Experimental approaches to identify cellular G-quadruplex structures and functions

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Abstract

Guanine-rich nucleic acids can fold into non-canonical DNA secondary structures called G-quadruplexes. The formation of these structures can interfere with the biology that is crucial to sustain cellular homeostases and metabolism via mechanisms that include transcription, translation, splicing, telomere maintenance and DNA recombination. Thus, due to their implication in several biological processes and possible role promoting genomic instability, G-quadruplex forming sequences have emerged as potential therapeutic targets. There has been a growing interest in the development of synthetic molecules and biomolecules for sensing G-quadruplex structures in cellular DNA. In this review, we summarise and discuss recent methods developed for cellular imaging of G-quadruplexes, and the application of experimental genomic approaches to detect G-quadruplexes throughout genomic DNA. In particular, we will discuss the use of engineered small molecules and natural proteins to enable pull-down, ChIP-Seq, ChIP-chip and fluorescence imaging of G-quadruplex structures in cellular DNA. © 2012 Elsevier Inc.

Figures

  • Fig. 1. Molecular structure of pyridostatin.
  • Fig. 2. Biased approach to identify G-quadruplex structures in human genomic DNA.
  • Fig. 3. Embedding quinone methide (QM) precursors to the NDI core lead to selective cros molecule-based sequencing and cellular imaging achievable by exploiting QM combined
  • Fig. 4. Chemical strategies exploitable to localise genomic area containing G-quadruplex: (A) Fluorophore transfer from the ligand to the target induced by proximity (B) Alkyne transfer from the ligand to the target induced by proximity.
  • Fig. 5. In cellulo chemical labeling strategy to localise g
  • Fig. 6. Unbiased approaches to identify G-quadruplex nucleic acids base

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CITATION STYLE

APA

Di Antonio, M., Rodriguez, R., & Balasubramanian, S. (2012). Experimental approaches to identify cellular G-quadruplex structures and functions. Methods, 57(1), 84–92. https://doi.org/10.1016/j.ymeth.2012.01.008

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