Steady-state kinetic analysis was performed by using 200 nM DNA substrate and four different apparent concentrations of OGG1 (15, 30, 45, and 60 nM) as determined by a Bradford protein assay2. The time courses of product formation were fit to a linear equation to determine the y-intercept, which were 2.2, 11, 15, and 26 nM, respectively, relative to each protein concentration (Figure 2B). The y-intercepts were further plotted relative to each actual protein concentration (Figure 2C). The fraction of active enzyme was determined to be 38 % from the slope of the line in Figure 2C. To determine the steady-state rate, vss determined from the linear fits in Figure 2B were plotted relative to the y-intercepts (Figure 2D). The slope of the line in Figure 2D was 0.0028 sec-1, which is equivalent to the dissociation rate constant for the product AP-site and incised AP-site formed by DNA glycosylase/lyase activities.
A pre-steady-state time course was followed by using 200 nM DNA substrate and 40 nM active OGG1. The time courses of the product formation can be fit to an equation with rising exponential and linear terms. As shown in Figure 4, kobs and koff were determined to be 0.75 sec-1 and 0.0055 sec-1, respectively2. The amplitude for the burst phase (33 nM) was slightly lower than predicted from the concentration of the active OGG1 added (40 nM). This may be due to nonspecific binding of OGG1 to DNA substrate that reduces the available numbers of enzyme molecules.
Under single-turnover conditions, the 8-oxoG excision reaction was finished within 6 sec (Figure 5)2. The time course of product formation could be fit to a single exponential equation and yielded kobs of 0.74 sec-1. Notably, the amplitude for product formation was lower than the expected 50 nM added DNA substrate. This could have been due in part to background cleavage of the DNA by NaOH-treatment (Figure 2A) or the presence of unannealed substrate oligonucleotides in the reaction mixture.

Figure 1. Purification of human OGG1 from E. coli. The human OGG1 gene was cloned into pGEX-6P-1 and overexpressed in BL21 (DE3) cells. Lane 1; uninduced cells, lane 2; IPTG-induced cells, lane 3; soluble protein fraction, lane 4; glutathione sepharose 4B after incubation with soluble protein fraction, lane 5; flow through fraction after incubation of glutathione sepharose 4B with HRV 3C protease, lane 6; flow through fraction after removal of contaminants by Mono Q column. A photograph of the Coomassie Blue stained gel is shown.

Figure 2. Steady-state kinetics and active site titration of purified OGG12. OGG1 (15 nM, ○; 30 nM, □; 45 nM, ◊; or 60 nM, ×) was incubated with 200 nM DNA substrate (5'-CTGCAGCTGATGCGCCXTACGGATCCCCGGGTAC-3', where X is 8-oxoG paired with C) at 37 °C for 1-30 min as indicated. These enzyme concentrations represent apparent protein concentrations based on a Bradford protein assay, quantitated from a BSA standard curve. A, Denaturing polyacrylamide gels showing separated substrates (S) and products (P). OGG1 (30 nM) and 200 nM DNA substrate was used for the reaction. B, Time courses of product formation. The data were fit to a linear equation to determine the amplitude of the burst phase (y-intercept) and an apparent rate of product release (slope). C, Plot of the intercepts determined from the linear fits in panel B relative to that determined by the Bradford assay. The slope of the line corresponds to the fraction of active enzyme. The error bar denotes the error in the amplitude inferred from linear fits to the product formation in panel B. D, Plot of the slopes determined from the linear fits in panel B relative to the active enzyme concentration. The error bar denotes the error in the slope inferred from linear fits to the product formation in panel B. The slope of the line corresponds to the steady-state rate (koff), 0.0028 sec-1.

Figure 3. Overview of Rapid Quench-Flow Instrument.

Figure 4. Pre-steady-state kinetics of 8-oxoG excision by OGG12. OGG1 (40 nM active enzyme) was incubated with 200 nM DNA substrate (5'-CATGGGCGGCATGAACCXGAGGCCCATCCTCACC-3', where X is 8-oxoG paired with C) at 37 °C for 0-100 sec. The dotted line indicates an extrapolation of the steady-state phase. The data were fit to the burst equation with an amplitude equal to 33 ± 0.89 nM, kobs equal to 0.75 ± 0.083 sec-1, vss equal to 0.18 ± 0.018 nM sec-1 and koff equal to 0.0055 ± 0.020 sec-1.

Figure 5. Single turnover kinetics of 8-oxoG excision by OGG12. OGG1 (250 nM active enzyme) was incubated with 50 nM DNA substrate (5'-CTGCAGCTGATGCGCCXTACGGATCCCCGGGTAC-3', where X is 8-oxoG paired with C) at 37 °C for 0-60 sec. The data were fit to the single exponential equation with kobs equal to 0.74 ± 0.015 sec-1. The dotted line indicates the extrapolated amplitude (i.e. product at infinite time).