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Mei, A.

Publications and source records attributed to Mei, A..

3 recordsLinked to original sources

Screening of a pooled library of chimeric antigen receptor T cells based on secretory function

Chimeric antigen receptor (CAR) T cell therapies have shown promise in treating hematologic malignancies, but challenges remain due to immune suppression, antigen heterogeneity, and insufficient functional screening platforms. Here, we present a modular nanovial-based platform for high-throughput, single-cell functional screening of pooled CAR T cell libraries. Nanovials, hydrogel microparticles with nanoliter-scale cavities, were functionalized with recombinant HER2 antigen and cytokine-capture antibodies to simulate antigen-presenting cells and capture secreted interferon-{gamma} (IFN{gamma}). This system enabled the selective capture, activation, and functional profiling of CAR T cells based on antigen engagement and cytokine secretion. We screened a 32-variant CAR library with diverse intracellular signaling domains, using nanovials to isolate IFN{gamma}-secreting cells after 3- and 12-hour CAR-specific stimulation. IL15RA-containing CARs, particularly IL15RA-CD28, were preferentially enriched in the sorted T cells after 3 hours of stimulation, consistent with early effector activation profiles. By 12 hours, IL15RA-containing constructs remained enriched while other CD40-containing domains showed delayed but substantial enrichment, suggesting prolonged signaling dynamics. The platforms high-throughput capability (>2 million cells screened), compatibility with downstream sequencing, and tunable antigen presentation make it ideal for identifying CAR constructs associated with various time-dependent secretion phenotypes.

bioengineering↗

Functionalizing hydrogel nanovials with vesicles mimicking antigen-presenting vesicles and cancer exosomes improves T cell capture and activation

Recent advances have demonstrated the application of microcavity-containing hydrogel microparticles, known as nanovials, for the massively parallel and high-throughput screening of therapeutic T cell populations for adoptive cell therapies. Nanovial cavities coated with peptide-MHC (pMHC) or antigen tetramers selectively bind to their cognate T cell receptor (TCR) or chimeric antigen receptor (CAR) to activate T cells and capture secreted cytokines. However, binding of tetramers or recombinantly expressed antigen by T cells is not always correlated with T cell activation or cytotoxicity as the binding interface is not fully representative of the natural immunological synapse formed between T cells and professional antigen-presenting cells (APCs). Here, we leverage the recent discovery of an ESCRT- and ALIX-binding region (EABR) sequence to generate antigen-presenting vesicles and cancer-mimicking exosomes from standard HEK293T and Expi293F cell cultures. EABR-mediated vesicles present natural, full-length oncologically-relevant membrane proteins embedded in lipid bilayers to functionalize the nanovial cavity with cell-like membranes. These hydrogel nanovials functionalized with the EABR-mediated vesicles show improved T cell capture of 1G4 T cells and enhanced activation of HER2 CAR-T cells compared to hydrogel surfaces functionalized with recombinantly-expressed soluble proteins.

bioengineering↗

An arrayed CRISPR/Cas9 screen identifies mTORC1 as a regulator of lipid droplet accumulation in APOE E3 and APOE KO iPSC-derived microglia

Variants of the Apolipoprotein E (APOE) gene, particularly the E4 allele, are significantly associated with an increased risk of Alzheimers Disease and have been implicated in neuroinflammatory processes due to disrupted lipid metabolism. Lipid alterations can manifest in glial cells as an excessive buildup of lipids, potentially contributing to neuroinflammation. In this study, we observed a heightened lipid load in APOE-deficient human induced pluripotent stem cell (iPSC)-derived microglia relative to cells with other APOE isoforms. To explore the mechanisms governing lipid handling within microglia, we established a technique for the nucleofection of CRISPR/Cas9 ribonucleoprotein complexes into iPSC-derived myeloid cells. Utilizing this method, we performed a targeted screen to identify key upstream modifiers in lipid droplet formation. Our findings highlight the mammalian target of rapamycin complex 1 (mTORC1) signaling pathway as a pivotal influence on lipid storage in microglia with both APOE3 and APOE knockout genotypes, underscoring its role in lipid dysregulation associated with Alzheimers Disease and neuroinflammation.

neuroscience↗