Rutgers Molecular Design and Synthesis Core, Office for Research, Rutgers University, 610 Taylor Road, Piscataway, New Jersey 08854, United States.
Department of Microbiology, Biochemistry and Molecular Genetics, Rutgers New Jersey Medical School, 225 Warren Street, Newark, New Jersey 07103, United States.
J Med Chem. 2024 Mar 14;67(5):3467-3503. doi: 10.1021/acs.jmedchem.3c01795. Epub 2024 Feb 19.
Controlling malaria requires new drugs against . The cGMP-dependent protein kinase (PfPKG) is a validated target whose inhibitors could block multiple steps of the parasite's life cycle. We defined the structure-activity relationship (SAR) of a pyrrole series for PfPKG inhibition. Key pharmacophores were modified to enable full exploration of chemical diversity and to gain knowledge about an ideal core scaffold. potency against recombinant PfPKG and human PKG were used to determine compound selectivity for the parasite enzyme. sporozoites and asexual blood stages were used to assay multistage antiparasitic activity. Cellular specificity of compounds was evaluated using transgenic parasites expressing PfPKG carrying a substituted "gatekeeper" residue. The structure of PfPKG bound to an inhibitor was solved, and modeling using this structure together with computational tools was utilized to understand SAR and establish a rational strategy for subsequent lead optimization.
控制疟疾需要针对 的新药。cGMP 依赖性蛋白激酶(PfPKG)是一个已验证的靶标,其抑制剂可以阻断寄生虫生命周期的多个步骤。我们确定了吡咯系列对 PfPKG 抑制的结构-活性关系(SAR)。对关键药效团进行了修饰,以充分探索化学多样性,并了解理想的核心支架。对重组 PfPKG 和人 PKG 的 活性用于确定化合物对寄生虫酶的选择性。用 孢子和 无性血期来测定多阶段抗寄生虫活性。使用表达 PfPKG 带有取代“门控”残基的转基因寄生虫来评估化合物的细胞特异性。PfPKG 与抑制剂结合的结构已被确定,并使用该结构和计算工具进行建模,以了解 SAR 并为随后的先导优化建立合理的策略。