Journal of the American Chemical Society, Vol.134, No.51, 20589-20592, 2012
Highly Precise Measurement of Kinetic Isotope Effects Using H-1-Detected 2D [C-13,H-1]-HSQC NMR Spectroscopy
A new method is presented for measuring kinetic isotope effects (KIEs) by H-1 detected 2D [C-13,H-1]-heteronuclear single quantum coherence (HSQC) NMR spectroscopy. The high accuracy of this approach was exemplified for the reaction catalyzed by glucose-6-phosphate dehydrogenase by comparing the 1-C-13 KIE with the published value obtained using isotope ratio mass spectrometry. High precision was demonstrated for the reaction catalyzed by 1-deoxy-D-xylulose-5-phosphate reductoisomerase from Mycobacterium tuberculosis. 2-, 3-, and 4-C-13 KIEs were found to be 1.0031(4), 1.0303(12), and 1.0148(2), respectively. These KIEs provide evidence for a cleanly rate-limiting retroaldol step during isomerization. The high intrinsic sensitivity and signal dispersion of 2D [C-13,H-1]-HSQC offer new avenues to study challenging systems where low substrate concentration and/or signal overlap impedes ID C-13 NMR data acquisition. Moreover, this approach can take advantage of highest-field spectrometers, which are commonly equipped for H-1 detection with cryogenic probes.