As an approximation we can assume that proteins exist either in the native state and the denatured state. The standard molar enthalpy and entropy of the denaturation of a certain protein are 512 kj/mol and 1.60 kj/K mol.comment on the signs and magnitude of these quantities , and calculates the temperature at which the process favors the denatured state.

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Tringa0 Tringa0 · Answer 1 · 2020-02-26T07:25:32+01:00

Answer:

Above 320 Kelvin temperature or 47°C , denaturation of protein will favored.

Explanation:

Standard molar enthalpy of denaturation of protein = ΔH = 512 kJ/mol

Standard molar entropy of denaturation of protein = ΔS = 1.60 kJ/mol

Gibbs free energy of the reaction = ΔG

[tex]\Delta G = \Delta H-T\Delta S[/tex]

For reaction to be feasible , ΔG < 0 . So the value of ( ΔH-TΔS) shoulbe less than zero or negative.

Putting ΔG = 0

[tex]0 = \Delta H-T\Delta S[/tex]

[tex]\Delta H=T\Delta S[/tex]

[tex]512 kJ/mol=T\times 1.60 kJ/mol[/tex]

T = 320 K

T = 320 K = 320 - 273°C = 47°C

Above 320 Kelvin temperature or 47°C , denaturation of protein will favored.