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Bioorganic & Medicinal Chemistry|September 22, 2012
Antitubercular nitrofuran isoxazolines with improved pharmacokinetic propertiesRakesh, David Bruhn, Dora B Madhura, et al.Bioorganic & Medicinal Chemistry|April 24, 2012
Screening a library of 1600 adamantyl ureas for anti-Mycobacterium tuberculosis activity in vitro and for better physical chemical properties for bioavailabilityMichael S Scherman, Elton J North, Victoria Jones, et al.International Journal of Systematic and Evolutionary Microbiology|August 16, 2017
Mycobacterium talmoniae sp. nov., a slowly growing mycobacterium isolated from human respiratory samplesRebecca M Davidson, Mary Ann DeGroote, Jamie L Marola, et al.Bioorganic & Medicinal Chemistry|August 16, 2011
The structure-activity relationship of urea derivatives as anti-tuberculosis agentsJoshua R Brown, Elton J North, Julian G Hurdle, et al.Plos One|February 8, 2014
Pentacyclic nitrofurans with in vivo efficacy and activity against nonreplicating Mycobacterium tuberculosisRakesh, David F Bruhn, Michael S Scherman, et al.Nature Chemical Biology|February 21, 2012
Inhibition of mycolic acid transport across the Mycobacterium tuberculosis plasma membraneAnna E Grzegorzewicz, Ha Pham, Vijay A K B Gundi, et al.The Journal of Biological Chemistry|July 16, 2016
Assembling of the Mycobacterium tuberculosis Cell Wall CoreAnna E Grzegorzewicz, Célia de Sousa-d'Auria, Michael R McNeil, et al.The Journal of Biological Chemistry|September 25, 2012
A common mechanism of inhibition of the Mycobacterium tuberculosis mycolic acid biosynthetic pathway by isoxyl and thiacetazoneAnna E Grzegorzewicz, Jana Korduláková, Victoria Jones, et al.Tuberculosis (Edinburgh, Scotland)|February 5, 2013
Updating and curating metabolic pathways of TBRichard A Slayden, Mary Jackson, Jeremy Zucker, et al.ACS Infectious Diseases|June 20, 2020
Cell Surface Remodeling of <i>Mycobacterium abscessus</i> under Cystic Fibrosis Airway Growth ConditionsCrystal J Wiersma, Juan Manuel Belardinelli, Charlotte Avanzi, et al.Pageof 8