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On the Origin of Hemoglobin Cooperativity under Non-equilibrium Conditions

Abnormal hemoglobins can have major consequences for tissue delivery of oxygen. Correct diagnosis of hemoglobinopathies with altered oxygen affinity requires a determination of hemoglobin oxygen dissociation curve, which relates the hemoglobin oxygen saturation to the partial pressure of oxygen in t...

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Autores principales: Scrima, Rosella, Fugetto, Sabino, Capitanio, Nazzareno, Gatti, Domenico L.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Applied Systems srl 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10431948/
https://www.ncbi.nlm.nih.gov/pubmed/37593464
http://dx.doi.org/10.15190/d.2022.5
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author Scrima, Rosella
Fugetto, Sabino
Capitanio, Nazzareno
Gatti, Domenico L.
author_facet Scrima, Rosella
Fugetto, Sabino
Capitanio, Nazzareno
Gatti, Domenico L.
author_sort Scrima, Rosella
collection PubMed
description Abnormal hemoglobins can have major consequences for tissue delivery of oxygen. Correct diagnosis of hemoglobinopathies with altered oxygen affinity requires a determination of hemoglobin oxygen dissociation curve, which relates the hemoglobin oxygen saturation to the partial pressure of oxygen in the blood. Determination of the oxygen dissociation curve of human hemoglobin is typically carried out under conditions in which hemoglobin is in equilibrium with O2 at each partial pressure. However, in the human body due to the fast transit of red blood cells through tissues hemoglobin oxygen exchanges occur under non-equilibrium conditions. We describe the determination of non-equilibrium oxygen dissociation curve and show that under these conditions the true nature of hemoglobin cooperativity is revealed as emerging solely from the consecutive binding of oxygen to each one of the four subunits of hemoglobin until the entire tetramer is saturated. We call this form of cooperativity the sequential cooperativity of hemoglobin and define the simplest model that includes it as the minimalist model of hemoglobin. A single instantiation of this model accounts for ~70% of hemoglobin cooperativity under non-equilibrium conditions. The total cooperativity of hemoglobin can be viewed more correctly as the summation of two instantiations of the minimalist model (each one corresponding to a tetramer of low and high affinity for O2, respectively) in equilibrium with each other, as in the Monod-Wyman-Changeux model of hemoglobin. In addition to offering new insights on the nature of hemoglobin reaction with oxygen, the methodology described here for the determination of hemoglobin non-equilibrium oxygen dissociation curve provides a simple, fast, low-cost alternative to complex spectrophotometric methods, which is expected to be particularly valuable in regions where hemoglobinopathies are a significant public health problem, but where highly specialized laboratories capable of determining a traditional oxygen dissociation curve are not easily accessible.
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spelling pubmed-104319482023-08-17 On the Origin of Hemoglobin Cooperativity under Non-equilibrium Conditions Scrima, Rosella Fugetto, Sabino Capitanio, Nazzareno Gatti, Domenico L. Discoveries (Craiova) Original Article Abnormal hemoglobins can have major consequences for tissue delivery of oxygen. Correct diagnosis of hemoglobinopathies with altered oxygen affinity requires a determination of hemoglobin oxygen dissociation curve, which relates the hemoglobin oxygen saturation to the partial pressure of oxygen in the blood. Determination of the oxygen dissociation curve of human hemoglobin is typically carried out under conditions in which hemoglobin is in equilibrium with O2 at each partial pressure. However, in the human body due to the fast transit of red blood cells through tissues hemoglobin oxygen exchanges occur under non-equilibrium conditions. We describe the determination of non-equilibrium oxygen dissociation curve and show that under these conditions the true nature of hemoglobin cooperativity is revealed as emerging solely from the consecutive binding of oxygen to each one of the four subunits of hemoglobin until the entire tetramer is saturated. We call this form of cooperativity the sequential cooperativity of hemoglobin and define the simplest model that includes it as the minimalist model of hemoglobin. A single instantiation of this model accounts for ~70% of hemoglobin cooperativity under non-equilibrium conditions. The total cooperativity of hemoglobin can be viewed more correctly as the summation of two instantiations of the minimalist model (each one corresponding to a tetramer of low and high affinity for O2, respectively) in equilibrium with each other, as in the Monod-Wyman-Changeux model of hemoglobin. In addition to offering new insights on the nature of hemoglobin reaction with oxygen, the methodology described here for the determination of hemoglobin non-equilibrium oxygen dissociation curve provides a simple, fast, low-cost alternative to complex spectrophotometric methods, which is expected to be particularly valuable in regions where hemoglobinopathies are a significant public health problem, but where highly specialized laboratories capable of determining a traditional oxygen dissociation curve are not easily accessible. Applied Systems srl 2022-06-30 /pmc/articles/PMC10431948/ /pubmed/37593464 http://dx.doi.org/10.15190/d.2022.5 Text en Copyright © 2022, Scrima R et al., Applied Systems and Discoveries Journals https://creativecommons.org/licenses/by/4.0/This article is an Open Access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited and it is not used for commercial purposes.
spellingShingle Original Article
Scrima, Rosella
Fugetto, Sabino
Capitanio, Nazzareno
Gatti, Domenico L.
On the Origin of Hemoglobin Cooperativity under Non-equilibrium Conditions
title On the Origin of Hemoglobin Cooperativity under Non-equilibrium Conditions
title_full On the Origin of Hemoglobin Cooperativity under Non-equilibrium Conditions
title_fullStr On the Origin of Hemoglobin Cooperativity under Non-equilibrium Conditions
title_full_unstemmed On the Origin of Hemoglobin Cooperativity under Non-equilibrium Conditions
title_short On the Origin of Hemoglobin Cooperativity under Non-equilibrium Conditions
title_sort on the origin of hemoglobin cooperativity under non-equilibrium conditions
topic Original Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10431948/
https://www.ncbi.nlm.nih.gov/pubmed/37593464
http://dx.doi.org/10.15190/d.2022.5
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