MZF1-mediated GAPDH overexpression drives glycolytic reprogramming and neuroendocrine progression in advanced

Wang Liu1, Lily He2, Cuncong Zhong3

  • 1Departments of Urology, The University of Kansas Medical Center, Kansas City, KS 66160, USA.

Insights

Androgen receptor (AR) antagonist resistance in prostate cancer drives neuroendocrine progression. This study reveals a new metabolic pathway involving GAPDH that promotes this resistance, suggesting GAPDH inhibition as a potential therapy.

Area of Science:

  • Oncology
  • Metabolic pathways
  • Cancer biology

Background:

  • Androgen receptor (AR) antagonist resistance is a major challenge in advanced prostate cancer.
  • Treatment-induced neuroendocrine progression is a lethal, therapy-resistant subtype of prostate cancer.
  • The role of metabolic adaptation in this progression is not fully understood.

Purpose of the Study:

  • To identify novel metabolic reprogramming mechanisms in castration-resistant prostate cancer (CRPC) induced by AR antagonists.
  • To investigate the role of glyceraldehyde-3-phosphate dehydrogenase (GAPDH) in AR antagonist-induced neuroendocrine progression.
  • To explore the therapeutic potential of targeting GAPDH in treatment-resistant prostate cancer.

Main Methods:

  • Utilized CRPC models and xenografts.
  • Investigated the effects of AR antagonist treatment on cellular metabolism and gene expression.
  • Employed genetic depletion of GAPDH and pharmacological inhibition.
  • Identified transcription factors using techniques like ChIP and mass spectrometry.

Main Results:

  • AR antagonist treatment enhanced glycolysis and upregulated GAPDH expression in CRPC models.
  • Genetic depletion of GAPDH reduced glycolytic activation, neuroendocrine markers, and tumor growth.
  • Myeloid zinc finger-1 (MZF1) was identified as a key transcription factor for GAPDH induction.
  • Pharmacological inhibition of GAPDH suppressed tumor growth and neuroendocrine programs in xenograft models.

Conclusions:

  • An AR antagonist-induced MZF1-GAPDH signaling axis promotes glycolytic activation and metabolic adaptation during treatment resistance.
  • Targeting GAPDH-dependent metabolic reprogramming is a promising therapeutic strategy for treatment-resistant prostate cancer.
  • This study uncovers a critical metabolic vulnerability in advanced prostate cancer.

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