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Updated: Aug 5, 2026

Zebrafish Model of Neuroblastoma Metastasis
Published on: March 14, 2021
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.
Abstract:
Drug resistance to the androgen receptor (AR) antagonist is a critical obstacle in the clinic for advanced prostate cancers. Especially, AR antagonist treatment-induced neuroendocrine progression represents a lethal and therapy-resistant subtype. Although transcriptional and epigenetic lineage plasticity have been extensively implicated in treatment-induced neuroendocrine progression, the contribution of metabolic adaptation remains incompletely understood. Here, we identified a previously unrecognized metabolic reprogramming mechanism induced by AR antagonists in castration-resistant prostate cancer (CRPC) models. AR antagonist treatment markedly enhanced glycolytic activity and induced glyceraldehyde-3-phosphate dehydrogenase (GAPDH) expression. Genetic depletion of GAPDH suppressed AR antagonist-induced glycolytic activation, altered transcriptomic and metabolic programs, reduced neuroendocrine-associated marker expression, and inhibited xenograft tumor growth. Mechanistically, GAPDH promoter pulldown coupled with mass spectrometry, siRNA screening, and chromatin immunoprecipitation assays identified myeloid zinc finger-1 (MZF1) as a key transcription factor for Enzalutamide-induced GAPDH gene expression. Pharmacological inhibition of GAPDH using koningic acid (KA) or penta-O-galloyl-β-D-glucopyranose (PGG) significantly suppressed tumor growth and attenuated neuroendocrine-associated molecular programs in CRPC cell-derived xenograft and patient-derived t-NEPC xenograft models. Collectively, our findings identify an AR antagonist-induced MZF1-GAPDH signaling axis that promotes glycolytic activation and neuroendocrine-associated metabolic adaptation during treatment resistance. These results support targeting GAPDH-dependent metabolic reprogramming as a potential therapeutic strategy for treatment-resistant prostate cancer.
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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