
A new synthetic enzyme, crafted from DNA rather than protein, 鈥榝lips鈥 lipid molecules within the cell membrane, triggering a signal pathway that could be harnessed to induce cell death in cancer cells.
A new synthetic enzyme, crafted from DNA rather than protein, 鈥榝lips鈥 lipid molecules within the cell membrane, triggering a signal pathway that could be harnessed to induce cell death in cancer cells.
This work highlights the enormous potential of synthetic DNA nanostructures for personalised drugs and therapeutics for a variety of health conditions.
Alexander Ohmann
Researchers at the 探花直播 of Cambridge and the 探花直播 of Illinois at Urbana-Champaign say their lipid-scrambling DNA enzyme is the first to outperform naturally occurring enzymes 鈥 and does so by three orders of magnitude. Their are published in the journal Nature Communications.
鈥淐ell membranes are lined with a different set of molecules on the inside and outside, and cells devote a lot of resources to maintaining this,鈥 said study leader , a professor of physics at Illinois. 鈥淏ut at some points in a cell鈥檚 life, the asymmetry has to be dismantled. Then the markers that were inside become outside, which sends signals for certain processes, such as cell death. There are enzymes in nature that do that called scramblases. However, in some other diseases where scramblases are deficient, this doesn鈥檛 happen correctly. Our synthetic scramblase could be an avenue for therapeutics.鈥
础办蝉颈尘别苍迟颈别惫鈥檚 came upon DNA鈥檚 scramblase activity when looking at DNA structures that form pores and channels in cell membranes. They used the Blue Waters supercomputer at the at Illinois to model the systems at the atomic level. They saw that when certain DNA structures insert into the membrane 鈥 in this case, a bundle of eight strands of DNA with cholesterol at the ends of two of the strands 鈥 lipids in the membrane around the DNA begin to shuffle between the inner and outer membrane layers.
To verify the scramblase activity predicted by the computer models, 础办蝉颈尘别苍迟颈别惫鈥檚 group at Illinois partnered with Professor group at Cambridge. 探花直播Cambridge group synthesised the DNA enzyme and tested it in model membrane bubbles, called vesicles, and then in human breast cancer cells.
鈥 探花直播results show very conclusively that our DNA nanostructure facilitates rapid lipid scrambling,鈥 said co-first author Alexander Ohmann, a PhD student in Keyser鈥檚 group in Cambridge鈥檚 Cavendish Laboratory. 鈥淢ost interestingly, the high flipping rate indicated by the molecular dynamics simulations seems to be of the same order of magnitude in experiments: up to a thousand-fold faster than what has previously been shown for natural scramblases.鈥
On its own, the DNA scramblase produces cell death indiscriminately, said Aksimentiev. 探花直播next step is to couple it with targeting systems that specifically seek out certain cell types, a number of which have already been developed for other DNA agents.
鈥淲e are also working to make these scramblase structures activated by light or some other stimulus, so they can be activated only on demand and can be turned off,鈥 said Aksimentiev.
鈥淎lthough we have still a long way to go, this work highlights the enormous potential of synthetic DNA nanostructures with possible applications for personalised drugs and therapeutics for a variety of health conditions in the future,鈥 said Ohmann, who has also written a on their new paper.
探花直播US National Science Foundation and the National Institutes of Health supported this work.听听
Reference:
Alexander Ohmann et al. 鈥.鈥 Nature Communications (2018). DOI: 10.1038/s41467-018-04821-5
鈥婣dapted from a 探花直播 of Illinois at Urbana-Champaign .
探花直播text in this work is licensed under a . Images, including our videos, are Copyright 漏 探花直播 of Cambridge and licensors/contributors as identified.听 All rights reserved. We make our image and video content available in a number of ways 鈥 as here, on our main website under its Terms and conditions, and on a range of channels including social media that permit your use and sharing of our content under their respective Terms.