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Sukheja, P.

Publications and source records attributed to Sukheja, P..

3 recordsLinked to original sources

Discovery and Optimization of Imidazothiazole Carboxamides as Novel Anti-Tuberculosis Agents

Screening of the open-access CRESTdb small-molecule library identified the imidazothiazole carboxamide sCQG200 (1) as an initial hit, with activity against H37Rv and Erdman Mycobacterium tuberculosis strains in cholesterol-containing medium (MIC90= 6.88 uM and 4.48 uM, respectively) and against intracellular Mtb (EC50= 3.80 uM). sCQG200 retained activity against drug-resistant Mtb strains, including clinical MDR/XDR isolates. SAR optimization led to analogs 21 and 24 with substantially improved antimycobacterial potency. Mouse pharmacokinetic studies following oral and intravenous administration showed 62.1% and 29.5% oral bioavailability for 21 and 24, respectively. This structurally differentiated chemotype provides a promising starting point for further optimization as antitubercular agent.

microbiology↗

Discovery and Structure Activity Relationship Optimization of a Novel Rv1625c Agonist Chemotype with Antitubercular Activity

Rv1625c/Cya has emerged as a promising target for the development of treatment-shortening therapies for tuberculosis. Screening of an Enamine compound library identified sBQQ004 as an initial hit, and rapid hit optimization led to compound 1, which was subsequently confirmed as an Rv1625c/Cya agonist. Structure activity relationship studies identified lead compound 25 with potent activity against Mycobacterium tuberculosis H37Rv under cholesterol-dependent growth conditions (MIC = 0.27 uM) and strong intramacrophage activity (EC50 = 0.079 uM). Compounds 1 and 25 showed oral bioavailabilities of 84.5% and 51.9% in mice, respectively. Repeat BID dosing of compound 1 resulted in a dose- and time-dependent decrease in systemic exposure. Despite this pharmacokinetic limitation, the potency and overall profile of this chemotype encouraged continued optimization.

microbiology↗

Development of amidase-dependent pyrazinoic acid prodrugs with activity against pyrazinamide resistant Mycobacterium tuberculosis

Rapid emergence of drug resistance in Mycobacterium tuberculosis (Mtb) is one of the most significant healthcare challenges of our time. The cause of drug resistance is multifactorial, with the long course anti-tubercular therapy required to treat tuberculosis (TB) constituting a major contributing factor. Introduction of pyrazinamide (PZA) resulted in shortening of TB treatment from twelve to six months and consequently played a critical role in curbing drug resistance that developed over long course therapy. Nevertheless, because PZA is a prodrug activated by a nonessential amidase, PncA, resistance to PZA develops and frequently results in treatment failure. Here, we leveraged a whole cell drug screening approach to identify anti-tuberculars with unconventional mechanisms of action or activation that could be further developed into compounds effective at killing Mtb resistant to PZA. We discovered an amide containing prodrug, DG160, that was activated by the amidase, Rv2888c (AmiC). This amidase was capable of metabolizing a variety of amide containing compounds including a novel pyrazinoic acid-isoquinolin-1-amine prodrug, JSF-4302, which we developed as a potential PncA-independent replacement for PZA. As predicted, AmiC activation of JSF-4302 led to the generation of POA in Mtb including in a PZA resistant clinical isolate, thereby successfully delivering the active component of PZA while bypassing the need for activation by PncA. This work provides a framework for a new approach to drug development and prodrug activation in Mtb. SIGNIFICANCEPyrazinamide (PZA) is a vital component of Mycobacterium tuberculosis (Mtb) treatment since its inclusion shortened tuberculosis therapy by six months. However, PZA is a prodrug and resistance develops at a high frequency due to mutations in its activator PncA. Here, we present the discovery of amide-containing anti-tubercular prodrugs that are activated intracellularly by the Mtb amidase, AmiC. Taking advantage of this finding, we successfully designed and synthesized pyrazinoic acid (POA) prodrugs that were activated by AmiC and found that these compounds delivered intracellular POA to PZA- resistant Mtb isolates that contained a nonfunctional PncA. This new approach to prodrug development provides a method for delivering conjugated drugs into Mtb with the potential to overcome clinical drug resistance.

microbiology↗