Shifting the selectivity of pyrido[2,3-d]pyrimidin-7(8H)-one inhibitors towards the salt-inducible kinase (SIK) subfamily

化学 激酶 细胞生物学 癌症研究 生物化学 生物
作者
Marcel Rak,Roberta Tesch,Lena M. Berger,Ekaterina Shevchenko,Monika Raab,Amelie Tjaden,Rezart Zhubi,Dimitrios-Ilias Balourdas,Andreas C. Joerger,Antti Poso,Andreas Krämer,Lewis Elson,Aleksandar Lučić,Thales Kronenberger,Thomas Hanke,Klaus Strebhardt,Mourad Sanhaji,Stefan Knapp
出处
期刊:European journal of medicinal chemistry [Elsevier BV]
卷期号:254: 115347-115347 被引量:10
标识
DOI:10.1016/j.ejmech.2023.115347
摘要

Salt-inducible kinases 1-3 (SIK1-3) are key regulators of the LKB1-AMPK pathway and play an important role in cellular homeostasis. Dysregulation of any of the three isoforms has been associated with tumorigenesis in liver, breast, and ovarian cancers. We have recently developed the dual pan-SIK/group I p21-activated kinase (PAK) chemical probe MRIA9. However, inhibition of p21-activated kinases has been associated with cardiotoxicity in vivo, which complicates the use of MRIA9 as a tool compound. Here, we present a structure-based approach involving the back-pocket and gatekeeper residues, for narrowing the selectivity of pyrido[2,3-d]pyrimidin-7(8H)-one-based inhibitors towards SIK kinases, eliminating PAK activity. Optimization was guided by high-resolution crystal structure analysis and computational methods, resulting in a pan-SIK inhibitor, MR22, which no longer exhibited activity on STE group kinases and displayed excellent selectivity in a representative kinase panel. MR22-dependent SIK inhibition led to centrosome dissociation and subsequent cell-cycle arrest in ovarian cancer cells, as observed with MRIA9, conclusively linking these phenotypic effects to SIK inhibition. Taken together, MR22 represents a valuable tool compound for studying SIK kinase function in cells.
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