Respiratory System

Overview and Fundamental Steps of Respiration

Overview & Fundamental Steps of Respiration

Ventilation · Gas Exchange · Transport · Cellular Respiration

1. Overview and Fundamental Steps of Respiration

Respiration is the metabolic and mechanical process by which living organisms take in oxygen (Oâ‚‚) from the atmosphere to oxidize organic substrates (such as glucose) for cellular energy (ATP) production, and eliminate the metabolic waste product carbon dioxide (COâ‚‚).

The Respiratory Process (Atmosphere → Alveoli → Blood → Tissue → Mitochondria) ATMOSPHERIC AIR (O₂ High, CO₂ Low) 1 Pulmonary Ventilation (Breathing: Inspiration & Expiration) Physical movement of air into and out of the lungs 2 External (Pulmonary) Respiration (Alveoli ↔ Pulmonary Capillaries) Passive diffusion of O₂ and CO₂ across the respiratory membrane 3 Transport of Respiratory Gases (O₂ & CO₂ via Systemic Circulation) Oxygenated blood travels to tissues; CO₂ returns to the lungs 4 Internal (Tissue) Respiration (Systemic Capillaries ↔ Tissues) Exchange of O₂ and CO₂ via interstitial fluid diffusion 5 Cellular Respiration (Intracellular ATP Production) Enzymatic oxidation of substrates within cell mitochondria ATP + CO₂ + H₂O Cellular energy produced; waste returned to Step 3

Figure: The Five Sequential Steps of Respiration. Atmospheric air is drawn into the lungs by pulmonary ventilation, oxygen diffuses into pulmonary capillary blood while carbon dioxide diffuses out (external respiration), the gases are carried through the systemic circulation, oxygen and carbon dioxide are exchanged with tissue cells (internal respiration), and finally oxygen is consumed intracellularly during cellular respiration to generate ATP, releasing CO₂ and H₂O as byproducts that re-enter the transport cycle.

1.1 The Five Sequential Steps of Respiration

  • Step 1
    Pulmonary Ventilation
    (Breathing)

    The physical movement of air into (inspiration) and out of (expiration) the lungs to maintain alveolar gas composition.

  • Step 2
    External (Pulmonary) Respiration

    The passive diffusion of O₂ from alveolar air into pulmonary capillary blood, and CO₂ from pulmonary capillary blood into alveolar air across the respiratory membrane.

  • Step 3
    Transport of Respiratory Gases

    The systemic circulation of oxygenated blood from lungs to body tissues, and deoxygenated blood returning CO₂ from body tissues to the lungs.

  • Step 4
    Internal (Tissue) Respiration

    The exchange of O₂ and CO₂ between systemic capillary blood and surrounding tissue cells via interstitial fluid diffusion.

  • Step 5
    Cellular Respiration

    Intracellular enzymatic oxidation of metabolic substrates (e.g., glucose + 6 O₂ → 6 CO₂ + 6 H₂O + ATP) within cell mitochondria.

1.2 Gas Exchange: External vs. Internal Respiration

Although both external and internal respiration involve passive diffusion of O₂ and CO₂ down their concentration gradients, they occur at opposite ends of the transport pathway and move gases in opposite net directions relative to the blood.

EXTERNAL (PULMONARY) RESPIRATION (Alveoli ↔ Pulmonary Capillaries) ALVEOLUS O₂ High CO₂ Low PULMONARY CAPILLARY Deoxygenated blood arriving O₂ CO₂Blood becomes OXYGENATED CO₂ is exhaled from the alveoli INTERNAL (TISSUE) RESPIRATION (Systemic Capillaries ↔ Tissues) SYSTEMIC CAPILLARY Oxygenated blood arriving TISSUE CELLS O₂ Low CO₂ High O₂ CO₂Tissues receive O₂ CO₂ enters blood for return to lungs

Figure: Gas Exchange at the Lungs vs. at the Tissues. In external respiration, O₂ diffuses from the O₂-rich alveolar air into the CO₂-laden pulmonary capillary blood, while CO₂ diffuses the opposite way to be exhaled. In internal respiration, the now oxygenated systemic capillary blood releases O₂ into the metabolically active tissue cells, which in turn release CO₂ into the blood for transport back to the lungs.

1.3 Cellular Respiration: The Final Step

Cellular respiration is the intracellular endpoint of the entire process: within cell mitochondria, oxygen delivered by the blood is used to enzymatically oxidize metabolic substrates such as glucose, releasing chemical energy captured as ATP.

Cellular Respiration Equation Glucose (C₆H₁₂O₆) + 6 O₂ Cellular Respiration (Enzymatic Oxidation within Cell Mitochondria) substrate + O₂ → waste + energy 6 CO₂ + 6 H₂O (Metabolic Waste Products) + ATP (Cellular Energy) Powers active transport, synthesis & contractionWaste products (CO₂) re-enter the blood for transport back to the lungs (Step 3 → Step 2)

Figure: Cellular Respiration Reaction. Glucose and oxygen delivered by the transport system are oxidized within the mitochondria, yielding carbon dioxide, water, and ATP: glucose + 6 O₂ → 6 CO₂ + 6 H₂O + ATP. The CO₂ produced diffuses back into the blood, re-entering the transport cycle for elimination via external respiration.

