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Cell Biology

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  • Module
    Review Articles
    Video Lectures
    Practice Questions
    Flashcards
    Genetic Mutations
    1
    2
    4
    9
    Gene Expression & Protein Synthesis
    2
    6
    7
    26
    DNA, Chromosomes, Replication, and Repair
    2
    4
    6
    21
    Enzymes
    1
    3
    3
    14
    Globular Proteins
    1
    3
    4
    8
    Amino Acids, Proteins, and Peptides
    2
    5
    7
    29
    Cell Cycle and Components
    2
    5
    7
    23

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  • Globular Proteins: Hemoglobin and Myoglobin

    Written by: Adnan Mousa, M.D.


    Keywords: Hemoglobin, Myoglobin, Oxygen binding, Cooperative binding, Hyperbolic curve, Sigmoidal curve, Oxygen transport


    Overview

    Hemoglobin and myoglobin are crucial globular proteins responsible for oxygen transport and storage. Myoglobin, a monomeric protein with a single heme group, exhibits a hyperbolic oxygen-binding curve, making it efficient for oxygen storage in muscle tissues. In contrast, hemoglobin is a tetramer composed of four subunits, displaying cooperative binding that results in a sigmoidal curve, enhancing oxygen delivery to tissues. The heme group, essential for oxygen binding, is stabilized by covalent linkages with globin chains. The distal histidine near the heme group facilitates effective oxygen binding while reducing carbon monoxide affinity. Additionally, 2,3-bisphosphoglycerate (BPG) promotes oxygen release, with the Bohr effect enhancing oxygen delivery under increased CO2 levels and lower pH. Understanding these proteins is vital for managing disorders like sickle cell disease and thalassemia, as well as their roles in exercise physiology and altitude adaptation.


    Hemoglobin vs. Myoglobin

    Table 1: Myolglobin vs Hemoglobin

    Feature

    Myoglobin

    Hemoglobin

    General structure

    Compact, spherical shape; soluble in water

    Polypeptide chains

    Monomeric: Single polypeptide chain

    Tetrameric: Four polypeptide chains (two alpha and two beta)

    Oxygen binding site

    Contains one heme group for oxygen binding

    Contains four heme groups (one in each subunit)

    Function

    Facilitates oxygen storage in muscle tissues

    Transports oxygen from lungs to tissues

    Oxygen binding behavior

    It has a very high affinity for oxygen

    Enhances oxygen uptake or release based on the physiological context.

     


    Figure 1. Hemoglobin tetramer (a) and heme group (b).

    OpenStax College. (2013, June 19). Illustration from Anatomy & Physiology. Connexions Web site. http://cnx.org/content/col11496/1.6/


    Oxygen Dissociation Curves

    Illustrates the relationship between arterial partial pressure of oxygen (PaO₂) and the saturation percentage of hemoglobin (Hb) or myoglobin with oxygen (SaO2), demonstrating the binding affinity for O₂.


    Binding Curves:

    ●       Myoglobin:

    −        Displays a hyperbolic curve due to its single polypeptide chain and monomeric heme.

    −        Binds O₂ efficiently, suitable for its role in oxygen storage in muscle tissues.


    ●       Hemoglobin:

    −        Exhibits a sigmoidal (S-shaped) curve due to positive cooperativity.

    −        Cooperative binding is when binding of one O₂ molecule increases the affinity of adjacent heme sites for additional O₂.

    −        Curve starts flat at low O₂, steepens as O₂ binds, and plateaus at high O₂ concentrations.


    Physiological Shifts in Hemoglobin's O₂ Dissociation Curve:

    ●       Rightward Shift: Decreased affinity for O₂.


    −        Impacts:

    ●       Enhances O₂ release to tissues.

    ●       Beneficial during increased metabolic demand (e.g., exercise, high altitude).

    −        Causes:

    ●       Elevated carbon dioxide (PCO₂).

    ●       Increased body temperature.

    ●       Acidosis (lower pH).

    ●       Increased 2,3-bisphosphoglycerate (2,3-BPG).



    ●       Leftward Shift: Increased affinity for O₂.


    −        Impacts:

    ●       Reduces O₂ delivery to tissues.

    ●       May trigger erythropoietin synthesis due to renal hypoxia.

    −        Causes:

    ●       Decreased carbon dioxide (PCO₂).

    ●       Lower body temperature.

    ●       Alkalosis (higher pH).

    ●       Decreased 2,3-BPG levels.

    ●       Presence of fetal hemoglobin (HbF) or carbon monoxide (CO).



