Circular dichroism and guanine quadruplexes
Language English Country United States Media print-electronic
Document type Journal Article, Research Support, Non-U.S. Gov't, Review
PubMed
22450044
DOI
10.1016/j.ymeth.2012.03.011
PII: S1046-2023(12)00067-9
Knihovny.cz E-resources
- MeSH
- Circular Dichroism methods MeSH
- X-Ray Diffraction MeSH
- DNA chemistry MeSH
- G-Quadruplexes * MeSH
- Guanine chemistry MeSH
- Kinetics MeSH
- Nucleic Acid Conformation * MeSH
- Oligonucleotides chemistry MeSH
- Thermodynamics MeSH
- Publication type
- Journal Article MeSH
- Research Support, Non-U.S. Gov't MeSH
- Review MeSH
- Names of Substances
- DNA MeSH
- Guanine MeSH
- Oligonucleotides MeSH
Circular dichroism (CD) is remarkably sensitive to the conformational states of nucleic acids; therefore, CD spectroscopy has been used to study most features of DNA and RNA structures. Quadruplexes are among the significant noncanonical nucleic acids architectures that have received special attentions recently. This article presents examples on the contribution of CD spectroscopy to our knowledge of quadruplex structures and their polymorphism. The examples were selected to demonstrate the potential of this simple method in the quadruplex field. As CD spectroscopy detects only the global feature of a macromolecule, it should preferably be used in combination with other techniques. On the other hand, CD spectroscopy, often as a pioneering approach, can reveal the formation of particular structural arrangements, to search for the conditions stabilizing the structures, to follow the transitions between various structural states, to explore kinetics of their appearance, to determine thermodynamic parameters and also detect formation of higher order structures. This article aims to show that CD spectroscopy is an important complementary technique to NMR spectroscopy and X-ray diffraction in quadruplex studies.
References provided by Crossref.org
Insight into formation propensity of pseudocircular DNA G-hairpins
Multimerization rules for G-quadruplexes
Altered biochemical specificity of G-quadruplexes with mutated tetrads
Conformations of Human Telomeric G-Quadruplex Studied Using a Nucleotide-Independent Nitroxide Label
Extended molecular dynamics of a c-kit promoter quadruplex
Loss of loop adenines alters human telomere d[AG3(TTAG3)3] quadruplex folding
Guanine quadruplexes are formed by specific regions of human transposable elements
Quadruplex-forming sequences occupy discrete regions inside plant LTR retrotransposons