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Biology subjects

Burger, M. L.

Publications and source records attributed to Burger, M. L..

3 recordsLinked to original sources

A Framework for Comparing Mouse Neoantigen Immunogenicity

Cytotoxic CD8+ T cell responses targeting tumor neoantigens are critical for immunotherapy efficacy and are widely studied across different preclinical mouse tumor models. Defined neoantigens are commonly introduced to enable tracking of tumor-specific T cells; however, variation in neoantigen choice may yield immune phenotypes attributable to differences in neoantigen immunogenicity, complicating interpretation of tumor-intrinsic mechanisms. Here, we determined the relative immunogenicity of a set of 25 commonly used mouse tumor-derived and model neoantigens to facilitate comparison of neoantigens across studies. We found that in silico predicted major histocompatibility complex (MHC) binding affinity poorly stratified in vivo immunogenicity. In contrast, experimental measurement of peptide-MHC complex stability (Koff), more so than measured affinity (KD), closely correlated with the relative magnitude of neoantigen-targeted vaccine responses in vivo. Thus, we report the relative stability of a known set of commonly used neoantigens as a reference and provide a simple method to benchmark novel neoantigens against this library. This framework will allow contextualization of the level of immunogenicity of newly identified neoantigens and aid in comparative interpretation of tumor-immune phenotypes across studies.

cancer biology↗

Targeting intracellular of populations Pseudomonas aeruginosa with peptide-mimetic therapies: individual efficacy and synergistic rescue of obsolete antibiotics.

Pseudomonas aeruginosa is a leading cause of human infections, with current treatment options severely limited by high levels of antimicrobial resistance. Historically considered to be an extracellular pathogen, recent evidence has emerged that P. aeruginosa is able to survive and replicate within human cells. These intracellular niches present an additional clinical challenge and may serve as bacterial reservoirs associated with chronic infections that are particularly difficult to eradicate. Here we describe the application of a novel peptide-based therapeutic against recalcitrant populations of bacteria residing within lung epithelial cells. This antimicrobial "peptoid" is able to target intracellular bacteria without harming host cells. In addition, we have shown that peptoid TM5 exhibits synergy with three antibiotics that otherwise have low efficacy against P. aeruginosa, effectively rescuing drugs that have become clinically obsolete. These synergistic combination therapies are also capable of reducing intracellular bacterial reservoirs, opening the door for potential new strategies against chronic P. aeruginosa infections.

microbiology↗

Peptide-mimetic treatment of Pseudomonas aeruginosa in a mouse model of respiratory infection

The rise of drug resistance has become a global crisis, with >1 million deaths due to resistant bacterial infections each year. Pseudomonas aeruginosa, in particular, remains a serious problem with limited solutions due to complex resistance mechanisms that now lead to more than 32,000 multidrug-resistant (MDR) infections and over 2,000 deaths annually. While the emergence of resistant bacteria has become concerningly common, identification of useful new drug classes has been limited over the past 40+ years. We found that a potential novel therapeutic, the peptide-mimetic TM5, is effective at killing P. aeruginosa and displays sufficiently low toxicity for mammalian cells to allow for use in treatment of infections. Interestingly, TM5 kills P. aeruginosa more rapidly than traditional antibiotics, within 30-60 minutes in vitro, and is effective against a range of clinical isolates. In vivo, TM5 significantly reduced bacterial load in the lungs within 24 hours compared to untreated mice and demonstrated few adverse effects. Taken together, these observations suggest that TM5 shows promise as an alternative therapy for MDR P. aeruginosa respiratory infections.

microbiology↗