Biocrystallography, KU Leuven, Leuven, Belgium.
Biocrystallography, KU Leuven, Leuven, Belgium; Medicinal Chemistry, Rega Institute for Medical Research, KU Leuven, Leuven, Belgium.
Eur J Med Chem. 2024 Dec 15;280:116960. doi: 10.1016/j.ejmech.2024.116960. Epub 2024 Oct 11.
Lens epithelium-derived growth factor p75 (LEDGF/p75), member of the hepatoma-derived growth-factor-related protein (HRP) family, is a transcriptional co-activator and involved in several pathologies including HIV infection and malignancies such as MLL-rearranged leukemia. LEDGF/p75 acts by tethering proteins to the chromatin through its integrase binding domain. This chromatin interaction occurs between the PWWP domain of LEDGF/p75 and nucleosomes carrying a di- or trimethylation mark on histone H3 Lys36 (H3K36me2/3). Our aim is to rationally devise small molecule drugs capable of inhibiting such interaction. To bootstrap this development, we resorted to X-ray crystallography-based fragment screening (FBS-X). Given that the LEDGF PWWP domain crystals were not suitable for FBS-X, we employed crystals of the closely related PWWP domain of paralog HRP-2. As a result, as many as 68 diverse fragment hits were identified, providing a detailed sampling of the H3K36me2/3 pocket pharmacophore. Subsequent structure-guided fragment expansion in three directions yielded multiple compound series binding to the pocket, as verified through X-ray crystallography, nuclear magnetic resonance and differential scanning fluorimetry. Our best compounds have double-digit micromolar affinity and optimally sample the interactions available in the pocket, judging by the K-based ligand efficiency exceeding 0.5 kcal/mol per non-hydrogen atom. Beyond π-stacking within the aromatic cage of the pocket and hydrogen bonding, the best compounds engage in a σ-hole interaction between a halogen atom and a conserved water buried deep in the pocket. Notably, the binding pocket in LEDGF PWWP is considerably smaller compared to the related PWWP1 domains of NSD2 and NSD3 which feature an additional subpocket and for which nanomolar affinity compounds have been developed recently. The absence of this subpocket in LEDGF PWWP limits the attainable affinity. Additionally, these structural differences in the H3K36me2/3 pocket across the PWWP domain family translate into a distinct selectivity of the compounds we developed. Our top-ranked compounds are interacting with both homologous LEDGF and HRP-2 PWWP domains, yet they showed no affinity for the NSD2 PWWP1 and BRPF2 PWWP domains which belong to other PWWP domain subfamilies. Nevertheless, our developed compound series provide a strong foundation for future drug discovery targeting the LEDGF PWWP domain as they can further be explored through combinatorial chemistry. Given that the affinity of H3K36me2/3 nucleosomes to LEDGF/p75 is driven by interactions within the pocket as well as with the DNA-binding residues, we suggest that future compound development should target the latter region as well. Beyond drug discovery, our compounds can be employed to devise tool compounds to investigate the mechanism of LEDGF/p75 in epigenetic regulation.
晶状体上皮衍生生长因子 p75(LEDGF/p75)属于肝癌衍生生长因子相关蛋白(HRP)家族成员,是一种转录共激活因子,参与包括 HIV 感染和 MLL 重排白血病在内的多种病理学过程。LEDGF/p75 通过其整合酶结合域将蛋白质固定在染色质上。这种染色质相互作用发生在 LEDGF/p75 的 PWWP 结构域和携带组蛋白 H3 赖氨酸 36 二甲基或三甲基标记的核小体之间(H3K36me2/3)。我们的目标是合理设计能够抑制这种相互作用的小分子药物。为了启动这一发展,我们求助于基于 X 射线晶体学的片段筛选(FBS-X)。鉴于 LEDGF PWWP 结构域晶体不适合 FBS-X,我们使用了密切相关的 HRP-2 PWWP 结构域的晶体。结果,共鉴定出多达 68 种不同的片段命中,为 H3K36me2/3 口袋药效基团提供了详细的采样。随后,通过 X 射线晶体学、核磁共振和差示扫描荧光法,从三个方向进行了结构导向的片段扩展,得到了多个结合口袋的化合物系列。我们最好的化合物对口袋的亲和力为十位数微摩尔,并且通过基于 K 的配体效率超过 0.5 kcal/mol/非氢原子,最佳地模拟了口袋中可用的相互作用。除了口袋芳香笼内的 π 堆积和氢键外,最好的化合物还在口袋深处埋藏的保守水分子之间形成了 σ-hole 相互作用。值得注意的是,与最近开发出具有纳摩尔亲和力化合物的 NSD2 和 NSD3 的相关 PWWP1 结构域相比,LEDGF PWWP 中的结合口袋要小得多,该结构域具有额外的亚口袋。LEDGF PWWP 中缺少这个亚口袋限制了可达到的亲和力。此外,PWWP 结构域家族中 H3K36me2/3 口袋的这些结构差异转化为我们开发的化合物的独特选择性。我们排名最高的化合物与同源 LEDGF 和 HRP-2 PWWP 结构域相互作用,但它们对属于其他 PWWP 亚家族的 NSD2 PWWP1 和 BRPF2 PWWP 结构域没有亲和力。然而,我们开发的化合物系列为针对 LEDGF PWWP 结构域的未来药物发现提供了坚实的基础,因为它们可以通过组合化学进一步探索。鉴于 H3K36me2/3 核小体与 LEDGF/p75 的亲和力是由口袋内的相互作用以及与 DNA 结合残基的相互作用驱动的,我们建议未来的化合物开发也应针对后者区域。除了药物发现之外,我们的化合物还可以用于设计工具化合物来研究 LEDGF/p75 在表观遗传调控中的机制。