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Bennett, H. L.

Publications and source records attributed to Bennett, H. L..

2 recordsLinked to original sources

Pseudomonas aeruginosa shows between and within strains heterogeneity in virulence phenotype after passive exposure to zebrafish (Danio rerio) and nematodes (Caenorhabditis elegans)

The rapid emergence of diseases and parasites in aquatic wildlife requires improved methodologies to identify and characterize new and future pathogens. While microinjection of pathogens directly into a sentinel organism such as zebrafish enables the exploration of infection and immune response in the host, such methodology focuses primarily on identifying causative agents in events of aquatic wildlife mortality due to acute infection. Here, we present an updated protocol of infection by static immersion in larval zebrafish to investigate the possible effect of prolonged environmental exposure to an opportunistic pathogen. By controlling microbial growth and monitoring mortality over five days, we show that static immersion can detect minute differences in virulence profiles between and within different strains of Pseudomonas aeruginosa, an important opportunistic pathogen of animals and humans. We then conducted two sets of passive exposure virulence assays in Caenorhabditis elegans, an alternative model. We demonstrated the virulence phenotype, while showing slight differences between experimental models, showed similar trends. We believe that passive exposure thus offers a practical host-pathogen model that simulates opportunistic infection occurring in the environment and enables the detection of minute changes in virulence between and within bacterial strains.

microbiology↗

Preconditioning of Caenorhabditis elegans to Anoxic Insult by Inactivation of Cholinergic, GABAergic, and Muscle Activity

For most metazoans, oxygen deprivation leads to cell dysfunction and if severe, death. Sublethal stress prior to a hypoxic or anoxic insult ("preconditioning") can protect cells from subsequent oxygen deprivation. The molecular mechanisms by which sublethal stress can buffer against a subsequent toxic insult and the role of the nervous system in the response are not well understood. We studied the role of neuronal activity preconditioning to oxygen deprivation in C. elegans. Animals expressing the histamine gated chloride channels (HisCl1) in select cell populations were used to temporally and spatially inactivate the nervous system or tissue prior to an anoxic insult. We find that inactivation of the nervous system for 3 hours prior to the insult confers resistance to a 48-hour anoxic insult in 4th-stage larval animals. Experiments show that this resistance can be attributed to loss of activity in cholinergic and GABAergic neurons as well as in body wall muscles. These observations indicate that the nervous system activity can mediate the organisms response to anoxia.

neuroscience↗