Biochemical and biophysical characterization of inositol-tetrakisphosphate 1-kinase inhibitors.

IF 4 2区 生物学 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY Journal of Biological Chemistry Pub Date : 2025-03-01 Epub Date: 2025-02-06 DOI:10.1016/j.jbc.2025.108274
Martin Y Ng, Huanchen Wang, Haibo Zhang, Isabel Prucker, Lalith Perera, Ekaterina Goncharova, Antony Wamiru, Henning J Jessen, Robin E Stanley, Stephen B Shears, Ji Luo, Barry R O'Keefe, Brice A P Wilson
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Abstract

Inositol phosphates (IPs) and inositol pyrophosphate play critical roles in many biological processes such as signaling molecules in pathways responsible for cellular functions involved in growth and maintenance. The biosynthesis of IPs is carried out by a family of inositol phosphate kinases. In mammals, Inositol tetrakisphosphate kinase-1 (ITPK1) phosphorylates inositol-1,3,4-trisphosphate (Ins(1,3,4)P3) and inositol-3,4,5,6-tetrakisphosphate (IP4), generating inositol-1,3,4,5,6-pentakisphosphate (IP5), which can be further phosphorylated to become inositol hexakisphosphate (IP6). ITPK1 also possesses phosphatase activity that can convert IP5 back to IP4; therefore, ITPK1 may serve as a regulatory step in IP6 production. IP6 utilization has been implicated in processes fundamental to cellular sustainability that are severely perturbed in many disease states including RNA editing, DNA repair, chromatin structure organization, and ubiquitin ligation. Therefore, ITPK1, with no known inhibitors in the literature, is a potential molecular target for modulating important processes in several human diseases. By independently coupling ITPK1 phosphatase and kinase activities to luciferase activity, we have developed and used biochemical high-throughput assays to discover eight ITPK1 inhibitors. Further analysis revealed that three of these leads inhibit ITPK1 in an ATP-competitive manner, with low micromolar to nanomolar affinities. We further demonstrate that the most potent ITPK1 inhibitor can regulate cellular ITPK1 activity. We determined the crystal structure of ITPK1 in complex with this inhibitor at a resolution of 2.25 Å. This work provides insight into the design of potential next-generation inhibitors.

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肌醇-磷酸四磷酸激酶抑制剂的生化和生物物理特性。
肌醇磷酸(IPs)和肌醇焦磷酸作为信号分子在许多生物过程中起着至关重要的作用,这些信号分子负责细胞的生长和维持功能。IPs的生物合成是由肌醇磷酸激酶家族进行的。在哺乳动物中,肌醇四磷酸激酶-1 (ITPK1)磷酸化肌醇-1,3,4-三磷酸(Ins(1,3,4)P3)和肌醇-3,4,5,6-四磷酸(IP4),生成肌醇-1,3,4,5,6-五磷酸(IP5),后者可进一步磷酸化成为肌醇六磷酸(IP6)。ITPK1还具有将IP5转化为IP4的磷酸酶活性;因此,ITPK1可以作为IP6生产的调控步骤。IP6的利用与细胞可持续性的基本过程有关,这些过程在许多疾病状态下受到严重干扰,包括RNA编辑、DNA修复、染色质结构组织和泛素连接。因此,文献中没有已知抑制剂的ITPK1是调节几种人类疾病重要过程的潜在分子靶点。通过独立耦合ITPK1磷酸酶和激酶活性与荧光素酶活性,我们开发并使用生化高通量分析发现了8种ITPK1抑制剂。进一步分析表明,其中三个导联以atp竞争的方式抑制ITPK1,具有低微摩尔到纳摩尔的亲和力。我们进一步证明,最有效的ITPK1抑制剂可以调节细胞ITPK1活性。我们以2.25 Å的分辨率确定了ITPK1与该抑制剂配合物的晶体结构。这项工作为潜在的下一代抑制剂的设计提供了见解。
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Journal of Biological Chemistry
Journal of Biological Chemistry Biochemistry, Genetics and Molecular Biology-Biochemistry
自引率
4.20%
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1233
期刊介绍: The Journal of Biological Chemistry welcomes high-quality science that seeks to elucidate the molecular and cellular basis of biological processes. Papers published in JBC can therefore fall under the umbrellas of not only biological chemistry, chemical biology, or biochemistry, but also allied disciplines such as biophysics, systems biology, RNA biology, immunology, microbiology, neurobiology, epigenetics, computational biology, ’omics, and many more. The outcome of our focus on papers that contribute novel and important mechanistic insights, rather than on a particular topic area, is that JBC is truly a melting pot for scientists across disciplines. In addition, JBC welcomes papers that describe methods that will help scientists push their biochemical inquiries forward and resources that will be of use to the research community.
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