Enhanced Glutaminolysis Drives Hypoxia-Induced Chemoresistance in Pancreatic Cancer

Author:

Park Seung Joon12ORCID,Yoo Hee Chan2ORCID,Ahn Eunyong3ORCID,Luo Enzhi2ORCID,Kim Yeabeen4ORCID,Sung Yulseung2ORCID,Yu Ya Chun2ORCID,Kim Kibum2ORCID,Min Do Sik2ORCID,Lee Hee Seung5ORCID,Hwang Geum-Sook3ORCID,Ahn TaeJin4ORCID,Choi Junjeong2ORCID,Bang Seungmin5ORCID,Han Jung Min126ORCID

Affiliation:

1. 1Interdisciplinary Program of Integrated OMICS for Biomedical Science, Graduate School, Yonsei University, Seoul, South Korea.

2. 2Yonsei Institute of Pharmaceutical Sciences, College of Pharmacy, Yonsei University, Incheon, South Korea.

3. 3Integrated Metabolomics Research Group, Western Seoul Center, Korea Basic Science Institute, Seoul, South Korea.

4. 4Department of Life Science, Handong Global University, Pohang, South Korea.

5. 5Division of Gastroenterology, Department of Internal Medicine, Yonsei University College of Medicine, Seoul, South Korea.

6. 6POSTECH Biotech Center, Pohang University of Science and Technology, Pohang, South Korea.

Abstract

AbstractPancreatic ductal adenocarcinoma (PDAC) exhibits severe hypoxia, which is associated with chemoresistance and worse patient outcome. It has been reported that hypoxia induces metabolic reprogramming in cancer cells. However, it is not well known whether metabolic reprogramming contributes to hypoxia. Here, we established that increased glutamine catabolism is a fundamental mechanism inducing hypoxia, and thus chemoresistance, in PDAC cells. An extracellular matrix component–based in vitro three-dimensional cell printing model with patient-derived PDAC cells that recapitulate the hypoxic status in PDAC tumors showed that chemoresistant PDAC cells exhibit markedly enhanced glutamine catabolism compared with chemoresponsive PDAC cells. The augmented glutamine metabolic flux increased the oxygen consumption rate via mitochondrial oxidative phosphorylation (OXPHOS), promoting hypoxia and hypoxia-induced chemoresistance. Targeting glutaminolysis relieved hypoxia and improved chemotherapy efficacy in vitro and in vivo. This work suggests that targeting the glutaminolysis–OXPHOS–hypoxia axis is a novel therapeutic target for treating patients with chemoresistant PDAC.Significance:Increased glutaminolysis induces hypoxia via oxidative phosphorylation-mediated oxygen consumption and drives chemoresistance in pancreatic cancer, revealing a potential therapeutic strategy of combining glutaminolysis inhibition and chemotherapy to overcome resistance.

Funder

National Research Foundation of Korea

Health Fellowship Foundation

Publisher

American Association for Cancer Research (AACR)

Subject

Cancer Research,Oncology

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