2. Gross and Microscopic Anatomy of the Respiratory System

The human respiratory system comprises conducting airways and respiratory zones extending from the nasal cavity down to the terminal alveolar sacs.

Anatomy of the Respiratory Tract CONDUCTING ZONE RESPIRATORY ZONE Nasal Cavity / Nostrils (External Nares) Pharynx (Throat) Nasopharynx — air only Oropharynx — air + food Laryngopharynx (Hypopharynx) Larynx (Voice Box & Epiglottis) Trachea (Windpipe) [C-shaped cartilage rings] divides at T₅ / carina Primary (Main) Bronchi (Right & Left) Secondary (Lobar) Bronchi (3 Right, 2 Left) Tertiary (Segmental) Bronchi (Bronchopulmonary segments) Bronchioles (Non-cartilaginous, <1 mm diameter) Terminal Bronchioles (End of the Conducting Zone) ▼ RESPIRATORY ZONE BEGINS ▼ Respiratory Bronchioles (Individual outpocketing alveoli begin) Alveolar Ducts Alveolar Sacs → Alveoli Site of Gas Exchange

Figure: Anatomy of the Respiratory Tract. Air travels sequentially through the nasal cavity, the three regions of the pharynx, the larynx, and the trachea, then branches through the bronchial tree (primary → secondary → tertiary bronchi → bronchioles → terminal bronchioles) which together make up the conducting zone. Beyond the terminal bronchioles, the respiratory zone begins with respiratory bronchioles, alveolar ducts, and alveolar sacs, where individual alveoli serve as the site of gas exchange.

2.1 The Upper Respiratory Tract

  • Structure
    Nose & Nasal Cavity

    Air enters via paired external nares (nostrils). The lined nasal cavity warms, humidifies, and filters incoming air via pseudostratified ciliated columnar epithelium and mucus.

  • Structure
    Pharynx (Throat)

    A muscular funnel connecting nasal and oral cavities to the larynx and esophagus.

    • Nasopharynx: Posterior to nasal cavity; strictly an air passageway.
    • Oropharynx: Lies posterior to oral cavity; common pathway for both air and swallowed food/liquid.
    • Laryngopharynx (Hypopharynx): Inferior region opening into the larynx anteriorly and esophagus posteriorly.
  • Structure
    Larynx (Voice Box)

    Cartilaginous housing connecting pharynx to trachea.

    • Contains vocal cords (vocal folds) that vibrate during expiration to generate phonation.
    • Opening between vocal folds is termed the glottis.
    • Superior flap called the epiglottis (elastic cartilage) acts as a mechanical switch, leafing down during swallowing to seal off the larynx and prevent aspiration into the airways.
    • Composed of 9 pieces of cartilage (including thyroid cartilage, cricoid cartilage, and paired arytenoid cartilages).
Larynx Structure (Anterior View) Epiglottis (Elastic cartilage flap) Thyrohyoid Membrane Thyroid Cartilage (Adam's Apple) Cricothyroid Ligament Cricoid Cartilage (Complete ring) Tracheal Cartilages (C-shaped rings)

Figure: Larynx Structure (Anterior View). The epiglottis attaches via the thyrohyoid membrane to the thyroid cartilage (the largest laryngeal cartilage, forming the Adam's apple), which connects via the cricothyroid ligament to the cricoid cartilage — the only complete cartilaginous ring in the airway — which in turn continues inferiorly as the C-shaped tracheal cartilages.

2.2 The Lower Respiratory Tract & Bronchial Tree

  • Airway
    Trachea (Windpipe)

    Rigid tube extending downward and bifurcating at the level of the 5th thoracic vertebra (T₅) at the carina into right and left primary bronchi. Supported by incomplete C-shaped hyaline cartilaginous rings.

Bronchial Tree Architecture

  • Order 1
    Primary (Main) Bronchi

    Right (wider, shorter, more vertical) and Left primary bronchi enter respective lung hilum.

  • Order 2
    Secondary (Lobar) Bronchi

    Supply individual lung lobes (3 in right lung, 2 in left lung).

  • Order 3
    Tertiary (Segmental) Bronchi

    Supply distinct bronchopulmonary segments.

  • Order 4
    Bronchioles

    Tiny airways (<1 mm diameter) devoid of cartilage, supported by smooth muscle.

  • Order 5
    Terminal Bronchioles

    End of the conducting zone.

  • Order 6
    Respiratory Bronchioles

    Beginning of the respiratory zone, featuring individual outpocketing alveoli.

  • Order 7
    Alveolar Ducts & Sacs

    Clusters of grape-like thin-walled sacs called alveoli.

