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Biology subjects

Anahtar, M.

Publications and source records attributed to Anahtar, M..

2 recordsLinked to original sources

Comprehensive evaluation of antibody responses to mosquitoes and mosquito-borne arboviruses using highly multiplexed serology

Vector-borne diseases (VBDs) are a leading cause of morbidity and mortality worldwide, and their future impact may increase due to climate change. Antigens driving host immune responses to pathogens and vectors can serve as vaccine candidates and biomarkers of previous exposure, but the immunogenicity of the relevant proteomes remains undercharacterized. To comprehensively profile antibody responses to VBDs and to the vectors themselves, we developed a highly multiplexed phage display library (VectorScan) containing over 250,000 peptides derived from diverse arthropod vectors and prevalent vector-borne pathogens. We used phage immunoprecipitation sequencing (PhIP-Seq) to screen VectorScan against blood samples from non-human primates and humans with experimental and natural exposures to arboviruses and mosquitoes (Anopheles gambiae and Aedes aegypti). We analyzed quantitative measurements of peptide seroreactivity to identify epitopes driving viral serotype-level exposure signatures, as well as novel mosquito sialome antigens. Mosquito-directed antibody responses were associated with natural viral exposure, but highly heterogeneous at an individual level. However, recurrent responses to insect-derived cuticular proteins, mucin-like proteins, and fibrinogen-like proteins will inform development of future serosurveillance tools for vector exposure and vector-based vaccines.

immunology↗

Engineering Multiplexed Synthetic Breath Biomarkers as Diagnostic Probes

Breath biopsy is emerging as a rapid and non-invasive diagnostic tool that links exhaled chemical signatures with specific medical conditions. Despite its potential, clinical translation remains limited by the challenge of reliably detecting endogenous, disease-specific biomarkers in breath. Synthetic biomarkers represent an emerging paradigm for precision diagnostics such that they amplify activity-based biochemical signals associated with disease fingerprints. However, their adaptation to breath biopsy has been constrained by the limited availability of orthogonal volatile reporters that are detectable in exhaled breath. Here, we engineer multiplexed breath biomarkers that couple aberrant protease activities to exogenous volatile reporters. We designed novel intramolecular reactions that leverage protease-mediated aminolysis, enabling the sensing of a broad spectrum of proteases, and that each release a unique reporter in breath. This approach was validated in a mouse model of influenza to establish baseline sensitivity and specificity in a controlled inflammatory setting and subsequently applied to diagnose lung cancer using an autochthonous Alk-mutant model. We show that combining multiplexed reporter signals with machine learning algorithms enables tumor progression tracking, treatment response monitoring, and detection of relapse after 30 minutes. Our multiplexed breath biopsy platform highlights a promising avenue for rapid, point-of-care diagnostics across diverse disease states.

bioengineering↗