Diagram of the human heart

Body Fluids and Circulation

Quick Summary: Body Fluids and Circulation covering Blood Components (Plasma & Formed Elements: RBCs, WBCs, Platelets), ABO & Rh Blood Grouping, Blood Clotting Mechanism (Factors I to XIII & Cascade Reaction), Lymph & Circulatory Pathways, Human Heart Anatomy & Histology, Cardiac Cycle, Heart Sounds (LUB & DUB), Nodal Conduction System, Electrocardiogram (ECG), Regulation of Cardiac Activity, Portal Systems, Blood Vessels, and Cardiovascular Disorders.

Body Fluids and Circulation

1. Blood Composition, RBCs & Leucocytes (WBCs)

Blood: Mesodermal origin, fibre-less fluid connective tissue. Slightly alkaline ($\text{pH} \approx 7.4$), heavier than water.

A. Plasma (55% Matrix) & Formed Elements (45%)

  • Plasma Composition: Pale yellow / straw-coloured fluid part. $90\text{–}92\%$ Water, $6\text{–}8\%$ Plasma Proteins.• Albumin: Most abundant; holds colloid water; maintains Blood Colloidal Osmotic Pressure (BCOP) and blood volume.

    Globulin: $\alpha, \beta$ transport lipids; $\gamma$-globulins act as Antibodies for body defence/immunity.

    Fibrinogen: Major clotting protein; prevents excess blood loss.

  • Serum: Plasma without clotting factors ($\text{Serum} = \text{Plasma} – \text{Fibrinogen}$).

B. RBCs (Erythrocytes)

  • Count: $5\text{–}5.5\text{ million/mm}^3$ of blood. Formed via Erythropoiesis in red bone marrow (induced by Erythropoietin hormone from kidney; requires Vit $B_{12}$, Folic acid, and Iron).
  • Structure & Lifespan: Biconcave, enucleated at maturity (lacks nucleus, mitochondria, and organelles to carry more Haemoglobin). Lifespan is 120 days. Survives anaerobically. Graveyard of RBC is the Spleen.
  • Haemoglobin ($Hb$): $12\text{–}16\text{ g / 100 mL}$ of blood.• Deficiency: Erythrocytopenia / Anaemia.

    Excess: Polycythemia (blood becomes viscous, reducing $O_2$ flow).

C. WBCs (Leucocytes) Classification

Normal Count: $6000\text{–}8000\text{ / mm}^3$. Low count = Leucopenia; High count = Leucocytosis (infection site); Extremely high = Leukaemia (blood cancer). Formation process = Leucopoiesis.

CategoryCell Type% Share & Key Features
Granulocytes
(Granular cytoplasm)
Neutrophil$60\text{–}65\%$ (Most abundant). Multilobed nucleus; PMNL (Polymorphonuclear leucocyte). Stained by both acidic/basic dyes. First line of defence via Phagocytosis.
Basophil$0.5\text{–}1\%$ (Least abundant). S-shaped nucleus; stained by basic dyes. Secretes Heparin (anticoagulant), Histamine, and Serotonin during inflammatory reactions.
Eosinophil$2\text{–}3\%$. Bilobed nucleus; stained by acidic dyes (Eosin). Resists infections, involved in allergic reactions, kills helminthic larvae.
Agranulocytes
(Agranular cytoplasm)
Monocyte$6\text{–}8\%$. Largest WBC with kidney/bean-shaped nucleus. Phagocytic in nature.
Lymphocyte$20\text{–}25\%$. Large round nucleus. B-lymphocytes (humoral immunity via antibody production) & T-lymphocytes (cell-mediated immunity).

2. Platelets, Blood Grouping & Coagulation Cascade

A. Platelets (Thrombocytes)

  • Non-cellular cell fragments produced from Megakaryocytes in bone marrow.
  • Count: $1.5\text{–}3.5\text{ lakh/mm}^3$. Lifespan: $7\text{–}8\text{ days}$. Low count = Thrombocytopenia (leads to bleeding disorders).
  • Function: Secretes platelet factors involved in blood clotting.

B. ABO & Rh Blood Grouping Systems

ABO blood type.svg

Blood GroupAntigen on RBCAntibody in PlasmaCompatible Donors
AAAnti-BA, O
BBAnti-AB, O
ABA, BNilAB, A, B, O (Universal Recipient)
ONilAnti-A, Anti-BO (Universal Donor)
ERYTHROBLASTOSIS FOETALIS (HDN): Occurs when an $Rh^-$ mother carries an $Rh^+$ fetus. During 1st delivery, fetal $Rh^+$ blood exposes the mother, forming anti-$Rh$ antibodies. In 2nd $Rh^+$ pregnancy, maternal anti-$Rh$ antibodies cross placenta and destroy fetal RBCs $\to$ Severe anaemia, jaundice, or death. Prevented by injecting anti-$Rh$ antibodies (RhOGAM) to the mother immediately after 1st delivery.

C. Blood Clotting Mechanism (Cascade Process)

Involves 13 clotting factors operating via Extrinsic and Intrinsic pathways:

Injury / Platelets $\to$ Release Thromboplastin (Factor III) $\to$ Forms Thrombokinase complex $\xrightarrow{Ca^{2+}}$ Inactive Prothrombin (Factor II) $\to$ Active Thrombin $\to$ Soluble Fibrinogen (Factor I) $\to$ Insoluble Fibrin mesh (Clot) (Stabilized by Factor XIII).

Vitamin K and $Ca^{2+}$ (Factor IV) are mandatory for clotting.


