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Speakman, A. J.

Publications and source records attributed to Speakman, A. J..

2 recordsLinked to original sources

Incompatibility of DFHBI based fluorescent RNA aptamers with particular commercial cell-free expression systems

Fluorescent RNA aptamers are an increasingly used tool for quantifying transcription and for visualising RNA interactions, both in vitro and in vivo. However when tested in the commercially available, E. coli extract based Expressway cell-free expression system, no fluorescence is detected. The same experimental setup is shown to successfully produce fluorescent RNA aptamers when tested in another buffer designed for in vitro transcription, and RNA purification of the Expressway reaction products show that transcription does occur, but does not result in a fluorescent product. In this paper we demonstrate the incompatibility of a narrow selection of RNA aptamers in one particular cell-free expression system, and consider that similar issues may arise with other cell-free expression systems, RNA aptamers, and their corresponding fluorophores.

synthetic biology

Using ultraviolet absorption spectroscopy to study nanoswitches based on non-canonical DNA structures

Non-canonical forms of DNA are attracting increasing interest for applications in nanotechnology. It is frequently convenient to characterize DNA molecules using a label-free approach such as ultraviolet absorption spectroscopy. In this paper we present the results of our investigation into the use of this technique to probe the folding of quadruplex and triplex nanoswitches. We confirmed that four G-quartets were necessary for folding at sub-mM concentrations of potassium and found that the wrong choice of sequence for the linker between G-tracts could dramatically disrupt folding, presumably due to the presence of kinetic traps in the folding landscape. In the case of the triplex nanoswitch we examined, we found that the UV spectrum showed a small change in absorbance when a triplex was formed. We anticipate that our results will be of interest to researchers seeking to design DNA nanoswitches based on quadruplexes and triplexes. HighlightsO_LIUltraviolet absorption spectroscopy can probe non-canonical DNA structures. C_LIO_LIAbsorbance at 295nm tends to increase as G-quadruplexes form. C_LIO_LIFour G-quartets are needed to form a quadruplex with less than 1mM potassium. C_LIO_LIFormation of DNA triplexes can also yield a small change in UV spectra. C_LIO_LIUV absorption is a cheap label-free method for studying DNA nanoswitches. C_LI

bioengineering