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Nature Chemical Biology· 2026Q1

DHODH is the key target of the KDM4 inhibitor QC6352 in glioblastoma stem cells

Jayden Sterling, Jacinda R. Holtsmark, George L. Joun, Matthew S. Graus et al.

Short summary

The KDM4 inhibitor QC6352, previously thought to work by inhibiting KDM4 enzymes, actually exerts its potent anti-glioblastoma stem cell activity by inhibiting dihydroorotate dehydrogenase (DHODH), a key enzyme in pyrimidine synthesis.

AI-generated from the title and abstract; the full text is not read.

Key points

  • The efficacy of QC6352 and zavondemstat in glioblastoma stem cells is independent of KDM4 inhibition.
  • DHODH, an enzyme in de novo pyrimidine biosynthesis, is identified as the functional target driving the antiproliferative activity of QC6352.
  • Uridine supplementation and expression of an inhibitor-resistant DHODH mutant fully block QC6352's growth inhibition.
  • An orthogonal KDM4 inhibitor (ML324) that does not inhibit DHODH fails to replicate QC6352's effects.

AI-generated from the title and abstract; the full text is not read.

Abstract

Abstract Histone lysine demethylase 4 (KDM4) enzymes are frequently overexpressed in cancer and are considered to be promising therapeutic targets. QC6352, which is widely used as a best-in-class KDM4 chemical probe, shows potent antitumor activity across cancer models. Using comprehensive chemical biology approaches in glioblastoma models, we demonstrate that the efficacy of QC6352 and that of its clinical analog zavondemstat are independent of KDM4 inhibition. Instead, we identify dihydroorotate dehydrogenase (DHODH), a key enzyme in de novo pyrimidine biosynthesis, as the functional target driving their antiproliferative activity. Uridine supplementation and expression of an inhibitor-resistant DHODH mutant fully abrogate growth inhibition, whereas the orthogonal KDM4 inhibitor ML324, which lacks DHODH inhibition, fails to phenocopy QC6352. These findings establish QC6352 and zavondemstat as dual KDM4–DHODH inhibitors and identify DHODH inhibition as the dominant driver of their antiglioblastoma efficacy, as well as demonstrating the need for orthogonal chemical probes to accurately define drug mechanisms in cells.

The authors' abstract, as published at the source. Nature Chemical Biology, 2026 · DOI ↗

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Field: Genetics (Medicine)

GeneticsMedicine