressing the limitations and pitfalls of these methods. Classical molecular dynamics simulations, reference interaction site model calculations, constant pH molecular dynamics (CpHMD) simulations, Hamiltonian replica exchange molecular dynamics, and quantum mechanical/molecular mechanical simulations will be discussed in the context of the study of RNA backbone cleavage transesterification. This reaction is catalyzed by both RNA and protein enzymes, and here we examine the different mechanistic strategies taken by the hepatitis delta virus ribozyme and RNase A.Entities:
Keywords: 3D-RISM; CpHMD; HREMD; Molecular dynamics; Multiscale modeling; QM/MM; RNA catalysis
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Year: 2015 PMID: 25726472 PMCID: PMC4739856 DOI: 10.1016/bs.mie.2014.10.064
Source DB: PubMed Journal: Methods Enzymol ISSN: 0076-6879 Impact factor: 1.600