D-2-HG Inhibits IDH1mut Glioma Growth via FTO Inhibition and Resultant m6A Hypermethylation

Author:

Pianka Sean T.1ORCID,Li Tie1ORCID,Prins Terry J.1ORCID,Eldred Blaine S.C.1ORCID,Kevan Bryan M.1ORCID,Liang Haowen1ORCID,Zapanta Rinonos Serendipity2ORCID,Kornblum Harley I.1ORCID,Nathanson David A.3ORCID,Pellegrini Matteo4ORCID,Liau Linda M.5ORCID,Nghiemphu Phioanh Leia1ORCID,Cloughesy Timothy F.1ORCID,Lai Albert1ORCID

Affiliation:

1. 1Department of Neurology, UCLA Medical Center, Los Angeles, California.

2. 2Department of Neurosurgery, University of Florida, College of Medicine, Gainesville, Florida.

3. 3Department of Molecular and Medical Pharmacology, UCLA, Los Angeles, California.

4. 4Department of Molecular, Cell and Developmental Biology, UCLA, Los Angeles, California.

5. 5Department of Neurosurgery, UCLA Medical Center, Los Angeles, California.

Abstract

Abstract IDH1mut gliomas produce high levels of D-2-hydroxyglutarate (D-2-HG), an oncometabolite capable of inhibiting α-ketoglutarate–dependent dioxygenases critical to a range of cellular functions involved in gliomagenesis. IDH1mut gliomas also exhibit slower growth rates and improved treatment sensitivity compared with their IDH1wt counterparts. This study explores the mechanism driving apparent reduced growth in IDH1mut gliomas. Specifically, we investigated the relationship between IDH1mut and the RNA N6-methyladenosine (m6A) demethylases FTO and ALKBH5, and their potential for therapeutic targeting. We investigated the role of D-2-HG and m6A in tumor proliferation/viability using glioma patient tumor samples, patient-derived gliomaspheres, and U87 cells, as well as with mouse intracranial IDH1wt gliomasphere xenografts. Methylation RNA immunoprecipitation sequencing (MeRIP-seq) RNA sequencing was used to identify m6A-enriched transcripts in IDH1mut glioma. We show that IDH1mut production of D-2-HG is capable of reducing glioma cell growth via inhibition of the m6A epitranscriptomic regulator, FTO, with resultant m6A hypermethylation of a set of mRNA transcripts. On the basis of unbiased MeRIP-seq epitranscriptomic profiling, we identify ATF5 as a hypermethylated, downregulated transcript that potentially contributes to increased apoptosis. We further demonstrate how targeting this pathway genetically and pharmacologically reduces the proliferative potential of malignant IDH1wt gliomas, both in vitro and in vivo. Our work provides evidence that selective inhibition of the m6A epitranscriptomic regulator FTO attenuates growth in IDH1wt glioma, recapitulating the clinically favorable growth phenotype seen in the IDH1mut subtype. Significance: We show that IDH1mut-generated D-2-HG can reduce glioma growth via inhibition of the m6A demethylase, FTO. FTO inhibition represents a potential therapeutic target for IDH1wt gliomas and possibly in conjunction with IDH1mut inhibitors for the treatment of IDH1mut glioma. Future studies are necessary to demonstrate the role of ATF5 downregulation in the indolent phenotype of IDH1mut gliomas, as well as to identify other involved gene transcripts deregulated by m6A hypermethylation.

Funder

U.S. Department of Defense

HHS | NIH | National Cancer Institute

UC | UCLA | Jonsson Comprehensive Cancer Center

HHS | NIH | National Institute of General Medical Sciences

Publisher

American Association for Cancer Research (AACR)

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