Answer:
[tex]K_{cat} = 1.30\times 10^{-5}[/tex]
Explanation:
turnover number for an enzyme = 500/min
destabilization of the ES complex = 1Kcal/mole
destabilization of transition state (ES‡ ) = 2.5 kcal/mol
kB = 3.297×10−24 cal/K
h = 1.583 x 10-34 cal.s
R = 2 cal/K.mol
we Know that
kcat = (kBT/h).e-(ΔG‡/RT)
T = temperature in Kelvin
By considering the following reaction
K1 K2
E + S ⇆ (ES‡ ) ⇒ E + P
K-1
Ф = K2(ES‡ )
[tex]K_{cat} =\frac{K_{b} T}{h} e^{\frac{\Delta G}{RT} }[/tex]
where
ΔG‡ = -RTlnKeq‡
[tex]K_{cat} =\frac{K_{b} T}{h} e^{\frac{-(-RTlnK_{eq}) }{RT} }[/tex]
[tex]K_{cat} =\frac{K_{b} T}[/tex]K‡eq
K(cat)= Kb T/h x K2x ES‡/ES Now by putting values we get
[tex]K_{cat} = \frac{3.297\times 10^{-27}\frac{Cal}{K}\times(273+27)K }{1.583\times 10^{-34}\frac{Cal}{K}} \times\frac{500}{60} \times\frac{2.5\frac{KCal}{mol} }{1\frac{KCal}{mol} }[/tex]
[tex]K_{cat} = 1.30\times 10^{-5}[/tex]