Alveolus and Capillary Microanatomy Branch of Pulmonary Artery (Deoxygenated Blood) Alveolar Capillary Alveolar Air Space Po₂ = 100 mmHg Pco₂ = 40 mmHg GAS EXCHANGE O₂ → capillary CO₂ ← capillary Pulmonary Vein Branch (Oxygenated Blood)

Figure: Alveolus and Capillary Microanatomy. Deoxygenated blood entering via a branch of the pulmonary artery surrounds the alveolus in a dense capillary network. Because alveolar Po₂ (≈100 mmHg) exceeds capillary Po₂, O₂ diffuses into the blood, while because capillary Pco₂ exceeds alveolar Pco₂ (≈40 mmHg), CO₂ diffuses into the alveolar air space to be exhaled. Freshly oxygenated blood then exits via a branch of the pulmonary vein.

2.3 Lung Gross Anatomy and Pleural Membranes

  • Organ
    Lungs

    Paired organs situated inside the thoracic cavity.

    • Right Lung: 3 lobes (Superior, Middle, Inferior), separated by horizontal and oblique fissures.
    • Left Lung: 2 lobes (Superior, Inferior), separated by an oblique fissure; features the cardiac notch.
  • Membrane
    Pleural Sac & Membranes
    • Visceral Pleura: Inner serous layer adhering directly to the lung outer surface.
    • Parietal Pleura: Outer serous layer lining the inner thoracic wall and superior diaphragm surface.
    • Pleural Cavity: Fluid-filled potential space between visceral and parietal pleurae containing lubricating intrapleural fluid. Prevents friction and maintains mechanical coupling between chest wall and lungs.
Thoracic Cavity and Pleural Cavity LUNG DIAPHRAGMRibcage / Chest Wall Parietal Pleura (Outer serous layer) Intrapleural Space (Serous fluid) Visceral Pleura (On lung surface) Lung

Figure: Thoracic Cavity and Pleural Cavity. The lung is directly covered by the visceral pleura; the parietal pleura lines the inner surface of the ribcage and diaphragm. Between these two serous layers lies the fluid-filled intrapleural space, whose lubricating fluid prevents friction and mechanically couples the lung to the chest wall so that lung volume changes as the chest wall moves during breathing.

2.4 Pulmonary Blood Supply

  • Circulation
    Pulmonary Circulation

    Pulmonary arteries carry deoxygenated blood from the right ventricle into lung capillary networks surrounding alveoli for gas exchange. Oxygenated blood leaves via 4 pulmonary veins to the left atrium.

  • Circulation
    Bronchial Circulation

    Systemic arterial branches (bronchial arteries) providing oxygenated blood to nourish the structural tissues of the lungs and airways.

3. Mechanics of Breathing (Pulmonary Ventilation)

Ventilation operates on Boyle's Law, which states that the pressure of a gas in a closed container is inversely proportional to the volume of the container at constant temperature.

P ∝ 1/V
Boyle's Law — at constant temperature
ΔP = Pintrapulmonary − Patmospheric
Pressure Gradient — the driving force for airflow into and out of the lungs
INSPIRATION (Active Process) Ribcage moves UP & OUTWARD Thoracic Volume INCREASES Intrapulmonary Pressure DROPS (758 mmHg) Air Flows IN (760 → 758 mmHg)Diaphragm contracts & flattens; external intercostals elevate ribs EXPIRATION (Quiet = Passive Process) Ribcage moves DOWN & INWARD Thoracic Volume DECREASES Intrapulmonary Pressure RISES (762 mmHg) Air Flows OUT (762 → 760 mmHg)Inspiratory muscles relax; elastic recoil of lungs & chest wall

Figure: Inspiration vs. Expiration. During inspiration, contraction of the diaphragm and external intercostals actively increases thoracic volume, dropping intrapulmonary pressure below atmospheric so air flows in. During quiet expiration, these muscles relax and elastic recoil passively decreases thoracic volume, raising intrapulmonary pressure above atmospheric so air flows out — both processes continue until intrapulmonary pressure re-equilibrates with atmospheric pressure (760 mmHg).

3.1 Pressures Involved in Ventilation

  • Pressure
    Atmospheric Pressure
    (Patm)

    Pressure exerted by ambient air (760 mmHg at sea level).

  • Pressure
    Intrapulmonary Pressure
    (Ppul, Intra-alveolar)

    Pressure inside the lung alveoli. Equilibrates to 760 mmHg between breaths.

    • Drops to 758 mmHg during inspiration.
    • Rises to 762 mmHg during expiration.
  • Pressure
    Intrapleural Pressure
    (Pip)

    Pressure within the pleural cavity. Always negative relative to Ppul (averages 756 mmHg at rest, i.e., −4 mmHg).

    • Drops further to 754 mmHg during inspiration as lungs stretch.
    • Returns to 756 mmHg during passive expiration.
  • Pressure
    Transpulmonary Pressure
    (Ppul − Pip)

    The transmural pressure gradient across the lung wall (760 − 756 = 4 mmHg) that prevents lung collapse.

