Sixty hours after aspirin ingestion, the patient’s blood pH has returned to normal (pH 7.4). Describe how the carbonic acid/bicarbonate buffering system responded to bring the patient’s blood pH back to normal. LeChatelier’s Principle may be helpful here. For the question above, doesn't the stopping of hyperventilation (due to the passage of time) automatically increase the CO2 concentration in blood, thus re-establishing all the "normal" equilibria, including the one with H+? How does the H2CO3/HCO3- buffer respond?
Sixty hours after aspirin ingestion, the patient’s blood pH has returned to normal (pH 7.4). Describe how the carbonic acid/bicarbonate buffering system responded to bring the patient’s blood pH back to normal. LeChatelier’s Principle may be helpful here. For the question above, doesn't the stopping of hyperventilation (due to the passage of time) automatically increase the CO2 concentration in blood, thus re-establishing all the "normal" equilibria, including the one with H+? How does the H2CO3/HCO3- buffer respond?
Biochemistry
9th Edition
ISBN:9781319114671
Author:Lubert Stryer, Jeremy M. Berg, John L. Tymoczko, Gregory J. Gatto Jr.
Publisher:Lubert Stryer, Jeremy M. Berg, John L. Tymoczko, Gregory J. Gatto Jr.
Chapter1: Biochemistry: An Evolving Science
Section: Chapter Questions
Problem 1P
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Sixty hours after aspirin ingestion, the patient’s blood pH has returned to normal (pH
7.4). Describe how the carbonic acid/bicarbonate buffering system responded to bring the
patient’s blood pH back to normal. LeChatelier’s Principle may be helpful here.
For the question above, doesn't the stopping of hyperventilation (due to the passage of time) automatically increase the CO2 concentration in blood, thus re-establishing all the "normal" equilibria, including the one with H+? How does the H2CO3/HCO3- buffer respond?
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