Enzyme & Inhibitor
Time Course
Live Readout
Apparent Km
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Apparent Vmax
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v at [S]₀
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t to 50% [S] used
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How it works

An inhibitor can bind the free enzyme (competing with substrate for the active site), the enzyme-substrate complex, or both. The general modified Michaelis-Menten rate law used here:

v = Vmax[S] / ( Km(1+[I]/Ki) + [S](1+[I]/Ki′) )

Competitive:    Ki′ → ∞   (Ki′ has no effect)
Uncompetitive:  Ki  → ∞   (Ki has no effect)
Noncompetitive: Ki = Ki′
Mixed:          Ki ≠ Ki′, both finite

The Lineweaver-Burk plot linearizes this as 1/v = [Km(1+[I]/Ki)/Vmax]·(1/[S]) + (1+[I]/Ki′)/Vmax — so a competitive inhibitor changes the slope but leaves the y-intercept (1/Vmax) fixed, while a pure noncompetitive inhibitor changes the y-intercept but leaves the x-intercept (-1/Km) fixed. The time-course panel numerically integrates dS/dt = -v(S) with RK4 to show how substrate actually depletes and product accumulates over real time under the chosen inhibition regime — the saturation curve alone only shows instantaneous rate, not the reaction's full progress.