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.

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.