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Artificial intelligence discovers powerful antibiotic
The new machine-learning approach can screen millions of chemical compounds in a matter of days.

New drug works against a wide range of resistant bacteria

A powerful new antibiotic that can work against a wide range of antibiotic-resistant bacteria has been discovered using artificial intelligence (AI).

The antibiotic, called halicin, was identified by a machine-learning algorithm out of 100 million chemical compounds. In laboratory tests, halicin killed many bacterial strains that are resistant to treatment, including Clostridium difficile, Acinetobacter baumannii, and Mycobacterium tuberculosis.


Researchers also used the antibiotic to treat mice infected with A. baumannii, a bacterium that has infected many U.S. soldiers stationed in Iraq and Afghanistan. This particular strain of antibiotic is resistant to all known antibiotics, but the application of a halicin-containing ointment cleared the infections within 24-hours. 


The work was led by Professor James Collins at the Massachusetts Institute of Technology (MIT) and published in the journal Cell.

“We wanted to develop a platform that would allow us to harness the power of artificial intelligence to usher in a new age of antibiotic drug discovery,” explained Professor Collins. “Our approach revealed this amazing molecule which is arguably one of the more powerful antibiotics that has been discovered.”

Antibiotic-resistance is considered to be a serious risk to public health. In 2014, the lack of effectiveness of existing antibiotics combined with the lack of new antibiotic treatments led the World Health Organisation to describe the situation as a "post-antibiotic era" where people could die from simple infections that have been treatable for decades.


Current antibiotic screening methods are expensive, time-consuming and are usually limited to a small range of chemical compounds. With this new machine-led approach, researchers can screen millions of chemical compounds within a few days.

The study identified several other antibiotic candidates which the researchers plan to test further. They say the computer model could also be used to develop new drugs, based on what it has learned about chemical structures that enable drugs to kill bacteria.

“This groundbreaking work signifies a paradigm shift in antibiotic discovery and indeed in drug discovery more generally,” says Roy Kishony, a professor of biology and computer science at Technion (the Israel Institute of Technology), who was not involved in the study.

“Beyond in silica screens, this approach will allow using deep learning at all stages of antibiotic development, from discovery to improved efficacy and toxicity through drug modifications and medicinal chemistry.”

 

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Practices urged to audit neutering data

News Story 1
 RCVS Knowledge has called on vet practices to audit their post-operative neutering outcomes.

It follows the release of the 2024 NASAN benchmarking report, which collates data from neutering procedures performed on dogs, cats and rabbits.

The benchmarking report enables practices in the UK and Ireland to compare their post-operative outcomes to the national average. This includes the rate of patients lost to follow-up, which in 2024 increased to 23 per cent.

Anyone from the practice can submit the data using a free template. The deadline for next report is February 2026.

Visit the RCVS Knowledge website to complete an audit. 

Click here for more...
News Shorts
New guidance for antibiotic use in rabbits

New best practice guidance on the responsible use of antibiotics in rabbits has been published by the BSAVA in collaboration with the Rabbit Welfare Association & Fund (RWA&F).

The guidance is free and has been produced to help veterinary practitioners select the most appropriate antibiotic for rabbits. It covers active substance, dose and route of administration all of which are crucial factors when treating rabbits owing to the risk of enterotoxaemia.

For more information and to access the guide, visit the BSAVALibrary.