Competencies
- PY2.4: Describe RBC formation (erythropoiesis & its regulation) and its functions
Introduction
- Erythropoiesis is the process of formation of red blood cells in the bone marrow.
- Red cells have a finite lifespan of approximately 120 days in circulation.
- New cells are continuously produced to replace those lost by aging, hemorrhage, or destruction.
- The bone marrow maintains a balance between production and loss of red cells.
- Normal red cell mass is about 26–32 milliliters per kilogram in males and 23–29 milliliters per kilogram in females.
- Regulation ensures adequate oxygen-carrying capacity of blood.
Sites And Stages Of Erythropoiesis
- Definition: Erythropoiesis is the process of formation of red blood cells and is a key part of hemopoiesis.
Stages of Erythropoiesis
- Erythropoiesis occurs in three stages: mesoblastic, hepatic, and medullary stages.
Mesoblastic Stage
- This is the earliest stage during embryonic life.
- Red cell formation occurs in the mesoderm of the yolk sac and body.
- Erythropoiesis during this stage is intravascular in nature.
Hepatic Stage
- This stage begins around the fifth week of gestation.
- The liver is the primary site, with contribution from the spleen.
- It continues as the dominant site during early fetal life.
Medullary Stage
- This stage begins around the fifth month of intrauterine life.
- Bone marrow gradually becomes the principal site of red cell production.
- Activity increases toward the end of fetal life and continues after birth.
- After birth, bone marrow remains the sole site under normal conditions.
- Extramedullary erythropoiesis in postnatal life indicates pathology.
- In children, most bones are active, but in adults activity is limited to axial skeleton.
Clinical Physiology
Extramedullary erythropoiesis after birth is abnormal:
- After birth, erythropoiesis normally occurs only in the bone marrow.
- Presence of extramedullary erythropoiesis indicates underlying pathology.
- It commonly occurs in severe anemia or marrow failure states.
- The liver and spleen may enlarge due to compensatory red cell production.
- This finding suggests increased demand or ineffective marrow function.
Steps of Erythropoiesis
- Erythropoiesis proceeds through four main stages: stem cells, progenitor cells, precursor cells, and mature cells.
- Pluripotent hematopoietic stem cells differentiate into committed erythroid stem cells.
- These cells form progenitor cells, which further develop into precursor cells.
- Precursor cells mature into reticulocytes and finally into erythrocytes.
- During maturation, cell size progressively decreases.
- The nucleus becomes smaller, chromatin condenses, and the nucleus is eventually lost.
- Cytoplasmic staining changes from basophilic to polychromatophilic and then to acidophilic.
- This reflects a reduction in ribonucleic acid and increased hemoglobin synthesis.
Stem Cells
Pluripotent Stem Cells
- Pluripotent stem cells are primary cells that give rise to all blood cell lineages.
- They possess two key properties: self-renewal and differentiation.
- Self-renewal maintains a constant stem cell pool in the bone marrow.
- Differentiation allows formation of specialized progenitor cells.
Committed Stem Cell
- Committed stem cells arise from pluripotent stem cells.
- They are restricted to specific lineages, such as myeloid or lymphoid series.
- Myeloid stem cells generate erythroid, megakaryocytic, granulocytic, and monocytic cells.
- Erythroid stem cells further form progenitor cells.
- Important erythroid progenitors include burst-forming unit–erythroid and colony-forming unit–erythroid.
- These progenitors eventually develop into precursor cells and mature red blood cells.
Progenitor Cells
- Progenitor cells in erythropoiesis include burst-forming unit–erythroid and colony-forming unit–erythroid.
- Both arise from a common progenitor cell of myeloid lineage.
- Burst-forming unit–erythroid cells produce a large number of colony-forming unit–erythroid cells.
- Colony-forming unit–erythroid cells generate erythroid precursor cells.
- These precursors further differentiate into erythroblasts and eventually mature red cells.
Precursor Cells
- Precursor cells of erythropoiesis are morphologically identifiable cells called erythroblasts or normoblasts.
- These cells arise from progenitor cells and undergo progressive maturation in the bone marrow.
- Erythroblasts develop sequentially from pronormoblasts into early, intermediate, and late normoblasts.
Pronormoblast
- Pronormoblast is the earliest recognizable precursor in erythroid lineage.
- It is a large cell, measuring about 15–20 micrometers in diameter.
- The cytoplasm is scanty and intensely basophilic due to abundant ribonucleic acid.
- The nucleus is large, occupies most of the cell, and contains prominent nucleoli.
