Recipient organisationUniversity of ExeterSource-published name: University of Exeter
Funding£3.2M
PeriodFeb 2024 — Jan 2029
In plain English
AI plain-English summary
A type of fungus called *Candida* is becoming resistant to the few drugs that can stop it from killing critically ill patients. In the UK, roughly 5,000 people develop invasive candidiasis each year, and up to half of them die even with treatment. The problem is urgent: only four classes of antifungal drugs exist, and the World Health Organization has flagged rising resistance as a public health crisis. This research connects teams in Liverpool, London, and Exeter to find ways to preserve the drugs we have. The scientists will grow five *Candida* species in the lab, testing existing drugs and new ones about to reach the market, both alone and in combinations. The most promising regimens will move into mouse models of the infection. By watching how the fungi adapt, the team aims to develop tests that detect resistance early in patients, allowing clinicians to switch treatments before the drugs fail. If successful, this work could extend the useful life of current antifungals and give doctors a practical tool to spot resistance as it emerges. That would directly improve survival for the most vulnerable patients—those in intensive care—without requiring new drugs to be invented first.
View original technical description
A type of fungus called Candida, that lives on and in the human body, can sometimes cause fatal infections in humans, usually in patients who have suffered from a physical trauma or have weakened immunity. When a Candida infection of the bloodstream or other normally sterile body site (invasive candidiasis) is detected, rapid treatment with antifungal drugs can be a lifesaving measure. Unfortunately, there are a limited number of effective drugs, and Candida species are becoming more resistant to them. This dilemma has recently been highlighted by the World Health Organisation as a public health crisis of growing concern. Invasive candidiasis is the most common invasive fungal infection in the UK, with an estimated 5,000 cases each year. Critically ill patients in intensive care units are particularly vulnerable, with an estimated 30-40% of all infections occurring in this setting. Unfortunately, even with the use of antifungal drugs, up to 50% of patients will not survive. Treatment options are limited with just four antifungal drug classes available; azoles; echinocandins; polyenes; nucleoside analogues. Preserving the effectiveness of these drugs is vital for ensuring we have viable treatment options to manage invasive candidiasis in the future. This is the overarching aim of this study. There are several approaches that can be used to preserve the effectiveness of available antifungal drugs. One is to change the way in which they are used, preferably by reducing the frequency of use or the amount of drug needed to achieve an effect. Another is to combine different drug classes (called combination therapy). The best modifications of antifungal use will maintain antifungal activity but reduce the rate of emergence of drug resistance. To achieve this, we need a thorough understanding of how antifungal resistance (AFR) develops. AFR can be defined as the ability of fungal cells to grow in the presence of high concentrations of antifungal drug. This behaviour can be readily studied in the lab since fungal cells can be grown very quickly (overnight) and we have many methods for observing their responses to antifungal drugs, such as microscopy and growth tests. In this programme of work, we will connect three world class research centres in Liverpool, London and Exeter to discover new drugs and drug combinations that prevent fungal growth, and limit AFR. The first step will be to measure the growth of five different Candida species in the presence of various antifungal drugs and drug combinations, including new antifungal drugs that will soon come to market. The most effective drug treatments will then be progressed to study their effectiveness in a mouse model of invasive candidiasis. By learning about the way that Candida species adapt to fungal drugs in the laboratory setting, in mice and in critically ill patients, we can develop new tests to recognise AFR early when this happens during an infection. By working as a team of scientists and clinicians we can share important knowledge and, informed by current practices, develop better tests for AFR. In turn this will help clinicians to detect AFR as it emerges during treatment, and to modify patients' treatment for a better outcome.
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