Pressure Dynamics During Breathing (mmHg, not to physiological scale) 762 Intrapulmonary — Expiration 760 Atmospheric Pressure (reference) 758 Intrapulmonary — Inspiration 756 Intrapleural — Rest / Expiration 754 Intrapleural — Inspiration Transpulmonary Pressure = 4 mmHg (keeps lung inflated)

Figure: Pressure Dynamics During Breathing. Intrapulmonary pressure oscillates a few mmHg on either side of atmospheric pressure (760 mmHg), driving airflow in and out of the lungs. Intrapleural pressure remains persistently below both, tracking the same rise and fall but offset by roughly 4 mmHg — the transpulmonary pressure that keeps the lung expanded against its own elastic recoil.

3.2 Mechanism of Inspiration

  • Step 1
    Inspiratory Muscle Contraction
    • Diaphragm: Major muscle of quiet breathing (75% of volume change). Flattens downward upon contraction, increasing vertical thoracic dimensions.
    • External Intercostals: Elevate ribs and sternum upward and outward (bucket-handle and pump-handle mechanisms), expanding anteroposterior and lateral thoracic dimensions.
  • Step 2
    Thoracic Cavity Expansion

    Thoracic cavity volume expands → parietal and visceral pleurae pull outward → intrapulmonary volume increases.

  • Step 3
    Pressure Drop

    Intrapulmonary pressure drops below atmospheric pressure (758 mmHg).

  • Step 4
    Airflow In

    Air rushes down the pressure gradient into alveoli until Ppul = Patm (760 mmHg).

3.3 Mechanism of Expiration

  • Passive
    Quiet Expiration
    • Inspiratory muscles relax; diaphragm ascends into its dome shape.
    • Elastic recoil of lung tissue and chest wall decreases thoracic volume.
    • Intrapulmonary volume decreases → intrapulmonary pressure rises above atmospheric (762 mmHg).
    • Air flows out of lungs down the pressure gradient until Ppul = 760 mmHg.
  • Active
    Forced Expiration
    • Contraction of internal intercostals pulls ribcage down and inward.
    • Contraction of abdominal wall muscles forces abdominal viscera upward against the diaphragm, rapidly decreasing thoracic volume.

4. Respiratory Volumes, Capacities, and Spirometry

Lung volumes and capacities are measured using a spirometer, generating a visual tracking trace known as a spirogram.

Spirogram: Volumes & Capacities 6.0 5.0 3.0 2.5 1.2 0.0 Volume (L) Inspiratory Reserve Volume (IRV ≈ 3100 mL) Tidal Volume (TV ≈ 500 mL) Expiratory Reserve Volume (ERV ≈ 1100 mL) Residual Volume (RV ≈ 1200 mL)Time → Resting tidal breathing — maximal inspiration (IRV) — resting — maximal expiration (ERV) — resting

Figure: Spirogram of Lung Volumes. During quiet resting breathing the trace oscillates gently around the tidal volume band. A maximal forced inspiration recruits the inspiratory reserve volume, driving the trace to its peak, while a subsequent maximal forced expiration recruits the expiratory reserve volume, driving the trace to its trough. Residual volume, the air that can never be exhaled, is never seen directly on the trace but is inferred from the floor beneath the ERV excursion.

4.1 Respiratory Volumes

  • Volume
    Tidal Volume
    (TV)

    Volume of air inhaled or exhaled with each normal quiet breath (~500 mL).

    Minute Ventilation = 500 mL × 12–16 breaths/min = 6000–8000 mL/min
  • Volume
    Inspiratory Reserve Volume
    (IRV)

    Maximum volume of air that can be forcibly inhaled beyond normal tidal inspiration (~3100 mL in males, ~1900 mL in females).

  • Volume
    Expiratory Reserve Volume
    (ERV)

    Maximum volume of air that can be forcibly exhaled after a normal tidal expiration (~1000–1100 mL).

  • Volume
    Residual Volume
    (RV)

    Volume of air remaining in lungs even after maximal forced expiration (~1100–1200 mL). Keeps alveoli patent.

  • Volume
    Anatomic Dead Space

    Volume of conducting airways where no gas exchange occurs (~150 mL or ~30% of tidal volume).

    Alveolar Ventilation = (500 mL − 150 mL) × 12 breaths/min = 4200 mL/min

4.2 Respiratory Capacities

Each respiratory capacity is the sum of two or more respiratory volumes.

  • Capacity
    Inspiratory Capacity
    (IC)

    Total air volume inspired after normal tidal expiration.

    IC = TV + IRV = 500 + 3100 = 3600 mL
  • Capacity
    Expiratory Capacity
    (EC)

    Total air volume expired after normal tidal inspiration.

    EC = TV + ERV = 500 + 1100 = 1600 mL
  • Capacity
    Functional Residual Capacity
    (FRC)

    Air volume remaining in lungs after normal tidal expiration.

