Claudin-2 binding peptides, VPDSM and DSMKF, down-regulate claudin-2 expression and anticancer resistance in human

Haruka Nasako1, Risa Akizuki1, Yui Takashina1

  • 1Laboratory of Biochemistry, Department of Biopharmaceutical Sciences, Gifu Pharmaceutical University, Gifu 501-1196, Japan.

Insights

New peptides, VPDSM and DSMKF, enhance anticancer drug sensitivity in lung adenocarcinoma by reducing claudin-2 (CLDN2) expression via endocytosis and lysosomal degradation.

Area of Science:

  • Molecular Biology
  • Cell Biology
  • Oncology

Background:

  • Claudin-2 (CLDN2) is a tight junction protein implicated in chemoresistance in lung adenocarcinoma.
  • Existing treatments lack effective agents to improve sensitivity to anticancer drugs.

Purpose of the Study:

  • To investigate novel peptides, VPDSM and DSMKF, as potential agents to enhance chemosensitivity in lung adenocarcinoma.
  • To elucidate the mechanism by which these peptides affect CLDN2 expression and cellular sensitivity.

Main Methods:

  • Utilized A549 lung adenocarcinoma cell lines and spheroid culture models.
  • Assessed CLDN2 protein and mRNA levels following peptide treatment.
  • Investigated the role of clathrin-dependent endocytosis (CDE) and lysosomal pathways using inhibitors like monodansylcadaverine (MDC) and chloroquine.
  • Employed quartz crystal microbalance assays to determine peptide-CLDN2 binding.
  • Measured paracellular permeability using lucifer yellow.
  • Evaluated chemosensitivity enhancement with doxorubicin.

Main Results:

  • VPDSM and DSMKF significantly decreased CLDN2 protein levels without altering mRNA.
  • Peptide-induced CLDN2 reduction was dependent on CDE and lysosomal degradation.
  • CLDN2 was displaced from tight junctions, and paracellular permeability increased.
  • Both peptides enhanced doxorubicin sensitivity in spheroid models, an effect blocked by MDC.

Conclusions:

  • VPDSM and DSMKF enhance chemosensitivity in lung adenocarcinoma by promoting CLDN2 degradation through CDE and lysosomal pathways.
  • These peptides, mimicking CLDN2's ECL2, show promise as novel adjuvant therapies for lung adenocarcinoma.