- Active mitosis is present, indicating rapid proliferation.
- Hemoglobin synthesis has not yet begun at this stage.
Early Normoblast (Basophilic Erythroblast)
- The early normoblast is slightly smaller, measuring 12–18 micrometers.
- It continues to undergo mitotic division.
- The cytoplasm remains deeply basophilic due to high ribonucleic acid content.
- The nucleus is large with condensed chromatin arranged in coarse clumps.
- Chromatin pattern may appear like radiating strands.
- Initial hemoglobin synthesis begins at this stage.
- As maturation progresses, cytoplasmic color gradually shifts due to increasing hemoglobin and decreasing ribonucleic acid.
- Nuclear size reduces, chromatin condenses further, and nucleoli disappear.
- Ultimately, the nucleus is extruded, forming a reticulocyte that matures into a red cell.
Intermediate Normoblast (Polychromatic Erythroblast)
- The intermediate normoblast develops after division of the early erythroblast.
- It is smaller, with a diameter of about 10–15 micrometers.
- Cytoplasm shows mixed staining due to increasing hemoglobin and decreasing ribonucleic acid.
- This mixed staining gives a characteristic polychromatic appearance.
- The nucleus is reduced in size and occupies about half of the cell.
- Chromatin appears in coarse clumps with a checkerboard pattern.
- Nucleoli are absent at this stage.
- Hemoglobin synthesis increases significantly.
- Mitotic activity is present but reduced compared to earlier stages.
Late Normoblast (Orthochromatic Erythroblast)
- The late normoblast is the final stage before reticulocyte formation.
- It is the smallest erythroblast, measuring about 7–12 micrometers.
- Cytoplasm becomes strongly eosinophilic due to high hemoglobin concentration.
- The cell appears similar to a mature red cell except for the nucleus.
- The nucleus becomes small, dense, and pyknotic.
- Chromatin is highly condensed and may show a characteristic pattern.
- Mitosis is absent at this stage.
- Hemoglobin synthesis is nearly complete.
- The nucleus is eventually extruded, forming a reticulocyte.
Mature Cells
Reticulocytes
- Reticulocytes are immediate precursors of mature red blood cells.
- They contain a full complement of hemoglobin and are slightly larger than erythrocytes.
- Residual ribonucleic acid forms a reticular network within the cytoplasm.
- This network represents remnants of intracellular organelles.
- It can be demonstrated using supravital stains.
- Limited hemoglobin synthesis continues in early reticulocytes.
- The normal reticulocyte count is about 0–1 percent of circulating red cells.
Erythrocytes
- Erythrocytes are the final mature cells in erythropoiesis.
- They are biconcave discs with an average diameter of approximately 7.5 micrometers.
- They lack nucleus and organelles, allowing efficient gas transport.
H4: Duration of Erythropoiesis
- The total duration of erythropoiesis is approximately 7 to 9 days.
- Differentiation from progenitor cells to reticulocytes takes about 5 to 7 days.
- Reticulocytes mature into erythrocytes within about 2 days in circulation.
Regulation Of Erythropoiesis
- Erythropoiesis is regulated to maintain optimal red cell mass and oxygen delivery.
- The rate of production adjusts according to tissue oxygen requirements.
- There is no fixed anatomical reservoir controlling red cell production in humans.
Feedback Controls
- Regulation occurs through functional feedback and end-product feedback mechanisms.
Functional Feedback
- Functional feedback arises from tissue demand for oxygen.
- Reduced oxygen supply, or hypoxia, stimulates increased red cell production.
- This response ensures adequate oxygenation of tissues.
- Erythropoietin is the key hormone mediating this feedback.
- It is produced mainly by the kidneys in response to hypoxia.
- Erythropoietin stimulates bone marrow to increase erythroid cell production.
- This mechanism maintains balance between oxygen demand and red cell mass.
End-product Feedback
- End-product feedback is influenced by substances released during red cell destruction.
- Increased hemolysis stimulates erythropoiesis, leading to marrow hyperplasia.
- This response is more marked in hemolytic anemia than in blood loss of similar severity.
- Reticulocytosis reflects enhanced marrow activity in such conditions.
- The exact mediators are unclear, but heme derivatives may stimulate erythroid production.
Factors Controlling Erythropoiesis
- Erythropoiesis is regulated by hormonal, dietary, and other physiological factors.
Hormonal Factors
Erythropoietin
- Erythropoietin is the principal hormone controlling red cell production.
- It is produced mainly by the kidneys in response to reduced oxygen availability.
