bioRxiv · 10.1101/784561
DNA transistors switched by the Hofmeister effect
Abstract
Here we demonstrate that a DNA nanodevice can perform switchable electron transfer. The nanodevice is comprised of two strands, one of which can be selectively switched between a G-quadruplex and duplex or single-stranded conformations. In the G-quadruplex state, it binds the cofactor hemin, enabling peroxidase activity. This switching ability arises from our discovery that perchlorate, a chaotropic Hofmeister ion, selectively destabilizes duplex over G-quadruplex DNA. By varying perchlorate concentration, we show that the device can be switched between states that do and do not catalyze electron transfer catalysis. State switching can be achieved in three ways: thermally, by dilution, or by concentration. In each case, when operated in the presence of the cofactor hemin, the device catalyzes electron transfer in only the G-quadruplex state.
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Hoog, T. G., Pawlak, M. R., Aufdembrink, L. M., Bachan, B. R., Galles, M. B., Bense, N. B., Adamala, K. P., Engelhart, A. E.. 2019-10-05. DNA transistors switched by the Hofmeister effect. https://doi.org/10.1101/784561
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