    Figure 2. Oxygen-Hemoglobin dissociation curve

    Webb, K. L. (2022). Influence of high hemoglobin-oxygen affinity on humans during hypoxia [Figure]. Frontiers in Physiology. https://doi.org/10.3389/fphys.2021.763933 



    Figure 3. Myoglobin vs Hemoglobin dissociation curves

    蛇守护的苹果堆. (2020, January 18). Hb和Mb的氧解离曲线 [Oxygen dissociation curves of Hb and Mb] [Image]. Wikimedia Commons. https://commons.wikimedia.org/wiki/File:Hb%E5%92%8CMb%E7%9A%84%E6%B0%A7%E8%A7%A3%E7%A6%BB%E6%9B%B2%E7%BA%BF.png

     


    Heme Structure

    ●       Heme is a planar structure composed of a porphyrin ring.

    ●       The porphyrin ring contains ferrous iron (Fe²⁺) coordinated at its center.

    ●       The iron is held in place by bonds to four nitrogen atoms from the porphyrin ring.

    ●       Fe²⁺ can form two additional bonds, one on each side of the planar ring.

    ●       Binding Sites:

    −        In hemoglobin, one of these additional positions is coordinated to the side chain of a histidine residue from the globin molecule.

    −        The other position is available for binding oxygen (O₂).



     

    Figure 4. Porphyrin ring in heme A.

    Yikrazuul. (2010, August 3). Heme a [Own work]. https://commons.wikimedia.org/wiki/File:Heme_a.svg

     


    Figure 5. Binding of oxygen to heme group.

    Smokefoot. (2017, November 1). Oxygenation of heme protein [Own work]. https://commons.wikimedia.org/wiki/File:Mboxygenation.png

     


    Figure 6. Binding of distal histidine to heme group.

    Mrbean427. (2008, December 4). Showing the oxygen stabilization with distal histidine's hydrogen bonding with the O₂ molecule [Own work]. https://commons.wikimedia.org/wiki/File:HEME_%2B_DISTAL_HISTIDINE.jpg

     


    Distal Histidine and 2,3-Bisphosphoglycerate (BPG)

    Table 2: Distal histidine and 2,3-Bisphosphoglycerate

    Aspect

    Distal histidine

    2,3-Bisphosphoglycerate (BPG)

    Primary function

    Stabilizes the binding of oxygen to the heme group and reduces the likelihood of carbon monoxide (CO) binding.

    Lowers hemoglobin's oxygen affinity, facilitating oxygen release in tissues.

    Physiological importance

    Ensures that oxygen is preferentially bound and transported over toxic gases like CO.

    Enhances oxygen unloading in tissues, particularly under low oxygen conditions, such as in high altitudes.

     

    Bohr Effect

    ●       Affinity relationship: Increase in CO₂ and H⁺ levels → decrease in hemoglobin’s (Hb) affinity for oxygen (O₂).

    ●       In high metabolism: High levels of CO₂ and H⁺ ions, produced by active tissues, cause hemoglobin to release more oxygen where it's needed.

    ●       Importance: It ensures that oxygen is delivered efficiently to tissues that are using more oxygen, like muscles during exercise.


    Haldane Effect

    ●       Affinity Relationship: The affinity of hemoglobin (Hb) for carbon dioxide (CO₂) decreases when it is oxygenated.

    ●       Oxygenation in the Lungs: In areas with high oxygen levels, such as the lungs, oxygenated hemoglobin releases CO₂ for exhalation.

    ●       CO₂ Uptake in Tissues: In peripheral tissues with low oxygen, deoxygenated hemoglobin facilitates the uptake of CO₂.

    ●       Gas Exchange Efficiency: This effect ensures oxygen is absorbed while carbon dioxide is expelled from the body.

     

    Hemoglobin S (HbS)

    ●       Hemoglobin S (HbS) is a form of hemoglobin that differs from normal hemoglobin (HbA) due to a single change in the amino acid sequence of the β-globin chain.

    ●       HbS can clump together (polymerize) when oxygen levels are low

    ●       The polymerization leads to the formation of sickle-shaped red blood cells, which can block blood vessels and reduce oxygen delivery to tissues.

    ●       Individuals with sickle cell disease often experience chronic anemia and other health complications due to the decreased oxygen supply to their tissues.

     

    Associated Conditions

    Table 3: Clinical examples

    Disorder type

    Disorder

    Description

    Myoglobin-related disorders

    Myoglobinuria

    Myoglobin leaks into the urine due to muscle damage, which can lead to kidney problems.

    Hemoglobin-related disorders

    Methemoglobinemia

    Hemoglobin is converted to methemoglobin, impairing its ability to carry oxygen.

    Carbon monoxide poisoning

    Carbon monoxide binds to hemoglobin more easily than oxygen, reducing oxygen transport in the blood.

    Genetic mutations and variants

    HbC disease

    A genetic disorder caused by a mutation in the beta-globin gene, leading to abnormal hemoglobin and mild anemia.

     


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