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Saunter, C.

Publications and source records attributed to Saunter, C..

3 recordsLinked to original sources

Repurposing Regulatory Toxicology Safety Data to Identify Potential Pro-Longevity Substances

The repurposing of existing biosafety datasets offers unique opportunities in biomedical research. Here, we demonstrate how pesticide toxicity data, which include long-term survival studies in mammalian models, can be harnessed to uncover potential drug candidates or drug targets that can improve survival. We show that these substances frequently affect mitochondrial bioenergetics and that they can improve animal healthspan.

cell biology↗

New tools to monitor Pseudomonas aeruginosa infection and biofilms in vivo in C. elegans.

Antimicrobial resistance is a growing health problem. Pseudomonas aeruginosa is a pathogen of major concern because of its multidrug resistance and global threat, especially in health-care settings. The pathogenesis and drug resistance of P. aeruginosa depends on its ability to form biofilms, making infections chronic and untreatable as the biofilm protects against antibiotics and host immunity. A major barrier to developing new antimicrobials is the lack of in vivo biofilm models. Standard microbiological testing is usually performed in vitro using planktonic bacteria, without representation of biofilms, reducing translatability. Here we develop tools to study both infection and biofilm formation by P. aeruginosa in vivo to accelerate development of strategies targeting infection and pathogenic biofilms. Using the nematode Caenorhabditis elegans and P. aeruginosa reporters combined with in vivo imaging we show that fluorescent P. aeruginosa reporters that form biofilms in vitro can be used to visualise tissue infection. Using automated tracking of C. elegans movement, we find that that the timing of this infection corresponds with a decline in health endpoints. In a mutant strain of P. aeruginosa lacking RhlR, a transcription factor that controls quorum sensing and biofilm formation, we find reduced capacity of P. aeruginosa to form biofilms, invade host tissues and negatively impact healthspan and survival. Our findings suggest that RhlR could be a new antimicrobial target to reduce P. aeruginosa biofilms and virulence in vivo and C. elegans could be used to more effectively screen for new drugs to combat antimicrobial resistance.

microbiology↗

Measuring C. elegans Ageing Through Non-Invasive Monitoring of Movement across Large Populations

Finding new interventions that slow ageing and maintain human health is a huge challenge of our time. The nematode Caenorhabditis elegans, offers a rapid in vivo method to determine whether a compound extends its 2-3 week lifespan. However, the standard C. elegans lifespan assay is hard to scale for large screens. Lifespan analysis produces only one data point per animal with no information about health. Here we describe automated monitoring of movement from early to mid-adulthood as a healthspan-based alternative to measure ageing. Using our WormGazer technology, over 100 petri dishes containing C. elegans worms are imaged simultaneously and non-invasively by an array of cameras. This approach demonstrates that most functional decline in C. elegans occurs during the first week of adulthood. We find 7 days of imaging is sufficient to measure the dose-dependent efficacy of sulfamethoxazole to slow ageing, compared to 40 days required for a parallel lifespan experiment. Understanding any negative consequences of interventions that slow ageing is important. We show that the long-lived mutant age-1(hx546) stays active for longer than the wild type but it moves slower in early adulthood. Thus, continuous analysis of movement can rapidly identify interventions that slow ageing while simultaneously revealing any negative effects on health.

physiology↗