Revolutionary DNA Nanotechnology Speeds Up Growth of Vaccines by Extra Than One Million Instances

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DNA Health Technology Concept

Revolutionary software will meet future pandemics with accelerated response.

A brand new software accelerates improvement of vaccines and different pharmaceutical merchandise by a couple of million instances whereas minimizing prices.

Looking for pharmaceutical brokers akin to new vaccines, trade will routinely scan 1000’s of associated candidate molecules. A novel method permits this to happen on the nano scale, minimizing use of supplies and power. The work is printed within the prestigious journal Nature Chemistry.

Greater than 40,000 completely different molecules will be synthesized and analyzed inside an space smaller than a pinhead. The tactic, developed via a extremely interdisciplinary analysis effort in Denmark, guarantees to drastically cut back the quantities of fabric, power, and financial value for pharmaceutical firms.

The tactic works through the use of soap-like bubbles as nano-containers. With New Tool Speeds Up Development of Vaccines and Pharmaceuticals

A new tool speeds up development of vaccines and other pharmaceutical products by more than one million times while minimizing costs. The method works by using soap-like bubbles as nano-containers. With DNA nanotechnology, multiple ingredients can be mixed within the containers. Credit: Nikos Hatzakis, University of Copenhagen

“The volumes are so small that the use of material can be compared to using one liter of water and one kilogram of material instead of the entire volumes of water in all oceans to test material corresponding to the entire mass of Mount Everest. This is an unprecedented save in effort, material, manpower, and energy,” illustrates head of the team Nikos Hatzakis, Associate Professor at the Department of Chemistry, University of Copenhagen.

“Saving infinitely amounts of time, energy and manpower would be fundamentally important for any synthesis development and evaluation of pharmaceuticals,” says PhD Student Mette G. Malle, lead author of the article, and currently Postdoc researcher at Harvard University, USA.

Results within just seven minutes

The work has been carried out in collaboration between the Hatzakis Group, University of Copenhagen, and Associate Professor Stefan Vogel, University of Southern Denmark. The project has been supported by a Villum Foundation Center of Excellence grant. The resulting solution is named “single particle combinatorial lipidic nanocontainer fusion based on DNA mediated fusion” – abbreviated SPARCLD.

The breakthrough involves integration of elements from normally quite distant disciplines: synthetic biochemistry, nanotechnology, DNA synthesis, combinational chemistry, and even Machine Learning which is an AI (artificial intelligence) discipline.

“No single element in our solution is completely new, but they have never been combined so seamlessly,” explains Nikos Hatzakis.

The method provides results within just seven minutes.

Nano Containers

The method works by using soap-like bubbles as nano-containers. With DNA nanotechnology, multiple ingredients can be mixed within the containers. Credit: Nikos Hatzakis, University of Copenhagen

“What we have is very close to a live read-out. This means that one can moderate the setup continuously based on the readings adding significant additional value. We expect this to be a key factor for industry wanting to implement the solution,” says Mette G. Malle.

Had to keep things hush-hush

The individual researchers in the project have several industry collaborations, yet they do not know which companies may want to implement the new high-throughput method.

“We had to keep things hush-hush since we didn’t want to risk for others to publish something similar before us. Thus, we could not engage in conversations with industry or with other researchers that may use the method in various applications,” says Nikos Hatzakis.

Still, he can name some possible applications:

“A safe bet would be that both industry and academic groups involved in synthesis of long molecules such as polymers could be among the first to adopt the method. The same goes for ligands of relevance for pharmaceutical development. A particular beauty of the method that it can be integrated further, allowing for direct addition of a relevant application.”

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