Targeting BCAT1 Combined with α-Ketoglutarate Triggers Metabolic Synthetic Lethality in Glioblastoma

Author:

Zhang Bo1,Peng Hui1ORCID,Zhou Mi1,Bao Lei1,Wang Chenliang1ORCID,Cai Feng2,Zhang Hongxia1ORCID,Wang Jennifer E.1ORCID,Niu Yanling1,Chen Yan1,Wang Yijie1,Hatanpaa Kimmo J.1,Copland John A.3,DeBerardinis Ralph J.24,Wang Yingfei15ORCID,Luo Weibo16ORCID

Affiliation:

1. 1Department of Pathology, UT Southwestern Medical Center, Dallas, Texas.

2. 2Children's Medical Center Research Institute, UT Southwestern Medical Center, Dallas, Texas.

3. 3Department of Cancer Biology, Mayo Clinic, Jacksonville, Florida.

4. 4Howard Hughes Medical Institute, UT Southwestern Medical Center, Dallas, Texas.

5. 5Department of Neurology, UT Southwestern Medical Center, Dallas, Texas.

6. 6Department of Pharmacology, UT Southwestern Medical Center, Dallas, Texas.

Abstract

Abstract Branched-chain amino acid transaminase 1 (BCAT1) is upregulated selectively in human isocitrate dehydrogenase (IDH) wildtype (WT) but not mutant glioblastoma multiforme (GBM) and promotes IDHWT GBM growth. Through a metabolic synthetic lethal screen, we report here that α-ketoglutarate (AKG) kills IDHWT GBM cells when BCAT1 protein is lost, which is reversed by reexpression of BCAT1 or supplementation with branched-chain α-ketoacids (BCKA), downstream metabolic products of BCAT1. In patient-derived IDHWT GBM tumors in vitro and in vivo, cotreatment of BCAT1 inhibitor gabapentin and AKG resulted in synthetic lethality. However, AKG failed to evoke a synthetic lethal effect with loss of BCAT2, BCKDHA, or GPT2 in IDHWT GBM cells. Mechanistically, loss of BCAT1 increased the NAD+/NADH ratio but impaired oxidative phosphorylation, mTORC1 activity, and nucleotide biosynthesis. These metabolic alterations were synergistically augmented by AKG treatment, thereby causing mitochondrial dysfunction and depletion of cellular building blocks, including ATP, nucleotides, and proteins. Partial restoration of ATP, nucleotides, proteins, and mTORC1 activity by BCKA supplementation prevented IDHWT GBM cell death conferred by the combination of BCAT1 loss and AKG. These findings define a targetable metabolic vulnerability in the most common subset of GBM that is currently incurable. Significance: Metabolic synthetic lethal screening in IDHWT glioblastoma defines a vulnerability to ΑΚG following BCAT1 loss, uncovering a therapeutic strategy to improve glioblastoma treatment. See related commentary by Meurs and Nagrath, p. 2354

Funder

NCI Cancer Center

NIH

CPRIT

Welch Foundation

Publisher

American Association for Cancer Research (AACR)

Subject

Cancer Research,Oncology

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