Lighting up left-handed Z-DNA: photoluminescent carbon dots induce DNA B to Z transition and perform DNA logic operations.

Nucleic Acids Res

Laboratory of Chemical Biology, Division of Biological Inorganic Chemistry, State Key Laboratory of Rare Earth Resources Utilization, Changchun Institute of Applied Chemistry, Chinese Academy of Sciences, Changchun 130022, P. R. China and Graduate School of the Chinese Academy of Sciences, Beijing 100039, P. R. China.

Published: September 2013

AI Article Synopsis

  • Left-handed Z-DNA is a temporary structure that forms during transcription, and the B-Z transition of DNA is significant due to its biological roles and implications in diseases and DNA nanotechnology.
  • Recent advancements in highly luminescent nitrogen-doped carbon dots show promise for bioimaging and drug delivery due to their low toxicity and ability to interact with DNA.
  • This study demonstrates for the first time that these carbon dots can convert right-handed B-DNA into left-handed Z-DNA in a selective manner, and they can be used to design DNA logic gates through fluorescence resonance energy transfer.

Article Abstract

Left-handed Z-DNA has been identified as a transient structure occurred during transcription. DNA B-Z transition has attracted much attention because of not only Z-DNA biological importance but also their relation to disease and DNA nanotechnology. Recently, photoluminescent carbon dots, especially highly luminescent nitrogen-doped carbon dots, have attracted much attention on their applications to bioimaging and gene/drug delivery because of carbon dots with low toxicity, highly stable photoluminescence and controllable surface function. However, it is still unknown whether carbon dots can influence DNA conformation or structural transition, such as B-Z transition. Herein, based on our previous series work on DNA interactions with carbon nanotubes, we report the first example that photoluminescent carbon dots can induce right-handed B-DNA to left-handed Z-DNA under physiological salt conditions with sequence and conformation selectivity. Further studies indicate that carbon dots would bind to DNA major groove with GC preference. Inspired by carbon dots lighting up Z-DNA and DNA nanotechnology, several types of DNA logic gates have been designed and constructed based on fluorescence resonance energy transfer between photoluminescent carbon dots and DNA intercalators.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC3763558PMC
http://dx.doi.org/10.1093/nar/gkt575DOI Listing

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