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February 22, 2021

A new study reveals that quantum physics can cause mutations in our DNA

Credit: Pixabay/CC0 Public Domain
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Credit: Pixabay/CC0 Public Domain

Quantum biology is an emerging field of science, established in the 1920s, which looks at whether the subatomic world of quantum mechanics plays a role in living cells. Quantum mechanics is an interdisciplinary field by nature, bringing together nuclear physicists, biochemists and molecular biologists.

In a published by the journal 糖心视频ical Chemistry Chemical 糖心视频ics, a team from Surrey's Leverhulme Quantum Biology Doctoral Training Centre used state-of-the-art computer simulations and quantum mechanical methods to determine the role proton tunneling, a purely quantum phenomenon, plays in inside DNA.

Proton tunneling involves the spontaneous disappearance of a proton from one location and the same proton's re-appearance nearby.

The research team found that atoms of hydrogen, which are very light, provide the bonds that hold the two strands of the DNA's together and can, under certain conditions, behave like spread-out waves that can exist in multiple locations at once, thanks to proton tunneling. This leads to these atoms occasionally being found on the wrong strand of DNA, leading to mutations.

Although these mutations' lifetime is short, the team from Surrey has revealed that they can still survive the DNA replication mechanism inside cells and could potentially have health consequences.

Dr. Marco Sacchi, the project lead and Royal Society University Research Fellow at the University of Surrey, said: "Many have long suspected that the quantum world鈥攚hich is weird, counter-intuitive and wonderful鈥攑lays a role in life as we know it. While the idea that something can be present in two places at the same time might be absurd to many of us, this happens all the time in the quantum world, and our study confirms that quantum tunneling also happens in DNA at room temperature."

Louie Slocombe, a Ph.D. student at the Leverhulme Quantum Biology Doctoral Training Centre and co-author of the study, said:

"There is still a long and exciting road ahead of us to understand how work on the subatomic level, but our study鈥攁nd countless others over the recent years鈥攈ave confirmed are at play. In the future, we are hoping to investigate how tautomers produced by quantum tunneling can propagate and generate genetic mutations."

More information: L. Slocombe et al. Quantum and classical effects in DNA point mutations: Watson鈥揅rick tautomerism in AT and GC base pairs, 糖心视频ical Chemistry Chemical 糖心视频ics (2021).

Journal information: 糖心视频ical Chemistry Chemical 糖心视频ics

Provided by University of Surrey

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