Antiproliferative factor decreases Akt phosphorylation and alters gene expression via CKAP4 in T24 bladder carcinoma

Hanief M Shahjee1, Kristopher R Koch, Li Guo

  • 1Division of Infectious Diseases, Department of Medicine, University of Maryland School of Medicine, Baltimore, Maryland, USA.

Abstract

Insights

Antiproliferative factor (APF) inhibits bladder cancer cell proliferation by targeting the CKAP4 receptor. This mechanism involves regulating key signaling pathways and gene expression, offering potential therapeutic strategies for advanced bladder cancer.

Area of Science:

  • Oncology
  • Molecular Biology
  • Biochemistry

Background:

  • Urinary bladder cancer presents a significant global health challenge with poor prognoses for advanced cases.
  • Antiproliferative factor (APF), a glycopeptide inhibitor, is implicated in regulating epithelial cell proliferation and was identified in interstitial cystitis patients.
  • APF's antiproliferative effects in normal bladder cells are mediated by cytoskeletal associated protein 4 (CKAP4).

Purpose of the Study:

  • To investigate whether CKAP4 mediates the antiproliferative effects of synthetic asialo-APF (as-APF) in T24 bladder cancer cells.
  • To explore the impact of as-APF on downstream Wnt/frizzled signaling events within T24 cells.
  • To elucidate the role of CKAP4 in as-APF's mechanism of action in bladder cancer.

Main Methods:

  • T24 bladder cancer cells were treated with synthetic as-APF and subjected to CKAP4 siRNA knockdown.
  • Cell proliferation was assessed using 3H-thymidine incorporation.
  • Quantitative reverse transcriptase polymerase chain reaction (qRT-PCR) and Western blot analyses were employed to evaluate the expression and phosphorylation of key signaling molecules (Akt, GSK3β, β-catenin) and proteins (p53, MMP2).

Main Results:

  • Synthetic as-APF significantly decreased T24 cell proliferation, MMP2 expression, and phosphorylation of Akt, GSK3β, and β-catenin.
  • APF treatment increased p53 expression and altered specific β-catenin phosphorylation patterns.
  • These effects were specifically abolished by CKAP4 siRNA knockdown, confirming CKAP4's essential role.

Conclusions:

  • Synthetic as-APF effectively inhibits proliferation in T24 bladder carcinoma cells through the CKAP4 receptor.
  • The mechanism involves modulating the phosphorylation of Akt, GSK3β, and β-catenin, as well as regulating the expression of p53 and MMP2.
  • These findings highlight the therapeutic potential of targeting the APF-CKAP4 pathway in bladder cancer treatment.

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