Handa, SumitDempsey, DanielRamamoorthy, DivyaCook, NanciGuida, Wayne CSpradling, Tyler JWhite, Justin KWoodcock, H LeeMerkler, David J2018-04-192018Handa, Sumit, Daniel R Dempsey, Divya Ramamoorthy, Nanci Cook, Wayne C Guida, Tyler J Spradling, Justin K White, H Lee Woodcock, and David J Merkler. 2018. “Mechanistic Studies of 1-Deoxy-D-Xylulose-5-Phosphate Synthase from Deinococcus radiodurans.” Biochemistry & molecular biology journal 4 (1): 2. doi:10.21767/2471-8084.100051. http://dx.doi.org/10.21767/2471-8084.100051.http://nrs.harvard.edu/urn-3:HUL.InstRepos:35981940The non-mevalonate dependent (NMVA) pathway for the biosynthesis of isopentenyl pyrophosphate and dimethylallyl pyrophosphate is the sole source of these terpenoids for the production of isoprenoids in the apicomplexan parasites, in many eubacteria, and in plants. The absence of this pathway in higher organisms has opened a new platform for the development of novel antibiotics and anti-malarials. The enzyme catalyzing the first step of the NMVA pathway is 1-deoxy-D-xylulose-5-phosphate synthase (DXPS). DXPS catalyzes the thiamine pyrophosphate- and Mg (II)-dependent conjugation of pyruvate and D-glyceraldehyde-3-phosphate to form 1-deoxy-D-xylulose-5-phosphate and CO2. The kinetic mechanism of DXPS from Deinococcus radiodurans most consistent with our data is random sequential as shown using a combination of kinetic analysis and product and dead-end inhibition studies. The role of active site amino acids, identified by sequence alignment to other DXPS proteins, was probed by constructing and analyzing the catalytic efficacy of a set of targeted site-directed mutants.en-USα-Carbanion/Enamine intermediateDimethylallyl pyrophosphateIsopentenyl pyrophosphateNon-mevalonateSite-directed mutagenesisTPP-dependentMechanistic Studies of 1-Deoxy-D-Xylulose-5-Phosphate Synthase from Deinococcus radioduransJournal Article2018-04-1910.21767/2471-8084.100051