Sulfiredoxin as a Potential Therapeutic Target for Advanced and Metastatic Prostate Cancer

Caroline N Barquilha1,2, Nilton J Santos1,2, Caio C D Monção1,2

  • 1Department of Morphology, Institute of Biosciences, São Paulo State University, Botucatu, 18618689 SP, Brazil.

Insights

Researchers identified the antioxidant enzyme sulfiredoxin (SRXN1) as a potential therapeutic target for prostate cancer (PCa). Targeting SRXN1 may offer a new treatment strategy for advanced, castration-resistant PCa.

Area of Science:

  • Oncology
  • Molecular Biology
  • Biochemistry

Background:

  • Prostate cancer (PCa) incidence is rising, becoming a leading cause of cancer death in men.
  • Advanced, treatment-refractory metastatic PCa requires novel therapeutic strategies.
  • Antioxidant pathways play a role in cancer development and progression.

Purpose of the Study:

  • To identify novel therapeutic targets for PCa by integrating cross-species genomic data.
  • To investigate the role of oxidative stress-related genes in PCa.
  • To evaluate sulfiredoxin (SRXN1) as a potential therapeutic target for PCa.

Main Methods:

  • RNA-sequencing analysis of genetically engineered mouse models (GEMMs) of PCa.
  • Immunohistochemistry to confirm protein expression in mouse prostate tumors.
  • Analysis of human PCa databases and tissue microarrays.
  • In vitro studies using PCa cell lines and siRNA-mediated gene silencing.

Main Results:

  • Sulfiredoxin (SRXN1) mRNA and protein expression were elevated in mouse prostate tumors across different stages.
  • SRXN1 is overexpressed in a subset of human high-grade prostate tumors.
  • Elevated SRXN1 expression correlates with aggressive PCa, poor prognosis, and reduced survival.
  • SRXN1 downregulation decreased the viability of PCa cells.

Conclusions:

  • The antioxidant enzyme SRXN1 is identified as a potential therapeutic target for PCa.
  • SRXN1 overexpression is associated with aggressive disease and worse outcomes in PCa patients.
  • SRXN1 inhibitors may represent a promising strategy for treating castration-resistant PCa with SRXN1 overexpression.

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