By Mrigakshi Dixit | Source

Researchers in Ireland say they created one of the fastest and most complex “DNA computers” to date.

Designed by Maynooth University (MU), the milestone shows that microscopic strands of genetic code can execute math once reserved for electronic microchips.

Built from DNA strands interacting in a salt-water droplet, the system uses a long DNA scaffold and heat to kick-start calculations without needing continuous electricity. The “first-of-its-kind” molecular computer can execute simple multiplication, division, and addition.

Computing without electricity

DNA-based infrastructure for storage and computation is a way forward toward biological computing. Rather than writing bits to magnetic surfaces or running logic through silicon transistors, these architectures convert digital information into specific arrangements of the four core genetic bases: Adenine, Cytosine, Guanine, and Thymine.

Various institutes and organizations have been working on DNA-based systems. For instance, a Caltech team developed a DNA-based artificial neural network that can recognize handwritten numbers (0-9) using molecular interactions in a solution, without microprocessors.

Now, the research and development in this realm is further gaining momentum, especially at times when the energy footprint of modern electronics is rapidly escalating.

In Ireland alone, standard data centers swallow a staggering 23 percent of the country’s entire electricity supply. “We’ve been blinkered by only seeing one type of computer, but there are other examples around us, including our brain,” said Professor Damien Woods of Maynooth University’s Hamilton Institute.

To break the silicon issue, researchers traded circuit boards for biological building blocks. The process itself is surprisingly simple and low-tech. Scientists mix short pieces of DNA alongside a longer DNA scaffold inside a small droplet of salt water.

A brief heat pulse kick-starts the biological interaction. As the liquid slowly cools down, millions of microscopic strands drift together, react, and self-assemble into intricate molecular patterns that reveal the final answer.

Without relying on a single wire or continuous power supply, the final self-assembled molecular structure serves as the computed answer.

“A small droplet of liquid contains billions, and sometimes trillions, of DNA strands. These strands interact with one another to produce a result,” said Dr. Abeer Eshra, Assistant Professor and computer scientist at MU’s Hamilton Institute.

Solves basic and complex calculations

The droplet is surprisingly capable. In test runs, the team executed ten distinct programs. The molecular system solved basic math like 10 + 3 in just 30 seconds, while complex 100-bit additions involving numbers up to 34 million completed in roughly 14 hours. Remarkably, the setup is far from single-use, as the team ran up to 25 consecutive calculations in the same droplet without any performance loss.

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