| Literature DB >> 26120509 |
Masataka Yoshino1, Keiko Murakami1.
Abstract
A simple graphical method was described for determining the kinetic parameters of substrate inhibition of complete and partial types. The method consists of plotting experimental data as [Formula: see text] versus the reciprocals of the substrate concentrations, where V max represents the maximal velocity. The reaction rate constant of enzyme-substrate-inhibitor complex [Formula: see text] can be calculated from the ordinate intercept of the linear relationship between [Formula: see text] and the reciprocal of the substrate concentrations at the higher and inhibitory concentrations of the substrate: partial type [Formula: see text] of the substrate inhibition gives straight lines intersecting with the ordinate at [Formula: see text], whereas complete substrate inhibition [Formula: see text] yields straight lines converging on the origin. The [Formula: see text] value also can be calculated from the slope by using the [Formula: see text] value determined. Validity of the method was confirmed by analyzing the substrate inhibition of phosphofructokinase II from E. coli. The present method provides a simple way for determining kinetic parameters of the substrate inhibition irrespective of complete and partial types.Entities:
Keywords: Complete inhibition; Partial inhibition; Phosphofructokinase; Quotient velocity plot; Substrate inhibition
Year: 2015 PMID: 26120509 PMCID: PMC4478191 DOI: 10.1186/s40064-015-1082-8
Source DB: PubMed Journal: Springerplus ISSN: 2193-1801
Figure 1Substrate inhibition. Reaction for substrate inhibition was according to the Eq. (1). a Substrate saturation curves. Lines were drawn in accordance with Eq. (2). The following values of kinetic parameters were used for calculation. Rate constant, V = 1; K = 1. Curve 1 complete substrate inhibition; k = 1, k′ = 0, K = 1, , K = ∞. Curve 2 partial substrate inhibition; k = 1, k′ = 0.2, K = 1, , K = ∞. Curve 3 partial substrate inhibition; k = 1, k′ = 0.2, K = 1, , K = 5. Curve 4 partial substrate inhibition; k = 1, k′ = 0.2, K = 1, . Curve 5 no substrate inhibition; k = 1, k′ = 0, K = 1, , K = ∞. b Quotient velocity plot. (V − v)/v was plotted against the substrate concentrations. c Reciprocal of the quotient velocity plot. Dotted lines were theoretical curves, and solid linear lines were drawn within higher substrate concentration range.
Figure 2Substrate inhibition of phosphofructokinase II (encoded by pfkB) from E. coli. a Substrate saturation curve. Phosphofructokinase activity was determined by following the decrease in the NADH concentration using aldolase, triose phosphate isomerase and glycerol 3-phosphate dehydrogenase as coupling enzymes. The reaction was started by the addition of phosphofructokinase, and the decrease in absorbance at 340 nm was recorded. a Substrate saturation curves. Points were experimental data and lines were theoretically drawn from Eq. (1), using the following parameter values: V = 110 μmol/min per mg. K = 0.065 mM. Curve 1 = 0.65 mM. Curve 2 = 2.8 mM. Curve 3 = 7 mM. b Quotient velocity plot. c Reciprocal of the quotient velocity plot. values were calculated from the slope of the lines at the higher substrate concentration.