Answer:
The turnover number is the maximum substrate quantitiy converted to product per enzyme and per second. It can be calculate as follows:
[tex]k_c = \frac{V_{max}}{[E]}[/tex] with [tex][E][/tex] active enzyme concentration.
In this case we have Vmax an data to calculate [tex][E][/tex]
[tex]moles of E=\frac{10^{-9}g}{29600 g/mol}=3.38*10^{-14}[/tex]
[tex][E]=\frac{3.38*10^{-14}}{0.01 L}=3.38*10^{-12} M [/tex]
Now [tex]k_c=\frac{6.8*10^-10}{3.38*10^{-12}}=201.28 min^{-1}[/tex]
it is not like any option.
If we assume that [tex]V_{max}[/tex] have the non usual units of [tex]mol L^{-1} min^{-1}[/tex] and it is [tex]6.8*10^-10 mol min^{-1}[/tex]
So we need divide by the moles of E (in place of [E])
Now [tex]k_c=\frac{6.8*10^-10}{3.38*10^{-14}}=20128 min^{-1} = 335 s{-1}[/tex]
(pass from [tex]min^{-1}[/tex] to [tex]s^{-1}[/tex] dividing by 60)