- Hypoxia stimulates its release, increasing erythroid activity in bone marrow.
- Erythropoietin enhances proliferation and maturation of erythroid precursor cells.
- This hormonal control maintains adequate oxygen-carrying capacity of blood.
History
- In 1906, French Professor Dr Paul Carnot and his associates suggested that hypoxia generates humoral factor capable of stimulating red cell production. In 1950, Kurt Ressmann provided strong support for existence of a hormonal mechanism, and few years later, it was named as erythropoietin. In 1957, Jacobson and coworkers found that the erythropoietin is produced by kidney.
Table 12.1: Factors controlling erythropoiesis.
| Category | Key Components |
|---|---|
| Hormonal factors | Erythropoietin, androgens, estrogen, thyroxine, anterior pituitary hormones, corticosteroids, interleukins |
| Dietary factors | Vitamin B12, folic acid, vitamin C, proteins, minerals such as iron, copper, cobalt, nickel |
| Other factors | Intrinsic factor, hypoxia, drugs, and other chemical influences |
Source
- Erythropoietin is produced mainly by interstitial cells around peritubular capillaries in the kidney.
- The kidney contributes approximately 85 percent of total production.
- Minor amounts arise from juxtaglomerular and mesangial cells.
- The liver contributes about 15 percent, mainly via hepatocytes and Kupffer cells.
- Small quantities may also be produced in the brain, uterus, and oviduct.
Clinical Physiology
Renal disease causes anemia:
- Chronic kidney disease reduces erythropoietin production, leading to anemia.
- Loss of renal mass or nephrectomy markedly decreases hormone synthesis.
- Reduced erythropoietin impairs red cell production in bone marrow.
- Hepatic production is insufficient to compensate for deficiency.
- This results in normocytic normochromic anemia commonly seen in renal disorders.
Structure
- Erythropoietin is a glycoprotein composed of 165 amino acids.
- It contains four oligosaccharide chains essential for biological activity.
- The molecular weight is approximately 34,000 daltons.
Mechanism of Action
- Erythropoietin binds to specific receptors on erythroid cells.
- These receptors belong to the cytokine receptor family.
- Binding activates intracellular signaling pathways involving JAK2 kinase.
- This signaling promotes gene expression and cell survival.
- The mechanism is similar to other growth factor–mediated pathways.
Functions
- Erythropoietin stimulates proliferation of progenitor cells such as burst-forming and colony-forming erythroid cells.
- It accelerates the cell cycle and enhances mitotic activity.
- It promotes maturation of erythroblasts into functional cells.
- It increases hemoglobin synthesis during cell development.
- It supports differentiation of stem cells toward erythroid lineage.
- It facilitates early release of reticulocytes into circulation.
Regulation of Erythropoietin (Ep) Production
- Factors regulating Ep production can be divided into factors increasing and factors decreasing the production.
Factors that increase Ep production:
- Hypoxia is the most potent stimulus for erythropoietin production.
- Reduced oxygen delivery, anemia, and low blood volume enhance secretion.
- Chronic lung diseases also increase erythropoietin levels.
- Hormones such as epinephrine, norepinephrine, and androgens stimulate production.
- Thyroxine, prolactin, and adrenocorticotropic hormone also enhance erythropoiesis.
- High altitude induces secondary polycythemia through increased erythropoietin release.
Factors that decrease Ep production:
- Estrogen reduces erythropoietin production and suppresses marrow response.
- Certain drugs, such as adenosine antagonists, decrease hormone secretion.
Metabolism
- Erythropoietin is mainly metabolized in the liver.
- Its normal half-life is approximately 5 hours.
- Loss of carbohydrate components markedly shortens its half-life.
Interleukins and GM-CSF
Interleukin 1, 3 and 5
- Interleukins promote differentiation of stem cells into progenitor cells.
- Granulocyte–macrophage colony-stimulating factor stimulates formation of committed stem cells.
Androgens
- Androgens enhance erythropoiesis directly and by increasing erythropoietin levels.
- This explains higher red cell counts in males after puberty.
Estrogens
- Estrogen has an inhibitory effect on erythropoiesis.
Thyroxine, Cortisol and Growth Hormone
- Thyroxine increases erythropoietin production and metabolic activity.
- Growth hormone promotes proliferation and maturation of erythroid cells.
- Cortisol may produce mild increases in red cell count.
Dietary Factors
Iron
- · Iron is essential for synthesis of heme, the oxygen-binding component of hemoglobin.
- · Adequate iron supply is necessary for effective erythropoiesis.
