Zhang Meng Yao, Yang Hyunjun, Ortiz Gloria, Trnka Michael J, Petronikolou Nektaria, Burlingame Alma L, DeGrado William F, Fujimori Danica Galonić
Department of Cellular and Molecular Pharmacology, University of California San Francisco San Francisco CA 94158 USA
Department of Pharmaceutical Chemistry, University of California San Francisco San Francisco CA 94158 USA.
Chem Sci. 2022 May 12;13(22):6599-6609. doi: 10.1039/d2sc00555g. eCollection 2022 Jun 7.
Chemical probes for chromatin reader proteins are valuable tools for investigating epigenetic regulatory mechanisms and evaluating whether the target of interest holds therapeutic potential. Developing potent inhibitors for the plant homeodomain (PHD) family of methylation readers remains a difficult task due to the charged, shallow and extended nature of the histone binding site that precludes effective engagement of conventional small molecules. Herein, we describe the development of novel proximity-reactive cyclopeptide inhibitors for PHD3-a trimethyllysine reader domain of histone demethylase KDM5A. Guided by the PHD3-histone co-crystal structure, we designed a sidechain-to-sidechain linking strategy to improve peptide proteolytic stability whilst maintaining binding affinity. We have developed an operationally simple solid-phase macrocyclization pathway, capitalizing on the inherent reactivity of the dimethyllysine ε-amino group to generate scaffolds bearing charged tetraalkylammonium functionalities that effectively engage the shallow aromatic 'groove' of PHD3. Leveraging a surface-exposed lysine residue on PHD3 adjacent to the ligand binding site, cyclic peptides were rendered covalent through installation of an arylsulfonyl fluoride warhead. The resulting lysine-reactive cyclic peptides demonstrated rapid and efficient labeling of the PHD3 domain in HEK293T lysates, showcasing the feasibility of employing proximity-induced reactivity for covalent labeling of this challenging family of reader domains.
用于染色质读取蛋白的化学探针是研究表观遗传调控机制以及评估目标蛋白是否具有治疗潜力的宝贵工具。由于组蛋白结合位点具有带电、浅且延伸的性质,这使得传统小分子难以有效结合,因此开发针对植物同源结构域(PHD)甲基化读取蛋白家族的强效抑制剂仍然是一项艰巨的任务。在此,我们描述了针对PHD3(组蛋白去甲基化酶KDM5A的三甲基赖氨酸读取结构域)的新型邻近反应性环肽抑制剂的开发。以PHD3-组蛋白共晶体结构为指导,我们设计了一种侧链对侧链连接策略,以提高肽的蛋白水解稳定性,同时保持结合亲和力。我们开发了一种操作简单的固相大环化途径,利用二甲基赖氨酸ε-氨基的固有反应性来生成带有带电四烷基铵官能团的支架,这些官能团可有效结合PHD3的浅芳香“凹槽”。利用PHD3上与配体结合位点相邻的表面暴露赖氨酸残基,通过安装芳基磺酰氟弹头使环肽共价化。所得的赖氨酸反应性环肽在HEK293T裂解物中展示了对PHD3结构域的快速有效标记,证明了利用邻近诱导反应性对这一具有挑战性的读取结构域家族进行共价标记的可行性。