Publications by authors named "Samiron Phukan"

PI3Kδ plays a critical role in adaptive immune cell activation and function. Suppression of PI3Kδ has been shown to counter excessive triggering of immune responses which has led to delineating the role of this isoform in the pathophysiology of autoimmune disorders. In the current study, we have described preclinical characterization of PI3Kδ specific inhibitor LL-00071210 in various rheumatoid arthritis models.

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The role of calcium release-activated calcium (CRAC) channels is well characterized and is of particular importance in T-cell function. CRAC channels are involved in the pathogenesis of several autoimmune diseases, making it an attractive therapeutic target for treating inflammatory diseases, like rheumatoid arthritis (RA). A systematic structure-activity relationship study with the goal of optimizing lipophilicity successfully yielded two lead compounds, and .

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Evaluation of cardiotoxicity potential of new chemical entities (NCEs) has lately become one of the stringent filters in the drug discovery and development process. Cardiotoxicity is caused mainly by the inhibition of human ether-a-go-go related gene (hERG) channel protein. Inhibition of the hERG channel leads to a life-threatening condition known as cardiac arrhythmia.

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Article Synopsis
  • PI3Kδ inhibitors are used to treat B-cell malignancies, but existing options have limitations in potency, selectivity, and pharmacokinetics.
  • Researchers developed a new inhibitor by improving the structure of an existing compound, transitioning from a "three-blade propeller" to a "four-blade propeller" design.
  • The new compound shows superior effectiveness, selectivity, and stability, making it a promising candidate for treatment in various B-cell cancers, either alone or with other drugs.
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The exploitation of GLU988 and LYS903 residues in PARP1 as targets to design isoquinolinone (I & II) and naphthyridinone (III) analogues is described. Compounds of structure I have good biochemical and cellular potency but suffered from inferior PK. Constraining the linear propylene linker of structure I into a cyclopentene ring (II) offered improved PK parameters, while maintaining potency for PARP1.

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Background: Glycogen synthase kinase 3 beta (GSK3beta) is a multifunctional serine/threonine kinase, which plays a major role in various signaling pathways. More than two decades after its discovery, various pharmaceutical companies are focusing on this protein as a target of interest for various therapeutic conditions.

Objective: To discuss the major developments in the area of GSK3beta as a therapeutic target globally and its role in disease physiology and give an overview of the classes of compounds designed for its inhibition.

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Liver X receptors (LXRs) are a member of the nuclear hormone receptor superfamily of ligand activated transcription factors. LXRs have gained importance as therapeutic targets because of their involvement in many diseases. Analysis of the protein-ligand complexes of X-ray crystallography-derived structures revealed that residues His435 and Trp457 act as a switch that mediates ligand activation.

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We present molecular docking studies on the inhibitors of GSK-3beta kinase in the enzyme binding sites of the X-ray complexes (1H8F, 1PYX, 1O9U, 1Q4L, 1Q5K, and 1UV5) using the Schrödinger docking tool Glide. Cognate and cross-docking studies using standard precision (SP) and extraprecision (XP) algorithms have been carried out. Cognate docking studies demonstrate that docked poses similar to X-ray poses (root-mean-square deviations of less than 2 A) are found within the top four ranks of the GlideScore and E-model scores.

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