How does the immune system detect a pathogen?
Our research group is broadly interested in how bacteria and viruses interact with, and often subvert, their host’s immune system.ÌýAn infection can be viewed like a race. The host immune system has to detect an invading pathogen and respond, whileÌýpathogens like bacteria and viruses must evade detection and replicate. Who wins that race determines the outcome of disease.
Host–pathogen dynamics are shaped by the exchange of chemical signals between invaders and their victims (the host). InÌýmammals, detection of pathogenic bacteria and viruses starts with receptors of the innate immune system that sense microbe-derived chemicals. Innate immune signaling activates the rest of the immune system to sterilize the infection. Identification ofÌýligands (chemical signals) that activate the innate immune system has led to a better understanding of vaccines and the design ofÌýnovel adjuvants. What’s more, some of these chemicals activate the immune system to fight cancer.
Our lab studies the innate immune system, the microbe-derived ligands important for immune activation, and general bacterialÌýpathogenesis. We are particularly focused on immune pathways that use nucleotide second messengers to amplify signaling.ÌýOne of the most exciting characteristics of these pathways is that they are found in both animal and bacterial cells. The sameÌýmolecular machinery that allows eukaryotes to respond to DNA viruses (called the cGAS-STING pathway), is also found inÌýbacteria. cGAS-like enzymes in bacteria are important for defense against to phages. These findings provide a highly tractableÌýand rapid model system for studying the cGAS-STING pathway.
The finding of antiviral genes from bacteria that are homologous to antiviral genes in humans has led to the unexpectedÌýhypothesis that early eukaryotes must have assimilated and repurposed bacterial phage defense genes. This new paradigm inÌýevolution of the immune system establishes bacterium-phage interactions as a relevant model system. Further, our lab isÌýinterested in identifying other elements of the human immune system that can be found in bacteria, understanding molecularÌýmechanisms of phage detection, and distilling these findings identify generalizable aspects of immune systems.Ìý
The ultimate goal of our work is to better understand human immune signaling and inform the development of therapeutics,Ìýcontributing to the worldwide goal of defeating human pathogens and cancers.