    FRC = ERV + RV = 1100 + 1200 = 2300 mL
  • Capacity
    Vital Capacity
    (VC)

    Maximum volume of air that can be forcibly expired after maximal forced inspiration.

    VC = TV + IRV + ERV = 500 + 3100 + 1100 = 4700 mL
  • Capacity
    Total Lung Capacity
    (TLC)

    Total volume of air accommodated in lungs after maximal inspiration.

    TLC = VC + RV = TV + IRV + ERV + RV = 5900–6000 mL
How Volumes Combine into Capacities IRV ≈3100 mL TV ≈500 mL ERV ≈1100 mL RV ≈1200 mL Expiratory Capacity (EC) TV + ERV ≈ 1600 mL Functional Residual Capacity (FRC) ERV + RV ≈ 2300 mL Inspiratory Capacity (IC) TV + IRV ≈ 3600 mL Vital Capacity (VC) TV + IRV + ERV ≈ 4700 mL Total Lung Capacity (TLC) VC + RV ≈ 5900–6000 mL

Figure: How Respiratory Volumes Combine into Capacities. The four primary volumes (IRV, TV, ERV, RV) stack to fill total lung capacity. Any two or more adjacent volumes summed together define a capacity: inspiratory capacity (TV+IRV), expiratory capacity (TV+ERV), functional residual capacity (ERV+RV), vital capacity (TV+IRV+ERV, everything that can be voluntarily moved), and total lung capacity (all four volumes combined).

5. Gas Laws and Mechanisms of Gas Exchange

Gas exchange across pulmonary and tissue capillary beds is governed by physical gas laws acting down partial pressure gradients.

Gas Laws Governing Respiration DALTON'S LAW Ptotal = P1 + P2 + P3 + ... + Pn Partial Pressure (Pgas) = % concentration × Ptotal HENRY'S LAW Dissolved Gas = Pgas × Solubility Constant (CO₂ solubility ≈ 20× higher than O₂ solubility)

Figure: The Two Gas Laws Governing Respiration. Dalton's Law determines how much of the total atmospheric pressure is contributed by each individual gas (its partial pressure), while Henry's Law determines how much of that gas actually dissolves into the blood or interstitial fluid, based on its partial pressure and its solubility in the liquid.

5.1 Dalton's Law of Partial Pressures

The total pressure exerted by a mixture of non-reactive gases is the sum of the partial pressures exerted by each individual gas.

Ptotal = PN₂ + PO₂ + PCO₂ + PH₂O
Dalton's Law of Partial Pressures

Calculation of atmospheric PO₂ at sea level (760 mmHg):

  • Gas
    Oxygen (O₂)

    Concentration = 21% (0.21)

    PO₂ = 0.21 × 760 mmHg = 159.6 mmHg ≈ 160 mmHg
  • Gas
    Nitrogen (N₂)

    Concentration = 78% (0.78)

    PN₂ = 0.78 × 760 mmHg = 592.8 mmHg ≈ 593 mmHg
  • Gas
    Carbon Dioxide (CO₂)

    Concentration = 0.04% (0.0004)

    PCO₂ = 0.0004 × 760 mmHg = 0.3 mmHg

5.2 Henry's Law

The quantity of gas that dissolves in a liquid is directly proportional to the partial pressure of that gas and its specific liquid solubility coefficient.

Dissolved Gas = Pgas × Solubility Constant
Henry's Law

CO₂ is roughly 20 times more soluble in plasma/water than O₂. Nitrogen has extremely low solubility.

Relative Gas Solubility in Plasma (illustrative, not to numeric scale)CO₂ ≈ 20× more soluble than O₂O₂ Baseline solubility (1×)N₂ Extremely low solubility

Figure: Relative Solubility of Respiratory Gases. Although alveolar air contains far more N₂ and O₂ than CO₂, CO₂'s much higher solubility in plasma allows it to dissolve and diffuse efficiently despite its low partial pressure, while N₂'s negligible solubility keeps it essentially inert during normal gas exchange.

Partial Pressure Gradients in the Body ALVEOLI Po₂ = 100 mmHg Pco₂ = 40 mmHg External Respiration PULMONARY CAPILLARIES Po₂ = 100 mmHg Pco₂ = 40 mmHg carried by systemic circulation SYSTEMIC ARTERIAL BLOOD Po₂ = 100 mmHg Pco₂ = 40 mmHg Internal Respiration SYSTEMIC TISSUES Po₂ < 40 mmHg Pco₂ > 46 mmHg returns via systemic circulation VENOUS BLOOD Po₂ = 40 mmHg Pco₂ = 46 mmHg Venous blood returns to lungs

Figure: Partial Pressure Gradients Through the Body. Alveolar Po₂ and Pco₂ equilibrate with pulmonary capillary blood during external respiration; that oxygenated blood is carried unchanged as systemic arterial blood to the tissues. During internal respiration, tissues (with lower Po₂ and higher Pco₂ from ongoing metabolism) exchange gases with the capillary blood, producing venous blood with Po₂ ≈ 40 mmHg and Pco₂ ≈ 46 mmHg, which then returns to the lungs to repeat the cycle.

