A bacterium called *Acinetobacter baumannii* is killing over 50,000 people globally each year, and it shrugs off most antibiotics. The problem is that this microbe causes severe lung and bloodstream infections with a mortality rate approaching 50%, and the World Health Organisation has ranked it the top priority for new treatments. The researchers have already identified antibodies that bind to four bacterial surface proteins and protect mice from infection. Now they need to isolate the specific monoclonal antibodies—proteins that can be mass-produced in a factory—from human patients or vaccinated mice. They will test each antibody’s ability to kill the bacteria and protect mice, then combine the best ones for stronger effect. If successful, this work will produce a candidate antibody therapy ready for clinical trials, offering a new weapon against a pathogen that is rapidly becoming untreatable with existing drugs.
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The bacteria Acinetobacter baumannii causes severe lung and blood-borne infections in humans. It is one of the most highly resistant bacteria to antibiotics, and as a consequence A. baumannii infections have a very high mortality which approaches 50%. Overall, A. baumannii causes over 50,000 deaths per year across the globe, a number which is increasing. It is especially common in Asia with 15,000 deaths per year in Thailand alone, and at one of our research site hospitals the number of people with A. baumannii per year has increased from 100 in 2010 to over 500 in 2022. The World Health Organisation has made A. baumannii its top priority antibiotic resistant bacteria for which we need new treatments. One way of overcoming antibiotic resistance is to treat bacteria with antibodies, naturally occurring proteins that bind to invading microbes and boost the ability of the immune system to kill them. Antibody therapies are known to work for other microbes but are not available as yet for A. baumannii. We aim to fill this gap by developing an antibody treatment for A. baumannii. Over the past four years, we have identified antibodies to four A. baumannii proteins that we have shown bind strongly to the bacterial surface and can increase activity of the immune system against the bacteria. Importantly when given to mice these antibodies protected against A. baumannii infection, indicating they could be a good treatment for human infection. We now want to develop these antibodies for use in humans. To do so we need to obtain single specific antibodies for each of our protein targets which are called monoclonal antibodies, as these can then be produced in a factory in the large quantities needed for a treatment. We will isolate several monoclonal antibodies to each of our four A. baumannii proteins from either humans who have had previous A. baumannii infection and have developed an immune response to this bacteria, or from mice using vaccination experiments. We will then test each isolated monoclonal antibody to see how well they bind to and promote the immune systems ability to recognise and kill A. baumannii strains. We will also test each monoclonal antibody to see whether they can protect mice against A. baumannii infection. The most effective monoclonal antibodies will then be tested in combinations as our previous work suggests this will be more effective than a single antibody. In addition, we will collect data and samples on patients with A. baumannii infection at our hospital research site in Thailand. The information on the patients is needed so we can plan future clinical trials of a monoclonal antibody therapy; and samples from the patients will also help with the experiments investigating the monoclonal antibodies by providing white cells from which we can isolate monoclonal antibodies. At the end of the study we will have the data needed to decide which of the monoclonal antibodies and in which combination are likely to be the most effective treatment for A. baumannii infections. These monoclonal antibodies will in the future be developed into a clinical treatment for testing in humans.
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