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Biology subjects

Pollock, A. J.

Publications and source records attributed to Pollock, A. J..

2 recordsLinked to original sources

A rationally designed c-di-AMP FRET biosensor to monitor nucleotide dynamics

33-cyclic di-adenosine monophosphate (c-di-AMP) is an important nucleotide second messenger found throughout the bacterial domain of life. C-di-AMP is essential in many bacteria and regulates a diverse array of effector proteins controlling pathogenesis, cell wall homeostasis, osmoregulation, and central metabolism. Despite the ubiquity and importance of c-di-AMP, methods to detect this signaling molecule are limited, particularly at single cell resolution. In this work, crystallization of the Listeria monocytogenes c-di-AMP effector protein Lmo0553 enabled structure guided design of a Forster resonance energy transfer (FRET) based biosensor, which we have named CDA5. CDA5 is a fully genetically encodable, specific, and reversible biosensor which allows for the detection of c-di-AMP dynamics both in vitro and within live single cells in a nondestructive manner. Our initial studies identify a unimodal distribution of c-di-AMP in Bacillus subtilis which decreases rapidly when cells are grown in diluted Luria Broth. Furthermore, we find that B. subtilis mutants lacking either a c-di-AMP phosphodiesterase or cyclase have respectively higher and lower FRET responses, again in a unimodal manner. These findings provide novel insight into c-di-AMP distribution within bacterial populations and establish CDA5 as a powerful platform for characterizing new aspects of c-di-AMP regulation. ImportanceC-di-AMP is an important nucleotide second messenger for which detection methods are severely limited. In this work we engineer and implement a c-di-AMP specific FRET biosensor to remedy this dearth. We present this biosensor, CDA5, as a versatile tool to investigate previously intractable facets of c-di-AMP biology.

bioengineering

4-hydroxy-2-nonenal antimicrobial toxicity is neutralized by an intracellular pathogen.

Pathogens encounter numerous antimicrobial responses, including the reactive oxygen species (ROS) burst. ROS-mediated oxidation of host membrane poly-unsaturated fatty acids (PUFAs) generates the toxic alpha-beta carbonyl 4-hydroxy-2-nonenal (4-HNE). Though studied extensively in the context of sterile inflammation, 4-HNEs role during infection remains limited. Here we found that 4-HNE is generated during bacterial infection and that the intracellular pathogen Listeria monocytogenes induces a specific set of genes in response to 4-HNE exposure. A component of the L. monocytogenes 4-HNE response is the expression of the genes rha1 and rha2 which code for two NADPH-dependent oxidoreductases that collectively counter 4-HNE toxicity. Heterologous expression of rha1/2 in Bacillus subtilis significantly increased bacterial resistance to 4-HNE both in vitro and following phagocytosis by murine macrophages. Our work demonstrates that 4-HNE is a previously unappreciated component of ROS-mediated toxicity and that L. monocytogenes has evolved specific countermeasures to survive within its presence.

microbiology