5.3 Partial Pressures Summary Table

Summary of O₂ and CO₂ partial pressures (in mmHg) at each stage of the respiratory and circulatory pathway.

Location / SamplePO₂PCO₂
Atmospheric Air150–160 mmHg0.3 mmHg
Alveolar Air100 mmHg40 mmHg
Deoxygenated (Venous) Blood40 mmHg46 mmHg
Oxygenated (Systemic Arterial) Blood100 mmHg40 mmHg
Resting Tissue Cells40 mmHg46 mmHg

6. Transport of Oxygen in Blood

Oxygen is poorly soluble in water; 100 mL of blood plasma dissolves only 0.3 mL of O₂.

6.1 Oxygen Transport Forms

  • Form
    Dissolved in Plasma

    ≈1.5% of total oxygen.

  • Form
    Bound to Hemoglobin (Hb)

    ≈98.5% carried as oxyhemoglobin (HbO₂) inside Red Blood Cells (RBCs).

Hb + 4 O₂ ⇌ Hb(O₂)4
Forward (loading) in the lungs · Reverse (unloading) in the tissues

6.2 Structural Types of Human Hemoglobin

Hemoglobin is a tetrameric protein containing 4 globin polypeptide chains, each conjugated to an iron-containing (Fe2+) heme group.

Developmental StageGlobin Chain CompositionHemoglobin Type
Embryonic (<8 weeks)ξ2ε2Gower-I
Fetal (3–9 months)α2γ2HbF (High O₂ affinity)
Adult (Major, >97%)α2β2HbA1
Adult (Minor, 1.5–3%)α2δ2HbA2

6.3 Oxygen-Hemoglobin Dissociation Curve

A plot of percent hemoglobin saturation versus PO₂ yields a characteristic S-shaped (sigmoidal) curve due to cooperative binding — binding of the first O₂ molecule changes Hb conformation, increasing affinity for subsequent O₂ molecules.

Oxygen-Hemoglobin Dissociation Curve 0 20 40 60 80 100 % Hb Saturation0 40 80 100 PO₂ (mmHg) Alveolar Plateau (Pₒ₂=100, Sat=98%)Systemic Tissue Unloading (Pₒ₂=40, Sat=75%)

Figure: Oxygen-Hemoglobin Dissociation Curve. The sigmoidal shape reflects cooperative binding among the four heme sites. The flat alveolar plateau (Po₂ 80–100 mmHg) means hemoglobin stays well-saturated despite altitude-related drops in alveolar Po₂, while the steep middle portion (around Po₂ 40 mmHg, typical of resting tissue) allows large amounts of O₂ to be released for only a small drop in Po₂.

LEFT SHIFT (Increased Affinity) (Enhanced Loading) High pH (Alkalosis) Low Pco₂ Low Temperature Low 2,3-BPG Fetal Hb (HbF)RIGHT SHIFT (Decreased Affinity) (Enhanced Unloading) Low pH / Acidosis (Bohr Effect) High Pco₂ High Temperature High 2,3-BPG Exercise / High Altitude

Figure: Factors Shifting the Oxygen-Hemoglobin Dissociation Curve. A left shift increases hemoglobin's affinity for O₂, favoring loading in the lungs; a right shift decreases affinity, favoring unloading in metabolically active tissues.

6.4 Physiological Modulators of Affinity

  • Modulator
    The Bohr Effect
    (pH and PCO₂)

    Decreased blood pH (acidosis) or increased PCO₂ shifts the dissociation curve to the RIGHT. H⁺ ions bind globin chains, stabilizing the deoxygenated state and promoting O₂ unloading in active tissues.

  • Modulator
    2,3-Bisphosphoglycerate
    (2,3-BPG)

    An intermediate of RBC glycolysis. BPG binds deoxygenated β-chains, shifting the curve to the RIGHT to facilitate O₂ release.

  • Modulator
    Fetal Hemoglobin
    (HbF)

    γ-chains of HbF do not bind BPG efficiently. Consequently, HbF displays a LEFT-shifted curve compared to adult HbA, enabling oxygen transfer across the placenta from maternal to fetal blood.

7. Transport of Carbon Dioxide in Blood

Carbon dioxide is carried in arterial and venous blood via three distinct physiological mechanisms.

CO₂ Transport Mechanisms in BloodDissolved in Plasma 7%Carbaminohemoglobin 23% (Hb + CO₂ ↔ HbCO₂)Bicarbonate Ions 70% (via CA enzyme in RBCs)

Figure: Relative Proportions of CO₂ Transport Mechanisms. The majority of CO₂ is converted to bicarbonate ions inside red blood cells; smaller fractions bind directly to hemoglobin or remain physically dissolved in plasma.

7.1 Mechanisms of CO₂ Transport

  • ≈7%
    Dissolved in Plasma

    Physically dissolved gas carried in plasma solution.

