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Targeting AKR1B1 inhibits metabolic reprogramming to reverse systemic therapy resistance in hepatocellular carcinoma
Qi Wang1,2, Juan Liu3, Ming Yang1,4
1Hepato-Pancreato-Biliary Center, Beijing Tsinghua Changgung Hospital, Key Laboratory of Digital Intelligence Hepatology, Ministry of Education, School of Clinical Medicine, Tsinghua Medicine, Tsinghua University, Beijing, China.
Abstract:
Hepatocellular carcinoma (HCC) is a leading cause of cancer-related mortality, and resistance to systemic therapies remains a significant clinical challenge. This study investigated the mechanisms by which metabolic reprogramming contributes to systemic treatment resistance in HCC. We established HCC cell lines with multidrug resistance characteristics and observed enhanced metabolic activity in these cells. Integrated multiomics analyses revealed hyperactive glucose‒lipid and glutathione metabolic pathways that play critical roles in supporting tumor cell proliferation and survival. We constructed a metabolic reprogramming atlas for HCC-resistant cells and identified aldo-keto reductase (Aldo-keto reductase family 1 Member B1, AKR1B1) as a key regulator of this reprogramming, which sustains drug resistance by regulating energy metabolism and enhancing stress tolerance. Importantly, AKR1B1 expression levels are closely associated with drug resistance and poor prognosis in HCC patients. The secretory nature of AKR1B1 not only underscores its predictive value but also facilitates the intercellular transmission of drug resistance. In terms of overcoming resistance, the AKR1B1 inhibitor epalrestat significantly mitigated drug resistance when it was used in combination with standard therapies. These findings underscore the importance of metabolic reprogramming in the development of HCC resistance. AKR1B1, a key enzyme that regulates metabolic reprogramming, has been identified as a potential biomarker and therapeutic target, providing new insights into overcoming resistance in HCC treatment.
Insights
Metabolic reprogramming drives drug resistance in hepatocellular carcinoma (HCC). Targeting aldo-keto reductase 1B1 (AKR1B1) with epalrestat can overcome this resistance, offering new therapeutic strategies for HCC patients.
Area of Science:
- Oncology
- Metabolic pathways
- Cancer research
Background:
- Hepatocellular carcinoma (HCC) is a major cause of cancer mortality.
- Resistance to systemic therapies is a significant clinical challenge in HCC treatment.
Purpose of the Study:
- To investigate the role of metabolic reprogramming in HCC systemic treatment resistance.
- To identify key regulators and mechanisms driving this resistance.
Main Methods:
- Established multidrug-resistant HCC cell lines.
- Performed integrated multiomics analyses.
- Constructed a metabolic reprogramming atlas for resistant HCC cells.
Main Results:
- Observed enhanced metabolic activity in resistant HCC cells, particularly in glucose-lipid and glutathione pathways.
- Identified aldo-keto reductase 1B1 (AKR1B1) as a key regulator of metabolic reprogramming, sustaining drug resistance.
- Found AKR1B1 expression correlates with drug resistance, poor prognosis, and intercellular resistance transmission in HCC patients.
- Demonstrated that epalrestat, an AKR1B1 inhibitor, mitigates drug resistance when combined with standard therapies.
Conclusions:
- Metabolic reprogramming is crucial for developing HCC resistance.
- AKR1B1 is a potential biomarker and therapeutic target for overcoming HCC drug resistance.
- Targeting AKR1B1 offers a promising strategy to improve HCC treatment outcomes.
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