- · Iron deficiency leads to reduced hemoglobin formation.
- · This results in microcytic hypochromic anemia with small, pale red cells.
Vitamin B12 and Folic Acid
- · Vitamin B12 and folic acid are required for deoxyribonucleic acid synthesis in erythroid precursors.
- · Folic acid is converted to active tetrahydrofolate, which supports thymine formation.
- · Thymine is essential for normal DNA replication and cell division.
- · Deficiency of folate impairs nuclear maturation and arrests mitosis.
- · Vitamin B12 enables conversion of inactive folate to its active form.
- · Deficiency of vitamin B12 causes accumulation of inactive folate, known as the methyl trap.
- · Both deficiencies disrupt normal erythropoiesis and lead to abnormal cell development.
- · Ineffective maturation produces large precursor cells called megaloblasts in bone marrow.
- · These give rise to enlarged red cells, resulting in macrocytic anemia.
Clinical Physiology
Megaloblastic anemia:
- Folate and vitamin B12 deficiency impair deoxyribonucleic acid synthesis, causing megaloblastic anemia.
- Bone marrow shows megaloblasts, while peripheral smear reveals macrocytes.
- Patients may present with glossitis and anemia-related symptoms.
- Vitamin B12 deficiency also produces neurological deficits due to demyelination of nervous tissue.
Protein
- Protein is required for synthesis of globin chains of hemoglobin.
- Deficiency of protein reduces hemoglobin formation and contributes to anemia.
Other Nutritional Factors
- Vitamin C enhances intestinal absorption of iron.
- Its deficiency can impair iron utilization and promote anemia.
- Trace minerals such as copper and cobalt support hemoglobin synthesis.
- Deficiency of these elements may also lead to anemia.
Other Factors
Intrinsic factor
- Intrinsic factor is secreted by gastric oxyntic cells along with hydrochloric acid.
- It is essential for absorption of vitamin B12 in the terminal ileum.
- Deficiency of intrinsic factor impairs vitamin B12 absorption.
- This results in pernicious anemia, a form of megaloblastic anemia.
Environmental Factors
Hypoxia
- Hypoxia increases erythropoiesis by stimulating erythropoietin production.
- It occurs at high altitude and in cardiac or respiratory disorders.
- Certain drugs and chemicals enhance red cell production.
H5: Drugs and Chemicals
- Catecholamines, cyclic adenosine monophosphate, cobalt salts, and thyroxine stimulate erythropoiesis.
- Products of red cell breakdown may also promote marrow activity.
H4: Effective vs Ineffective Erythropoiesis
- Effective erythropoiesis refers to production of viable red cells with normal lifespan.
- Most cells formed in bone marrow enter circulation and function normally.
- A small proportion of cells may be destroyed early under normal conditions.
- Ineffective erythropoiesis occurs when many developing cells are destroyed before maturation.
- Destruction may occur within bone marrow or soon after release.
- It is suspected when marrow shows erythroid hyperplasia but reticulocyte count remains normal or low.
Reticulocytes
Structure
- Reticulocytes are immature red cells present mainly in bone marrow, with a small fraction in circulation.
- They lack a nucleus but retain residual ribonucleic acid from precursor cells.
- This residual material forms a characteristic reticular network within the cytoplasm.
- The network represents remnants of ribosomes and other cytoplasmic structures.
- On staining with supravital dyes such as cresyl blue or new methylene blue, the network becomes visible.
- It appears as threads, clumps, or granular aggregates within the cell.
- These stains act on living cells, allowing visualization of intracellular remnants.
- Reticulocytes are slightly larger than mature erythrocytes.
- Mature red cells lack both nucleus and cytoplasmic ribonucleic acid.
- In certain pathological conditions, aggregated ribonucleic acid appears as basophilic stippling.
- These appear as discrete blue granules within the cytoplasm.
- Such findings indicate disturbed erythropoiesis or toxic injury.
Clinical Physiology
Punctate basophilia:
- Basophilic stippling represents aggregated ribonucleic acid within red cells and reticulocytes.
- It indicates defective hemoglobin synthesis and impaired erythropoiesis.
- It is commonly observed in lead poisoning and other heavy metal toxicities.
- This finding aids in diagnosing toxic and metabolic causes of anemia.
Development
- Reticulocytes are formed in bone marrow from late normoblasts.
- The nucleus is extruded from the orthochromatic erythroblast to form a reticulocyte.
- These cells gradually lose mitochondria, ribosomes, and residual ribonucleic acid.
