Double-Reciprocal Plots and Telling Inhibitor Types Apart
Plotting reciprocals turns a curve into a straight line whose intercepts give the two constants directly. Each inhibition type moves a different intercept, so the plot identifies the mechanism rather than just showing that the rate fell.
What a learner can do afterwards
- Reads the maximum rate and the Michaelis constant from the intercepts of a straight-line plot.
- Identifies competitive, uncompetitive and non-competitive inhibition from which intercept moves.
- Explains why competitive inhibition can be overcome by more substrate and the others cannot.
1 · Read
Plotting one over rate against one over substrate turns the hyperbola into a straight line. The y intercept reads one over Vmax and the x intercept reads minus one over Km. Labs today fit the curve directly, since the transform twists errors, but the pattern still names the mechanism.
A competitive blocker sits in the active site, so flooding substrate washes it out. The slope changes alone and lines meet on the y axis: same Vmax with higher apparent Km. Only this type yields to extra substrate, since the others bind elsewhere or need the complex.
A non competitive blocker grips a separate spot and throttles the enzyme whatever the substrate level. Lines meet on the x axis: lower Vmax with Km steady. An uncompetitive blocker holds only the enzyme substrate complex, giving parallel lines with both Vmax and Km lower.
Check the curve shape before reading intercepts. Cooperative enzymes draw an S curve, and their transform bends instead of straightening. Only a true hyperbola gives the three fingerprints above.
Same y intercept means competitive, same x intercept means non competitive, parallel means uncompetitive.
2 · Watch
Take it off screen
Where it sits
8 questions wait behind this lesson, each with its answer explained. Every answer feeds the sky: stars light as they are learned, and dim when it is time to come back.