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Wells, C. I.

Publications and source records attributed to Wells, C. I..

6 recordsLinked to original sources

Identification of Kinase Inhibitors that Regulate Nuclear Receptor Nurr1 (NR4A2) Cellular Activity

The ability to regulate the activity NR4A subfamily of nuclear receptors would be potentially useful in the treatment of multiple diseases, but to date, few regulators have been reported. This is likely due to the fact that the NR4A subfamily does not have a typical unoccupied nuclear receptor ligand binding pocket, but rather a pocket that is occupied with hydrophobic side chains of adjacent amino acids. It follows that traditional nuclear receptor assays that seek to identify ligands that bind within the ligand binding pocket would not be successful. We have thus focused on an alternate assay to identify NR4A regulators based on the fact that regulation of NR4A, at least partially, results from phosphorylation/dephosphorylation of the amino terminal region of the protein. We developed a medium throughput cellular assay using a fusion of the amino terminus of Nurr1 (NR4A2) with luciferase reporter and used the assay to screen a large and diverse protein kinase inhibitor set (PKIS). We identified multiple kinase inhibitor compounds from PKIS that significantly increased or decreased the cellular activity of Nurr1. These molecules serve as starting points to discover selective tools for regulation of Nurr1/Nurr1pathway.

pharmacology and toxicology

SGC-GAK-1: a chemical probe for cyclin G associated kinase (GAK)

We describe SGC-GAK-1 (11), a potent, selective, and cell-active inhibitor of cyclin G associated kinase (GAK), together with a structurally-related negative control SGC-GAK-1N (14). SGC-GAK-1 is highly selective in a kinome-wide screen, but cellular engagement assays defined RIPK2 as a collateral target. We identified 18 as a potent inhibitor of RIPK2 lacking GAK activity. Together, the chemical probe set of 11, 14, and 18 can be used to interrogate the cellular biology of GAK inhibition.

cell biology

In depth analysis of kinase cross screening data to identify chemical starting points for inhibition of the Nek family of kinases

Potent, selective, and cell active small molecule kinase inhibitors are useful tools to help unravel the complexities of kinase signaling. As the biological functions of individual kinases become better understood, they can become targets of drug discovery efforts. The small molecules used to shed light on function can also then serve as chemical starting points in these drug discovery efforts. The Nek family of kinases has received very little attention, as judged by number of citations in PubMed, yet they appear to play many key roles and have been implicated in disease. Here we present our work to identify high quality chemical starting points that have emerged due to the increased incidence of broad kinome screening. We anticipate that this analysis will allow the community to progress towards the generation of chemical probes and eventually drugs that target members of the Nek family.

pharmacology and toxicology

Structural characterization of human Vaccinia-Related Kinases (VRK) bound to small-molecule inhibitors identifies different P-loop conformations

The human genome encodes two active Vaccinia-related protein kinases (VRK), VRK1 and VRK2. These proteins have been implicated in a number of cellular processes and linked to a variety of tumors. However, understanding the cellular role of VRKs and establishing their potential use as targets for therapeutic intervention has been limited by the lack of tool compounds that can specifically modulate the activity of these kinases in cells. Here we identified BI-D1870, a dihydropteridine inhibitor of RSK kinases, as a promising starting point for the development of chemical probes targeting the active VRKs. We solved co-crystal structures of both VRK1 and VRK2 bound to BI-D1870 and of VRK1 bound to two broad-spectrum inhibitors. These structures revealed that both VRKs can adopt a P-loop folded conformation, which is stabilized by different mechanisms on each protein. Based on these structures, we suggest modifications to the dihydropteridine scaffold that can be explored to produce potent and specific inhibitors towards VRK1 and VRK2.

biochemistry

Progress Towards a Public Chemogenomic Set for Protein Kinases and a Call for Contributions

Protein kinases are highly tractable targets for drug discovery. However, the biological function and therapeutic potential of the majority of the 500+ human protein kinases remains unknown. We have developed physical and virtual collections of small molecule inhibitors, which we call chemogenomic sets, that are designed to inhibit the catalytic function of almost half the human protein kinases. In this manuscript we share our progress towards generation of a comprehensive kinase chemogenomic set (KCGS), release kinome profiling data of a large inhibitor set (Published Kinase Inhibitor Set 2 (PKIS2)), and outline a process through which the community can openly collaborate to create a KCGS that probes the full complement of human protein kinases.

pharmacology and toxicology

Development of Narrow Spectrum ATP-competitive Kinase Inhibitors as Probes for BIKE and AAK1

Understanding the structural determinants of inhibitor selectivity would facilitate the design and preparation of kinase probes. We describe a pair of matched compounds differing only by one degree of saturation but showing dramatic differential activities at select kinases. We utilized x-ray crystallography and computational analysis to rationalize the basis of the differential activity.

pharmacology and toxicology