A Chimeric Signal Peptide-Galectin-3 Conjugate Induces Glycosylation-Dependent Cancer Cell-Specific Apoptosis

Sok-Hyong Lee1, Fatima Khwaja Rehman1, Kari C Tyler1

  • 1Department of Neurosurgery, Emory University, Atlanta, Georgia.

Abstract

Insights

A novel chimeric peptide conjugate, sGal-3, targets aberrant cancer cell glycosylation to induce cancer-specific death. This conjugate shows promise for new cancer therapies by reducing tumor growth and increasing survival in preclinical models.

Area of Science:

  • Oncology
  • Glycobiology
  • Drug Discovery

Background:

  • Altered glycosylation is a hallmark of cancer, presenting a target for novel cancer therapies.
  • Aberrantly N-glycosylated cell surface receptors are characteristic of many cancer cells.

Purpose of the Study:

  • To design and evaluate a novel secreted chimeric signal peptide-Galectin-3 conjugate (sGal-3).
  • To investigate sGal-3's ability to induce cancer-specific cell death by targeting aberrant N-glycosylation on cancer cells.

Main Methods:

  • Genetic engineering of Galectin-3 with a signal peptide to create sGal-3.
  • In vitro testing of sGal-3 on normal and tumor cells.
  • In vivo evaluation of sGal-3 in lung cancer and glioma models.
  • Investigation of sGal-3's binding to cell surface glycans and downstream signaling.

Main Results:

  • sGal-3 preferentially binds to β1 integrin on tumor cells with aberrant N-glycosylation.
  • This interaction triggers a proapoptotic signaling cascade (oncoglycan-β1/calpain/caspase-9).
  • sGal-3 reduced tumor growth in lung cancer and glioma models, improving animal survival.

Conclusions:

  • sGal-3 effectively kills cancer cells with aberrant N-glycosylation via a novel integrin β1-dependent pathway.
  • Aberrant N-oncoglycans are validated cancer targets.
  • The chimeric sGal-3 peptide conjugate warrants further development for cancer therapy.

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