  • ≈23%
    Carbamino Compounds

    CO₂ combines directly with terminal amino groups of globin proteins inside RBCs, forming carbaminohemoglobin (HbCO₂).

  • ≈70%
    Bicarbonate Ions
    (HCO₃⁻)

    CO₂ reacts with H₂O inside RBCs, catalyzed by the rapid enzyme Carbonic Anhydrase (CA).

CO₂ + H₂O ⇌ H₂CO₃ ⇌ H⁺ + HCO₃⁻
Forward (right) in tissues · Reverse (left) in lungs · catalyzed by Carbonic Anhydrase

7.2 The Chloride Shift (Hamburger Phenomenon)

At the systemic tissue level, as HCO₃⁻ accumulates rapidly inside RBCs, it exits down its concentration gradient into plasma via an anion exchange antiport protein (Band 3). To maintain electrical neutrality across the RBC membrane, chloride ions (Cl⁻) move from plasma into the RBC cytosol. This process reverses completely in pulmonary capillaries.

Chloride Shift at the Systemic Tissue Level TISSUE CELL CO₂ Produced CO₂ diffuses in RED BLOOD CELL (RBC) CO₂ + H₂O CA H₂CO₃ H⁺ + HCO₃⁻(forward in tissues • reverse in lungs) PLASMA (supplies Cl⁻) Cl⁻ enters RBC PLASMA (receives HCO₃⁻) HCO₃⁻ exits RBC

Figure: The Chloride Shift (Hamburger Phenomenon). Inside the RBC, CO₂ combines with H₂O (catalyzed by carbonic anhydrase) to form carbonic acid, which dissociates into H⁺ and HCO₃⁻. HCO₃⁻ exits the RBC into plasma via the Band 3 antiporter, while Cl⁻ simultaneously enters the RBC to preserve electrical neutrality. This exchange reverses in the pulmonary capillaries.

7.3 The Haldane Effect

The degree of CO₂ loading into blood is inversely dependent on the oxygenation state of hemoglobin. Deoxygenation of blood increases its capacity to carry CO₂ (and vice versa). In pulmonary capillaries, high O₂ loading promotes CO₂ displacement from Hb.

7.4 Summary Table of Key Respiratory Terminology

TermPhysiological Definition
EupneaNormal, quiet, unlabored breathing pattern (12–16 breaths/min).
ApneaTransient, temporary cessation of breathing.
DyspneaSubjective difficulty in breathing or shortness of breath.
AsphyxiaOxygen starvation leading to tissue hypoxia and hypercapnia.
CyanosisBluish discoloration of skin/mucous membranes due to excessive deoxygenated Hb (>5 g/dL).
HypercapniaAbnormally elevated carbon dioxide levels in arterial blood (PCO₂ > 45 mmHg).
HypocapniaAbnormally reduced carbon dioxide levels in arterial blood (PCO₂ < 35 mmHg).
HyperpneaIncreased rate and depth of breathing matching increased metabolic demand (e.g., exercise).
HypoxiaDeficiency of oxygen supply reaching tissue cells.

8. Neural and Chemical Control of Respiration

Breathing is an involuntary rhythmic process generated and coordinated by neurons in the brainstem, which set the basic rate and depth of ventilation and continuously adjust it in response to chemical signals from the blood and cerebrospinal fluid.

Brainstem Respiratory Control Centers (Pons & Medulla Oblongata) PONS (Fine-tunes rhythm & smooths the transition between breaths) PNEUMOTAXIC CENTER Inhibits inspiration & limits inspiratory duration APNEUSTIC CENTER Promotes deep, prolonged inspiration regulates MEDULLA OBLONGATA (Generates & sets the basic respiratory rhythm) DRG (Dorsal Respiratory Group) Inspiratory neurons; sets basic rhythm VRG (Ventral Respiratory Group) Inspiration & expiration during forced (active) breathing

Figure: Brainstem Respiratory Control Centers. The medulla oblongata contains the neurons that generate the basic breathing rhythm (DRG, VRG), while the pons refines and smooths the transition between inspiration and expiration (Pneumotaxic and Apneustic centers).

8.1 Medullary Respiratory Centers

  • Center
    Dorsal Respiratory Group (DRG)

    Contains primarily inspiratory neurons; generates the basic rhythm of quiet breathing by firing in a repeating cyclical pattern that drives the diaphragm and external intercostals.

  • Center
    Ventral Respiratory Group (VRG)

    Contains both inspiratory and expiratory neurons; largely inactive during quiet breathing but becomes active during forced (active) breathing, driving accessory muscles for both forced inspiration and forced expiration.

8.2 Pontine Respiratory Centers

  • Center
    Pneumotaxic Center

    Sends inhibitory signals to the DRG to limit inspiration, helping to fine-tune respiratory rate and prevent overinflation of the lungs; a stronger pneumotaxic signal produces faster, shallower breaths.

