A critical reaction in the production of energy to do work or drive chemical reactions in biological systems is the hydrolysis of adenosine triphosphate, ATP, to adenosine diphosphate, ADP, as described by the reaction ATP(aq) + H₂O(1) - ADP(aq) + HPO2 (aq) for which AGxn=-30.5 kJ/mol at 37.0 °C and pH 7.0. Calculate the value of AGrxn in a biological cell in which [ATP] = 5.0 mM, [ADP] = 0.10 mM, and [HPO-] = 5.0 mM. AGrxn= kJ/mol

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Chapter10: Entropy And The Second Law Of Thermodynamics
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A critical reaction in the production of energy to do work or drive chemical reactions in biological systems is the hydrolysis of
adenosine triphosphate, ATP, to adenosine diphosphate, ADP, as described by the reaction
ATP(aq) + H₂O(1) → ADP(aq) + HPO2 (aq)
4
for which AGixn -30.5 kJ/mol at 37.0 °C and pH 7.0. Calculate the value of AGrxn in a biological cell in which
[ATP] = 5.0 mM, [ADP] = 0.10 mM, and [HPO²¯] = 5.0 mM.
AGrxn
=
=
Is the hydrolysis of ATP spontaneous under these conditions?
yes
O no
kJ/mol
Transcribed Image Text:A critical reaction in the production of energy to do work or drive chemical reactions in biological systems is the hydrolysis of adenosine triphosphate, ATP, to adenosine diphosphate, ADP, as described by the reaction ATP(aq) + H₂O(1) → ADP(aq) + HPO2 (aq) 4 for which AGixn -30.5 kJ/mol at 37.0 °C and pH 7.0. Calculate the value of AGrxn in a biological cell in which [ATP] = 5.0 mM, [ADP] = 0.10 mM, and [HPO²¯] = 5.0 mM. AGrxn = = Is the hydrolysis of ATP spontaneous under these conditions? yes O no kJ/mol
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