Discovery of NSD2-Degraders from Novel and Selective DEL Hits

Jan LegaardAndersson1, Jesper Christensen2, Daniela Kleine-Kohlbrecher2

  • 1Nuevolution A/S / Amgen Research Copenhagen, Rønnegade 8, 2100, Copenhagen, Denmark.

Insights

Researchers developed novel small molecules targeting the NSD2 protein, a key driver in certain cancers. These molecules effectively degrade NSD2, reduce cancer-driving methylation marks, and inhibit cancer cell growth.

Area of Science:

  • Biochemistry
  • Molecular Biology
  • Oncology

Background:

  • NSD2 (Nuclear Receptor Binding Set Domain Containing Protein 2) is a histone methyltransferase.
  • Aberrant NSD2 activity, driven by mutations or translocations like t(4;14), is oncogenic and implicated in cancers such as multiple myeloma and acute lymphoblastic leukemia.
  • Specifically, the NSD2 E1099K mutant exhibits hyperactive methyltransferase function.

Purpose of the Study:

  • To identify and develop novel small molecules targeting NSD2.
  • To investigate the therapeutic potential of NSD2 degradation in cancer treatment.
  • To explore the impact of NSD2 inhibition on histone methylation and cancer cell proliferation.

Main Methods:

  • Utilized DNA-encoded libraries to discover small molecule ligands binding to the NSD2 PWWP1 domain.
  • Developed selective VHL1-recruiting degraders based on identified ligands.
  • Assessed the efficacy of NSD2 degraders in cancer cell lines, measuring NSD2 degradation, H3K36me2 levels, and cell proliferation.

Main Results:

  • Identified potent and selective small molecule ligands that bind to the NSD2 PWWP1 domain.
  • These ligands inhibit NSD2's interaction with H3K36me2-nucleosomes without affecting its methyltransferase activity.
  • Developed effective NSD2 degraders that induce protein degradation, decrease H3K36me2 levels, and inhibit cancer cell proliferation.

Conclusions:

  • Small molecule ligands targeting the NSD2 PWWP1 domain offer a novel therapeutic strategy.
  • Targeted degradation of NSD2 is a viable approach for treating NSD2-driven cancers.
  • Inhibition of NSD2 activity through degradation reduces oncogenic histone methylation and suppresses tumor cell growth.