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Paek, J. H.

Publications and source records attributed to Paek, J. H..

2 recordsLinked to original sources

Leucine zipper-based SAIM imaging identifies therapeutic agents to disrupt the cancer cell glycocalyx for enhanced immunotherapy

The abnormally thick glycocalyx of cancer cells can physically limit immune-cell engagement and reduce the efficacy of cellular immunotherapies, but strategies for identifying pharmacological agents that relieve this barrier remain limited. Here, we establish glycocalyx thickness as a pharmacologically actionable physical phenotype. Disruption of mucin-type O-glycosylation reduced glycocalyx thickness and increased NK- and CAR-NK-mediated killing, demonstrating that pharmacological glycocalyx remodeling can enhance innate and CAR-directed cytotoxicity. To screen this phenotype directly, we developed a scanning angle interference microscopy (SAIM) platform using complementary leucine zipper pairs as a stable extracellular plasma-membrane reference. A focused screen of glycosylation and metabolic inhibitors resolved compound- and cell-type-specific nanoscale changes in glycocalyx thickness and identified several thinning agents. Castanospermine, an inhibitor of early N-glycan processing, was among the strongest hits and reduced mucin-probe binding in an independent mucin-rich gastric cancer model. Castanospermine-treated gastric cancer cells retained MUC17 antibody recognition and showed increased physical avidity for MUC17 CAR-T cells, while castanospermine enhanced MUC17 CAR-T-mediated tumor control in real-time co-culture assays. These findings establish direct glycocalyx-thickness measurement as a physical-phenotype-guided screening strategy and identify castanospermine as a candidate modulator for combination with MUC17 CAR-T cells.

bioengineering↗

Mucins form a nanoscale material barrier against immune cell attack

The cancer cell glycocalyx serves as a major line of defense against immune surveillance. However, how specific physical properties of the glycocalyx contribute to immune evasion and how these properties are regulated are not well understood. Here, we uncover how the surface density, glycosylation, and crosslinking of cancer-associated mucins contribute to the nanoscale material thickness of the glycocalyx, and further analyze the effect of the glycocalyx thickness on resistance to effector cell attack. Natural Killer (NK) cell-mediated cytotoxicity exhibits a near perfect inverse correlation with the glycocalyx thickness of target cells regardless of the specific glycan structures present. NK cells expressing a chimeric antigen receptor (CAR) have an enhanced ability to breach the glycocalyx and kill target cells. Equipping the NK cell surface with a mucin-digesting enzyme also improves killing with a performance enhancement that rivals or exceeds CARs in some cases. Together, our results provide new considerations for improving cancer immunotherapies.

biophysics↗