  • Center
    Apneustic Center

    Sends stimulatory signals that prolong inspiration and delay expiration, promoting deep, sustained inhalation; normally held in check by the pneumotaxic center.

8.3 Chemoreceptor Control Mechanisms

Chemoreceptors continuously monitor blood and cerebrospinal fluid chemistry and relay signals to the DRG, which adjusts the rate and depth of breathing to maintain homeostatic Po₂, Pco₂, and pH.

Chemoreceptor Feedback Loop CENTRAL CHEMORECEPTORS (Medulla oblongata surface) Primary stimulus: rising H⁺ in CSF (from CO₂ diffusing across the blood-brain barrier) Most powerful driver of ventilation PERIPHERAL CHEMORECEPTORS (Carotid & aortic bodies) Detect arterial Po₂, Pco₂, and pH directly in the blood Dominant response to hypoxia (low Po₂) DORSAL RESPIRATORY GROUP (DRG) Integrates chemoreceptor input ADJUST MINUTE VENTILATION (Rate & depth of breathing)

Figure: Chemoreceptor Feedback Loop. Central chemoreceptors respond primarily to CO₂-driven changes in CSF pH, while peripheral chemoreceptors respond directly to arterial Po₂, Pco₂, and pH; both converge on the DRG, which adjusts minute ventilation to restore homeostasis.

  • Receptor
    Central Chemoreceptors

    Located on the surface of the medulla oblongata; separated from arterial blood by the blood-brain barrier, which is freely permeable to CO₂ but not to H⁺ or HCO₃⁻.

    • CO₂ diffuses from blood into the CSF, where it combines with H₂O to form carbonic acid, which dissociates into H⁺ and HCO₃⁻.
    • Rising H⁺ directly stimulates the chemoreceptors, increasing ventilation.
    • This is the single most powerful drive for ventilation under normal physiological conditions.
  • Receptor
    Peripheral Chemoreceptors

    Located in the carotid bodies (at the carotid artery bifurcation) and aortic bodies (along the aortic arch); directly exposed to arterial blood.

    • Detect changes in arterial Po₂, Pco₂, and pH.
    • Become the dominant stimulus for ventilation when arterial Po₂ falls substantially (severe hypoxia, e.g., high altitude), since the central chemoreceptors cannot directly sense O₂ levels.
    • Also respond rapidly to acute changes in blood pH independent of CO₂ (e.g., metabolic acidosis).

9. Pathophysiology and Disorders of the Respiratory System

Disruption of normal ventilation, gas exchange, or airway patency underlies a wide range of clinically significant respiratory disorders, broadly grouped into obstructive diseases and infections of the respiratory tract.

Chronic Obstructive Pulmonary Disease (COPD) COPD Progressive, largely irreversible airflow limitation CHRONIC BRONCHITIS Inflammation & excess mucus production in the bronchi Productive cough on most days for ≥3 months, in ≥2 consecutive years Airway narrowing & obstruction EMPHYSEMA Destruction of alveolar walls & loss of elastic recoil Alveoli merge into fewer, larger, less efficient air spaces Reduced surface area for gas exchange

Figure: COPD Subtypes. COPD is an umbrella term encompassing chronic bronchitis (airway-centered inflammation and mucus obstruction) and emphysema (alveolar wall destruction and loss of elastic recoil); most patients show overlapping features of both.

9.1 Chronic Obstructive Pulmonary Disease (COPD)

  • Disorder
    Asthma

    Chronic inflammatory disorder causing reversible bronchospasm, bronchial hyperresponsiveness, and airway edema, often triggered by allergens, exercise, or irritants; presents with wheezing, coughing, and dyspnea during acute exacerbations.

  • Disorder
    Emphysema

    Irreversible destruction of alveolar walls and the pulmonary capillary bed, causing the fusion of adjacent alveoli into fewer, larger air spaces with markedly reduced surface area for gas exchange and loss of the elastic recoil needed to passively empty the lungs; strongly linked to cigarette smoking.

  • Disorder
    Chronic Bronchitis

    Persistent inflammation of the bronchi with excessive mucus production, defined clinically by a productive cough on most days for at least three months in at least two consecutive years; the excess mucus and airway swelling narrow the airway lumen and obstruct airflow.

9.2 Respiratory Infections

  • Infection
    Acute Bronchitis

    Short-term inflammation of the bronchial airways, most commonly caused by viral infection; produces cough (often productive), chest discomfort, and mild dyspnea that typically resolves within one to three weeks.

  • Infection
    Pneumonia

    Infection (bacterial, viral, or fungal) of the lung parenchyma causing inflammation and fluid or pus accumulation within the alveoli, which impairs gas exchange; presents with fever, productive cough, pleuritic chest pain, and dyspnea.

  • Infection
    Tuberculosis (TB)

    Chronic granulomatous infection caused by Mycobacterium tuberculosis, most often affecting the lungs; can remain latent for years before reactivating to cause progressive tissue destruction, cavitation, chronic cough, hemoptysis, weight loss, and night sweats.

In this lesson

Scroll to Top