{"title":"Finding inhibitors and deciphering inhibitor-induced conformational plasticity in the Janus kinase via multiscale simulations.","authors":"M F Sk, P Kar","doi":"10.1080/1062936X.2022.2145352","DOIUrl":null,"url":null,"abstract":"<p><p>The Janus kinase (JAK) is a master regulator of the JAK/STAT pathway. Dysregulation of this signalling cascade causes neuroinflammation and autoimmune disorders. Therefore, JAKs have been characterized as an attractive target for developing anti-inflammatory drugs. Nowadays, designing efficient, effective, and specific targeted therapeutics without being cytotoxic has gained interest. We performed the virtual screening of natural products in combination with pharmacological analyses. Subsequently, we performed molecular dynamics simulations to study the stability of the ligand-bound complexes and ligand-induced inactive conformations. Notably, inactive kinases display remarkable conformational plasticity; however, ligand-induced molecular mechanisms of these conformations are still poorly understood. Herein, we performed a free energy landscape analysis to explore the conformational plasticity of the JAK1 kinase. Leonurine, STOCK1N-68642, STOCK1N-82656, and STOCK1N-85809 bound JAK1 exhibited a smooth transition from an active (αC-<i>in</i>) to a completely inactive conformation (αC-<i>out</i>). Ligand binding induces disorders in the αC-helix. Molecular mechanics Poisson Boltzmann surface area (MM/PBSA) calculation suggested three phytochemicals, namely STOCK1N-68642, Epicatechin, and STOCK1N-98615, have higher binding affinity compared to other ligand molecules. The ligand-induced conformational plasticity revealed by our simulations differs significantly from the available crystal structures, which might help in designing allosteric drugs.</p>","PeriodicalId":2,"journal":{"name":"ACS Applied Bio Materials","volume":null,"pages":null},"PeriodicalIF":4.6000,"publicationDate":"2022-11-01","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"1","resultStr":null,"platform":"Semanticscholar","paperid":null,"PeriodicalName":"ACS Applied Bio Materials","FirstCategoryId":"93","ListUrlMain":"https://doi.org/10.1080/1062936X.2022.2145352","RegionNum":0,"RegionCategory":null,"ArticlePicture":[],"TitleCN":null,"AbstractTextCN":null,"PMCID":null,"EPubDate":"2022/11/18 0:00:00","PubModel":"Epub","JCR":"Q2","JCRName":"MATERIALS SCIENCE, BIOMATERIALS","Score":null,"Total":0}
引用次数: 1
Abstract
The Janus kinase (JAK) is a master regulator of the JAK/STAT pathway. Dysregulation of this signalling cascade causes neuroinflammation and autoimmune disorders. Therefore, JAKs have been characterized as an attractive target for developing anti-inflammatory drugs. Nowadays, designing efficient, effective, and specific targeted therapeutics without being cytotoxic has gained interest. We performed the virtual screening of natural products in combination with pharmacological analyses. Subsequently, we performed molecular dynamics simulations to study the stability of the ligand-bound complexes and ligand-induced inactive conformations. Notably, inactive kinases display remarkable conformational plasticity; however, ligand-induced molecular mechanisms of these conformations are still poorly understood. Herein, we performed a free energy landscape analysis to explore the conformational plasticity of the JAK1 kinase. Leonurine, STOCK1N-68642, STOCK1N-82656, and STOCK1N-85809 bound JAK1 exhibited a smooth transition from an active (αC-in) to a completely inactive conformation (αC-out). Ligand binding induces disorders in the αC-helix. Molecular mechanics Poisson Boltzmann surface area (MM/PBSA) calculation suggested three phytochemicals, namely STOCK1N-68642, Epicatechin, and STOCK1N-98615, have higher binding affinity compared to other ligand molecules. The ligand-induced conformational plasticity revealed by our simulations differs significantly from the available crystal structures, which might help in designing allosteric drugs.
Janus激酶(JAK)是JAK/STAT通路的主要调控因子。这种信号级联的失调会导致神经炎症和自身免疫性疾病。因此,jak被认为是开发抗炎药物的一个有吸引力的靶点。目前,设计高效、有效、特异性且不具有细胞毒性的靶向治疗方法已引起人们的兴趣。我们结合药理学分析对天然产物进行了虚拟筛选。随后,我们进行了分子动力学模拟来研究配体结合配合物和配体诱导的非活性构象的稳定性。值得注意的是,非活性激酶表现出显著的构象可塑性;然而,这些构象的配体诱导的分子机制仍然知之甚少。在此,我们进行了自由能景观分析来探索JAK1激酶的构象可塑性。Leonurine、STOCK1N-68642、STOCK1N-82656和STOCK1N-85809结合的JAK1表现出从活性构象(αC-in)到完全非活性构象(αC-out)的平稳过渡。配体结合诱导α - c -螺旋紊乱。分子力学泊松- Boltzmann表面积(MM/PBSA)计算表明,与其他配体分子相比,STOCK1N-68642、表儿茶素和STOCK1N-98615三种植物化学物质具有更高的结合亲和力。我们的模拟揭示了配体诱导的构象可塑性与现有的晶体结构有很大的不同,这可能有助于设计变构药物。