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Updated: Jun 5, 2025

Detection of Human Leukocyte Antigen Biomarkers in Breast Cancer Utilizing Label-free Biosensor Technology
Published on: March 24, 2015
Leucine zipper-based SAIM imaging identifies therapeutic agents to disrupt the cancer cell glycocalyx for enhanced
Sangwoo Park1,2,3,4, Justin H Paek5,4, Marshall J Colville2
1Graduate Field of Biophysics, Cornell University, Ithaca, NY, USA.
Abstract:
The abnormally thick glycocalyx of cancer cells can provide a physical barrier to immune cell recognition and effective immunotherapy. Here, we demonstrate an optical method based on Scanning Angle Interference Microscopy (SAIM) for the screening of therapeutic agents that can disrupt the glycocalyx layer as a strategy to improve anti-cancer immune responses. We developed a new membrane labeling strategy utilizing leucine zipper pairs to fluorescently mark the glycocalyx layer boundary for precise and robust measurement of glycocalyx thickness with SAIM. Using this platform, we evaluated the effects of glycosylation inhibitors and targeted enzymatic degraders of the glycocalyx, with particular focus on strategies for cholangiocarcinoma (CCA), a highly lethal malignancy with limited therapeutic options. We found that CCA had the highest mean expression of the cancer-associated mucin, MUC1, across all cancers represented in the cancer cell line encyclopedia. Pharmacological inhibitors of mucin-type O-glycosylation and mucin-specific proteases, such as StcE, could dramatically reduce the glycocalyx layer in the YSCCC model of intrahepatic CCA. Motivated by these findings, we engineered Natural Killer (NK) cells tethered with StcE to enhance NK cell-mediated cytotoxicity against CCA. In a CCA xenograft model, these engineered NK cells demonstrated superior anti-tumor efficacy compared to wild-type NK cells, with no observable adverse effects. Our findings not only provide a reliable imaging-based screening platform for evaluating glycocalyx-targeting pharmacological interventions but also offer mechanistic insights into how CCA may avoid immune elimination through fortification of the glycocalyx layer with mucins. Additionally, this work presents a novel therapeutic strategy for mucin-overexpressing cancers, potentially improving immunotherapy efficacy across various cancer types.
Insights
Researchers developed a new imaging method to screen therapies that weaken cancer cell glycocalyx, improving immune response. Engineered immune cells showed enhanced anti-tumor effects against cholangiocarcinoma (CCA), offering a novel strategy for mucin-overexpressing cancers.
Area of Science:
- Cancer Biology and Immunology
- Biotechnology and Imaging
- Therapeutic Development
Background:
- Cancer cells possess a thick glycocalyx, hindering immune recognition and immunotherapy effectiveness.
- Cholangiocarcinoma (CCA) exhibits high MUC1 expression, contributing to immune evasion.
- Targeting the glycocalyx presents a strategy to enhance anti-cancer immune responses.
Purpose of the Study:
- To develop and validate an optical screening platform for glycocalyx-disrupting agents.
- To evaluate therapeutic strategies for reducing the glycocalyx in cholangiocarcinoma (CCA).
- To engineer immune cells for enhanced efficacy against mucin-overexpressing cancers.
Main Methods:
- Utilized Scanning Angle Interference Microscopy (SAIM) with a novel leucine zipper-based membrane labeling strategy.
- Screened glycosylation inhibitors and enzymatic degraders for glycocalyx disruption.
- Engineered Natural Killer (NK) cells with the mucolytic enzyme StcE for targeted cancer therapy.
Main Results:
- SAIM platform precisely measured glycocalyx thickness and identified agents that reduce it.
- Inhibitors of O-glycosylation and StcE significantly reduced glycocalyx in a CCA model.
- Engineered NK cells demonstrated superior anti-tumor efficacy in a CCA xenograft model without adverse effects.
Conclusions:
- Developed a robust imaging platform for evaluating glycocalyx-targeting cancer therapies.
- CCA evades immune detection via a fortified glycocalyx; StcE-mediated disruption is effective.
- Engineered NK cells offer a promising therapeutic approach for mucin-overexpressing cancers.
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