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USP29 coordinates MYC and HIF1α stabilization to promote tumor metabolism and progression
Rongfu Tu1,2, Wenqian Kang1,2, Mengjie Yang2
1Department of Urology, Zhongnan Hospital of Wuhan University, 430071, Wuhan, China.
Abstract:
Tumor cells must rewire cellular metabolism to satisfy the demands of unbridled growth and proliferation. How these metabolic processes are integrated to fuel cancer cell growth remains largely unknown. Deciphering the regulatory mechanisms is vital to develop targeted strategies for tumor-selective therapies. We herein performed an unbiased and functional siRNA screen against 96 deubiquitinases, which play indispensable roles in cancer and are emerging as therapeutic targets, and identified USP29 as a top candidate essential for metabolic reprogramming that support biosynthesis and survival in tumor cells. Integrated metabolic flux analysis and molecular investigation reveal that USP29 directly deubiquitinates and stabilizes MYC and HIF1α, two master regulators of metabolic reprogramming, enabling adaptive response of tumor cells in both normoxia and hypoxia. Systemic knockout of Usp29 depleted MYC and HIF1α in MYC-driven neuroblastoma and B cell lymphoma, inhibited critical metabolic targets and significantly prolonged survival of tumor-bearing mice. Strikingly, mice homozygous null for the Usp29 gene are viable, fertile, and display no gross phenotypic abnormalities. Altogether, these results demonstrate that USP29 selectively coordinates MYC and HIF1α to integrate metabolic processes critical for cancer cell growth, and therapeutic targeting of USP29, a potentially targetable enzyme, could create a unique vulnerability given deregulation of MYC and HIF1α frequently occurs in human cancers.
Insights
USP29 is essential for cancer cell growth by stabilizing MYC and HIF1α, key regulators of metabolic reprogramming. Targeting USP29 offers a promising strategy for cancer therapy.
Area of Science:
- Oncology
- Molecular Biology
- Metabolic Engineering
Background:
- Cancer cells exhibit altered metabolism to support rapid growth.
- Understanding metabolic reprogramming is crucial for developing targeted cancer therapies.
- Deubiquitinases are emerging as important targets in cancer treatment.
Purpose of the Study:
- To identify deubiquitinases involved in cancer metabolic reprogramming.
- To investigate the role of USP29 in supporting tumor cell growth and survival.
- To explore USP29 as a potential therapeutic target.
Main Methods:
- Functional siRNA screen of 96 deubiquitinases.
- Metabolic flux analysis.
- Molecular investigation of MYC and HIF1α regulation.
- In vivo studies using mouse models of neuroblastoma and B cell lymphoma.
Main Results:
- USP29 was identified as essential for tumor cell metabolic reprogramming.
- USP29 deubiquitinates and stabilizes MYC and HIF1α, promoting tumor cell adaptation.
- Systemic knockout of Usp29 inhibited tumor growth and prolonged survival in mice.
- USP29 knockout mice are viable and exhibit no abnormalities.
Conclusions:
- USP29 integrates metabolic processes by stabilizing MYC and HIF1α, critical for cancer cell growth.
- USP29 is a selective and druggable target for cancer therapy.
- Targeting USP29 exploits a vulnerability in cancers with deregulated MYC and HIF1α.
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