PRMT1 Sustains De Novo Fatty Acid Synthesis by Methylating PHGDH to Drive Chemoresistance in Triple-Negative Breast Cancer

Author:

Yamamoto Takehiro1ORCID,Hayashida Tetsu2ORCID,Masugi Yohei3ORCID,Oshikawa Kiyotaka4ORCID,Hayakawa Noriyo5ORCID,Itoh Mai5ORCID,Nishime Chiyoko5ORCID,Suzuki Masami5ORCID,Nagayama Aiko2ORCID,Kawai Yuko2ORCID,Hishiki Takako1ORCID,Matsuura Tomomi6ORCID,Naito Yoshiko6ORCID,Kubo Akiko1ORCID,Yamamoto Arisa1ORCID,Yoshioka Yujiro1ORCID,Kurahori Tomokazu1ORCID,Nagasaka Misa1ORCID,Takizawa Minako1ORCID,Takano Naoharu1ORCID,Kawakami Koji1ORCID,Sakamoto Michiie3ORCID,Wakui Masatoshi7ORCID,Yamamoto Takushi8ORCID,Kitagawa Yuko2ORCID,Kabe Yasuaki1ORCID,Horisawa Kenichi9ORCID,Suzuki Atsushi9ORCID,Matsumoto Masaki4ORCID,Suematsu Makoto510ORCID

Affiliation:

1. 1Department of Biochemistry, Keio University School of Medicine, Tokyo, Japan.

2. 2Department of Surgery, Keio University School of Medicine, Tokyo, Japan.

3. 3Department of Pathology, Keio University School of Medicine, Tokyo, Japan.

4. 4Department of Omics and Systems Biology, Niigata University Graduate School of Medical and Dental Sciences, Niigata, Japan.

5. 5Central Institute for Experimental Medicine and Life Science, Kawasaki, Japan.

6. 6Clinical Translational Research Center, Keio University Hospital, Tokyo, Japan.

7. 7Department of Laboratory Medicine, Keio University School of Medicine, Tokyo, Japan.

8. 8Solutions COE Analytical & Measuring Instruments Division, Shimadzu Corporation, Kyoto, Japan.

9. 9Division of Organogenesis and Regeneration, Medical Institute of Bioregulation, Kyushu University, Fukuoka, Japan.

10. 10Keio University WPI-Bio2Q Research Center, Tokyo, Japan.

Abstract

Abstract Triple-negative breast cancer (TNBC) chemoresistance hampers the ability to effectively treat patients. Identification of mechanisms driving chemoresistance can lead to strategies to improve treatment. Here, we revealed that protein arginine methyltransferase-1 (PRMT1) simultaneously methylates D-3-phosphoglycerate dehydrogenase (PHGDH), a critical enzyme in serine synthesis, and the glycolytic enzymes PFKFB3 and PKM2 in TNBC cells. 13C metabolic flux analyses showed that PRMT1-dependent methylation of these three enzymes diverts glucose toward intermediates in the serine-synthesizing and serine/glycine cleavage pathways, thereby accelerating the production of methyl donors in TNBC cells. Mechanistically, PRMT1-dependent methylation of PHGDH at R54 or R20 activated its enzymatic activity by stabilizing 3-phosphoglycerate binding and suppressing polyubiquitination. PRMT1-mediated PHGDH methylation drove chemoresistance independently of glutathione synthesis. Rather, activation of the serine synthesis pathway supplied α-ketoglutarate and citrate to increase palmitate levels through activation of fatty acid synthase (FASN). Increased palmitate induced protein S-palmitoylation of PHGDH and FASN to further enhance fatty acid synthesis in a PRMT1-dependent manner. Loss of PRMT1 or pharmacologic inhibition of FASN or protein S-palmitoyltransferase reversed chemoresistance in TNBC. Furthermore, IHC coupled with imaging MS in clinical TNBC specimens substantiated that PRMT1-mediated methylation of PHGDH, PFKFB3, and PKM2 correlates with chemoresistance and that metabolites required for methylation and fatty acid synthesis are enriched in TNBC. Together, these results suggest that enhanced de novo fatty acid synthesis mediated by coordinated protein arginine methylation and protein S-palmitoylation is a therapeutic target for overcoming chemoresistance in TNBC. Significance: PRMT1 promotes chemoresistance in TNBC by methylating metabolic enzymes PFKFB3, PKM2, and PHGDH to augment de novo fatty acid synthesis, indicating that targeting this axis is a potential treatment strategy.

Funder

Japan Society for the Promotion of Science

Exploratory Research for Advanced Technology

Moonshot Research and Development Program

Core Research for Evolutional Science and Technology

Human Biology Microbiome Quantum Research Center

Takeda Science Foundation

Research Foundation of Opto-Science and Technology

Publisher

American Association for Cancer Research (AACR)

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