- Loss of organelles leads to transformation into mature erythrocytes.
- Approximately 1 percent of circulating red cells are replaced daily.
- A small number of reticulocytes enter circulation under normal conditions.
- Increased release of reticulocytes indicates enhanced erythropoiesis.
- Therefore, reticulocyte count serves as an index of marrow activity, especially in anemia.
Clinical Physiology
Reticulocytes indicate bone marrow activity:
- Reticulocyte count reflects bone marrow activity and erythropoietic response.
- Increased demand for red cells raises reticulocyte production and release.
- Elevated counts indicate active marrow compensation, as in anemia or blood loss.
- Severe stimulation may cause release of immature nucleated red cells into circulation.
Table 12.2: Differences between reticulocytes and red cells.
| Feature | Reticulocytes | Erythrocytes |
|---|---|---|
| Size | Slightly larger (≈8 micrometers) | Smaller (≈7.5 micrometers) |
| Residual material | Ribonucleic acid present | Absent |
| Proportion | About 1 percent of red cells | Predominant circulating cells |
| Mean corpuscular hemoglobin concentration | Slightly lower | Higher |
| Hemoglobin content | Comparable | Comparable |
Reticulocyte Count
- Reticulocyte count represents the proportion of immature red cells in circulation.
- Normal value in adults is about 0–1 percent of total red cells.
- In newborns, it ranges from 2–6 percent.
- The count declines during infancy and stabilizes at adult levels.
Reticulocyte Response
- Reticulocyte count is used to assess bone marrow response to anemia treatment.
- Increased count indicates active erythropoiesis and effective therapy.
- During treatment, immature cells are released earlier into circulation.
- This transient rise is termed reticulocyte response.
- It is commonly observed after treatment of iron deficiency anemia and vitamin B12 deficiency.
- A rising count suggests adequate substrate availability and marrow recovery.
- Failure of increase indicates ineffective erythropoiesis or inadequate treatment.
Clinical Physiology
Reticulocyte count indicates response to treatment:
- Reticulocyte count is used to monitor response to anemia treatment.
- An increase indicates effective bone marrow activity and recovery.
- It is particularly useful in iron deficiency and vitamin B12 deficiency anemia.
- Lack of rise suggests inadequate therapy or impaired erythropoiesis.
Alteration in Reticulocyte Count
Reticulocytosis
- Reticulocytosis refers to an increased reticulocyte count in blood.
- Physiologically, it occurs in newborns, infants, and at high altitude.
- Pathologically, it is seen in hemolytic anemia and acute blood loss.
- It also occurs during treatment of deficiency anemias.
- It indicates increased bone marrow activity and enhanced erythropoiesis.
Reticulocytopenia
- Reticulocytopenia indicates a decreased reticulocyte count and always suggests pathology.
- It occurs in aplastic anemia, hypothyroidism, hypopituitarism, and marrow failure states.
Leucoerythroblastic Reaction
- Leucoerythroblastic reaction refers to the presence of immature myeloid cells and nucleated red cells in blood.
- It reflects disruption of bone marrow architecture by infiltration or fibrosis.
- Common causes include myelofibrosis, metastatic malignancy, and severe anemia.
Reticulocyte Count in Ineffective Erythropoiesis
- In ineffective erythropoiesis, reticulocyte count may remain normal despite increased marrow activity.
- This suggests defective maturation and increased destruction of developing cells.
Reticulocyte Index
- Reticulocyte index is a corrected measure of erythropoietic activity.
- Reticulocyte percentage alone may be misleading in anemia.
- Absolute reticulocyte count is calculated as percentage multiplied by red cell count.
- The index adjusts reticulocyte percentage according to hematocrit.
- It provides a more accurate assessment of red cell production rate.
- Increased index indicates active erythropoiesis, while low values suggest reduced marrow response.
Important Questions
- Define erythropoiesis.
- Describe the stages of erythropoiesis.
- What are the sites of erythropoiesis during different stages of life?
- Differentiate between medullary and extramedullary erythropoiesis.
- Describe the sequential maturation of erythroid cells.
- How is erythropoiesis regulated?
- What is erythropoietin? Describe its source, mechanism of action, and physiological functions.
- Differentiate between a reticulocyte and a mature red blood cell.
- Describe the structure of a reticulocyte. What is the normal reticulocyte count?
- What are the causes of an increased and decreased reticulocyte count?
- What is the clinical significance of the reticulocyte response in anemia?
- What is effective erythropoiesis?
- What is the reticulocyte index? Discuss its clinical significance.
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