Aug 2026· Journal of Medicinal Chemistry· Vol 69 17, pp.
20338-20369
· 0 citations· 42 references
Medicine
TL;DR
Bifunctional BRD9 PROTAC/immunomodulatory drug (IMiD) degraders engineered to simultaneously eliminate BRD9 and IKZF1 validate this dual-targeting PROTAC/IMiD strategy as an effective approach to overcoming the limitations of selective BRD9 degraders, underscores its therapeutic potential in hematologic malignancies.
Abstract
Bromodomain-containing protein 9 (BRD9) has emerged as an epigenetic target in hematologic malignancies. However, previous studies on BRD9 PROTACs reported MYC upregulation following chronic administration. Here, we describe bifunctional BRD9 PROTAC/immunomodulatory drug (IMiD) degraders engineered to simultaneously eliminate BRD9 and IKZF1. Utilizing ternary complex modeling and structure-activity relationship (SAR) analysis, aromatic linkers and modified E3 ligands facilitated efficient degradation. The lead candidate, B8, induces potent and selective degradation of both BRD9 (DC50 = 57 pM) and IKZF1 (DC50 = 62 pM). B8 showed broad antiproliferative activity across hematologic malignancy cells, particularly lymphomas. In the OCI-ly10 xenograft model, B8 achieved near-complete tumor regression (TGI > 99%), significantly outperforming the selective BRD9 PROTAC E5 (TGI = 31%), without detectable toxicity or MYC upregulation. These findings validate this dual-targeting PROTAC/IMiD strategy as an effective approach to overcoming the limitations of selective BRD9 degraders, underscoring its therapeutic potential in hematologic malignancies.
These findings provide a feasible strategy for degrading RARα in CRC and highlight the potential of plant-derived exosome-like nanoparticles as efficient carriers for PROTAC delivery, indicating a new direction for targeted cancer therapy.
KLHL12 is identified as a potentially tumor-selective E3 ligase and the development of the first-in-class KLHL12-recruiting PROTACs are reported, which established KLHL12 as a promising tumor‑selective E3 ligase and provided a KLHL12-recruiting PROTAC platform for cancer therapy.
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