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21 August, 22:00

What is the equilibrium constant for the enzymatic hydrolysis of 0.1 M glucose-6-phosphate to glucose and inorganic phosphate given that 0.05% of the original glucose-6-phosphate remained after reaching equilibrium and the activity of water is unity?

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  1. 22 August, 00:54
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    1.999 or 2

    Explanation:

    The equilibrium constant is concentration of the products over reactants at equilibrium (see below the formula).

    Formula: Keq = [Products]/[Reactants]

    Keq = [ (100% - 0.05%) / 100*0.1 M) ] / [ (0.05%/100*0.1 M) ]

    = 0.09995/0.00005

    = 1.999 which is ~2
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