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Shoemaker, C. J.

Publications and source records attributed to Shoemaker, C. J..

2 recordsLinked to original sources

Virus-Like Particles and Magnetic Microspheres Provide a Flexible and Sustainable Multiplexed Alphavirus Immunodiagnostic Platform

There is a pressing need for sustainable and sensitive immunodiagnostics for use in public health efforts to understand and combat the threat of endemic and emerging infectious diseases. We describe a novel approach to immunodiagnostics based on virus-like particles (VLPs) attached to magnetic beads. This flexible, innovative immunoassay system, based on the MAGPIX(R) platform, improves sensitivity by up to 2-logs and has faster sample-to-answer time over traditional methods. As a proof of concept, a retroviral-based VLP, that presents the Venezuelan equine encephalitis virus E1/E2 glycoprotein antigen on its surface, was generated and coupled to magnetic beads to create VLP-conjugated microspheres (VCMs). Using these VCMs, IgG and IgM antibodies were detectable in nonhuman primate (NHP) and human clinical serum samples at dilutions of 1 x 104 and greater. We extended the VCM methodology to two other New-World alphaviruses, eastern and western equine encephalitis viruses, as well as an Old-World alphavirus, Chikungunya virus, demonstrating the flexibility of this approach toward different VLP architectures. When multiplexed on the MAGPIX(R) platform, the VCMs provided differential diagnosis between Old-World and New-World alphaviruses and well as a route toward assessing the humoral response to both natural infection and vaccination. This VCM system will allow more rapid and efficient detection of endemic and emerging viral pathogens in human populations.

microbiology

A new CRISPR screening approach for identifying novel autophagy-related factors and cytoplasm-to-lysosome trafficking routes

Selective autophagy comprises cytoplasm-to-lysosome trafficking routes that transport cargos using double-membrane vesicles (autophagosomes). Cargos are detected by receptor proteins, which typically also bind to lipid-conjugated LC3 proteins on autophagosome membranes. We dissected lysosomal delivery of four SQSTM1-like receptors by genome-wide CRISPR screening looking for novel autophagy-related (ATG) factors and trafficking routes. We uncovered new mammalian ATG factors including TMEM41B, an endoplasmic reticulum membrane protein required for autophagosome membrane expansion and/or closure. Furthermore, we found that certain receptors remain robustly targeted to the lysosome even in the absence of ATG7 or other LC3 conjugation factors. Lastly, we identified a unique genetic fingerprint behind receptor flux in ATG7KO cells, which includes factors implicated in nucleating autophagosome formation and vesicle trafficking factors. Our work uncovers new ATG factors, reveals a malleable network of autophagy receptor genetic interactions, and provides a valuable resource (http://crispr.deniclab.com) for further mining of novel autophagy mechanisms.

cell biology