Ubiquitination mediated cisplatin resistance in bladder cancer

Yuzhong Wang1,2, Junfang Yuan3, Shaowei Guo2

  • 1Department of Surgery, Hebei Medical University, Shijiazhuang City.

Anti-Cancer Drugs
|April 20, 2026
PubMed

Insights

Rac family small GTPase 3 (RAC3) drives cisplatin resistance in bladder cancer by promoting glycolysis. Inhibiting RAC3 via MYCBP2-mediated ubiquitination restores sensitivity, offering a potential therapeutic strategy.

Area of Science:

  • Oncology
  • Molecular Biology
  • Biochemistry

Background:

  • Bladder cancer (BCa) frequently exhibits resistance to cisplatin, a cornerstone platinum-based chemotherapy.
  • Chemoresistance in BCa is linked to altered cellular metabolism, particularly enhanced glycolysis.
  • Rac family small GTPase 3 (RAC3) has emerged as a potential mediator of cisplatin resistance.

Purpose of the Study:

  • To elucidate the molecular mechanisms by which RAC3 influences cisplatin resistance in bladder cancer.
  • To investigate the role of RAC3 in regulating glycolytic activity and its impact on chemoresistance.
  • To identify potential therapeutic targets for overcoming cisplatin resistance in BCa.

Main Methods:

  • Analysis of RAC3 expression and glycolysis markers in clinical BCa tissues and cell lines (sensitive and resistant).
  • Generation of cisplatin-resistant cell lines and assessment of cell viability, apoptosis, and metabolic activity.
  • Investigation of RAC3 ubiquitination, stability, and its interaction with MYCBP2 and PAK1.
  • In vivo studies using BCa xenograft models.

Main Results:

  • Elevated RAC3 expression and glycolytic activity were observed in cisplatin-resistant BCa tissues and cells.
  • RAC3 overexpression enhanced cell viability, glycolysis, and chemoresistance, while RAC3 knockdown restored cisplatin sensitivity.
  • MYCBP2-mediated ubiquitination of RAC3 led to its proteasomal degradation, suppressing glycolysis and sensitizing resistant cells to cisplatin.
  • RAC3 knockdown effects were reversed by PAK1 overexpression, highlighting the PAK1/pyruvate dehydrogenase axis.

Conclusions:

  • RAC3 plays a critical role in promoting cisplatin resistance in bladder cancer by enhancing glycolytic activity.
  • MYCBP2-mediated ubiquitination and subsequent degradation of RAC3 represent a novel mechanism to overcome chemoresistance.
  • Targeting the RAC3-PAK1-pyruvate dehydrogenase axis offers a promising therapeutic strategy for improving cisplatin efficacy in BCa.