Q.50 An enzyme catalyzes the conversion of 4 × 10−4 M substrate into product at a rate of 20 μM/min. If the Km value for the enzyme is 2 × 10−4 M, the value of Vmax is _____ μM/min .

Q.50 An enzyme catalyzes the conversion of 4 × 10−4 M substrate into product at a rate
of 20 μM/min. If the Km value for the enzyme is 2 × 104 M, the value of Vmax is
_____ μM/min .

The value of Vmax for the given enzyme is 40 μM/min.

Given data and concept

Substrate concentration, [S] = 4 × 10−4 M
Rate of reaction at this substrate concentration, v = 20 μM/min
Michaelis constant, Km = 2 × 10−4 M

For a simple one‑substrate enzyme, the Michaelis–Menten equation is

v = Vmax [S]Km + [S]

where v is reaction velocity, Vmax is maximum velocity, [S] is substrate concentration and Km is the Michaelis constant.

Step‑by‑step numerical solution

Insert the known values (keep units consistent; both [S] and Km are in molar):

20 = Vmax × 4 × 10−42

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