Haldane effect
WikiDoc Resources for Haldane effect |
Articles |
---|
Most recent articles on Haldane effect Most cited articles on Haldane effect |
Media |
Powerpoint slides on Haldane effect |
Evidence Based Medicine |
Clinical Trials |
Ongoing Trials on Haldane effect at Clinical Trials.gov Trial results on Haldane effect Clinical Trials on Haldane effect at Google
|
Guidelines / Policies / Govt |
US National Guidelines Clearinghouse on Haldane effect NICE Guidance on Haldane effect
|
Books |
News |
Commentary |
Definitions |
Patient Resources / Community |
Patient resources on Haldane effect Discussion groups on Haldane effect Patient Handouts on Haldane effect Directions to Hospitals Treating Haldane effect Risk calculators and risk factors for Haldane effect
|
Healthcare Provider Resources |
Causes & Risk Factors for Haldane effect |
Continuing Medical Education (CME) |
International |
|
Business |
Experimental / Informatics |
Editor-In-Chief: C. Michael Gibson, M.S., M.D. [1]
The Haldane effect is a property of hemoglobin first described by the British physician John Scott Haldane.
Deoxygenation of the blood increases its ability to carry carbon dioxide; this property is the Haldane effect. Conversely, oxygenated blood has a reduced capacity for carbon dioxide. This is a consequence of the fact that reduced (deoxygenated) hemoglobin is a better proton acceptor than the oxygenated form.
In red blood cells, the enzyme carbonic anhydrase catalyzes the conversion of dissolved carbon dioxide to carbonic acid, which rapidly dissociates to bicarbonate and a free proton:
CO2 + H2O -> H2CO3 -> H+ + HCO3-
By Le Chatelier's principle, anything that stabilizes the proton produced will cause the reaction to shift to the right, thus the enhanced affinity of deoxyhemoglobin for protons enhances synthesis of bicarbonate and accordingly increases capacity of deoxygenated blood for carbon dioxide. The majority of carbon dioxide in the blood is in the form of bicarbonate. Only a very small amount is actually dissolved as carbon dioxide, and the remaining amount of carbon dioxide is bound to hemoglobin.
In addition to enhancing removal of carbon dioxide from oxygen-consuming tissues, the Haldane effect promotes dissociation of carbon dioxide from hemoglobin in the presence of oxygen. In the oxygen-rich capillaries of the lung, this property causes the displacement of carbon dioxide to plasma as venous blood enters the alveolus and is vital for alveolar gas exchange.
The general equation for the Haldane Effect is: H+ + HbO2 <-> H+.Hb + O2
Clinical significance
In patients with lung disease, lungs may not be able to increase alveolar ventilation in the face of increased amounts of dissolved CO2.
This partially explains the observation that some patients with emphysema might have an increase in PaCO2 (arterial dissolved carbon dioxide) following administration of supplemental oxygen.
See also
External links
- Essentials of Human Physiology by Thomas M. Nosek. Section 4/4ch5/s4ch5_31.
- Overview at umc.edu
- Overview at vcu.edu
- Template:EMedicineDictionary