3. Lymph, Circulatory Pathways & Vertebrate Hearts

A. Lymph (Tissue Fluid)

  • Colourless fluid containing specialized lymphocytes. Acts as “Middleman of the body” for exchange of nutrients, gases, and hormones between blood and cells.
  • Fats are absorbed through Lacteals in intestinal villi via the lymphatic system.

B. Open vs. Closed Circulatory Systems

Body Fluids and Circulation

FeatureOpen Circulatory SystemClosed Circulatory System
Blood FlowBlood fills open body sinuses (Haemocoel).Blood flows within closed network of vessels.
Pressure & SpeedLow pressure, slow velocity.High pressure, high velocity (rapid exchange).
ExamplesArthropoda, Mollusca (except Cephalopods), Echinodermata.Annelids (Earthworm – 1st closed system), Cephalopod Molluscs, Vertebrates.

C. Evolution of Vertebrate Heart Structure

  • Fishes (2-Chambered): 1 Atrium + 1 Ventricle (plus accessory Sinus Venosus & Conus Arteriosus). Venous heart pumping deoxygenated blood only $\to$ Single Circulation.
  • Amphibians & Reptiles (3-Chambered): 2 Atria + 1 Ventricle. Mixed blood in ventricle $\to$ Incomplete Double Circulation. (Exception: Crocodiles have 4-chambered heart).
  • Birds & Mammals (4-Chambered): 2 Atria + 2 Ventricles. Completely separated oxygenated and deoxygenated blood $\to$ Double Circulation.

4. Human Heart Anatomy & Cardiac Cycle

Diagram of the human heart

A. Anatomy & Internal Chambers

  • Location & Size: Clenched fist-sized conical organ located in thoracic cavity inside mediastinum, slightly tilted left. Protected by double-walled Pericardium (outer fibrous, inner serous with pericardial fluid).
  • Heart Wall Histology (3 Layers): Outer Epicardium, Middle thick muscular Myocardium (cardiac muscle), Inner Endocardium (simple squamous).
  • Chambers & Valves:Right Atrium: Receives deoxygenated blood via Superior Vena Cava (upper body), Inferior Vena Cava (lower body – guarded by Eustachian valve), and Coronary Sinus (heart wall – guarded by Thebesian valve).

    Right Ventricle: Separated from RA by Tricuspid Valve (3 cusps). Pumps blood to lungs via Pulmonary Artery (guarded by Semilunar valve).

    Left Atrium: Receives oxygenated blood via 4 Pulmonary Veins (2 from each lung).

    Left Ventricle: Thickest muscular wall. Separated from LA by Bicuspid / Mitral Valve (2 cusps). Pumps blood to body via Aorta (guarded by Semilunar valve).

    Chordae Tendinae: White fibrous cords connecting valve cusps to Papillary muscles of ventricular wall to prevent backflow during systole.

B. Cardiac Cycle Phases (Duration: 0.8 Seconds at 72 bpm)

  • 1. Atrial Systole (0.1 sec): Both atria contract, pushing remaining 30% blood into ventricles. AV valves open.
  • 2. Ventricular Systole (0.3 sec): Ventricles contract.• Pressure rises $\to$ AV valves close $\to$ Produces First Heart Sound (LUB) (longer duration, lower pitch).

    • Pressure exceeds aorta/pulmonary artery $\to$ Semilunar valves open $\to$ Blood ejected.

  • 3. Joint Diastole (0.4 sec): All 4 chambers relax.• Ventricular pressure falls $\to$ Semilunar valves close $\to$ Produces Second Heart Sound (DUB) (shorter duration, higher pitch).

5. Nodal Tissue, Electrocardiogram (ECG) & Blood Pressure

A. Conducting System of Heart (Myogenic Heart)

Human heart generates auto-excitable action potentials through specialized nodal cardiac musculature:

SAN (Sino-Atrial Node – Pacemaker, 70–75/min) $\to$ AVN (Atrio-Ventricular Node – Pace-setter) $\to$ Bundle of His $\to$ Purkinje Fibres (Ventricular walls)

B. Electrocardiogram (ECG) Waves

Graphical representation of the electrical activity of the heart during a cardiac cycle (Discovered by Einthoven – Nobel Prize):

  • P Wave: Represents electrical excitation / Atrial Depolarization (leads to atrial contraction).
  • QRS Complex: Represents Ventricular Depolarization (initiates ventricular contraction). Counting QRS complexes in a given time period gives heart rate/pulse rate.
  • T Wave: Represents return of ventricles to relaxed state / Ventricular Repolarization. End of T wave marks end of systole.
  • Clinical Deviations: $ST$ segment elevation indicates Myocardial Infarction (Heart Attack); $ST$ depression indicates Ischemia.

C. Hemodynamic Volumes & Blood Pressure

  • Stroke Volume (SV): Volume of blood pumped out by each ventricle per beat ($\approx 70\text{ mL}$).$$\text{SV} = \text{End Diastolic Volume (120 mL)} – \text{End Systolic Volume (50 mL)} = 70\text{ mL}$$
  • Cardiac Output (CO): Volume of blood pumped by each ventricle per minute.$$\text{CO} = \text{Stroke Volume} \times \text{Heart Rate} = 70\text{ mL} \times 72\text{ bpm} \approx 5000\text{ mL (5 Litres/min)}$$
    (Can increase up to 30 L/min in athletes).
  • Blood Pressure (BP): Measured using Sphygmomanometer. Normal BP = $120 / 80\text{ mmHg}$ ($120\text{ mmHg}$ Systolic / $80\text{ mmHg}$ Diastolic).• Pulse Pressure: $\text{Systolic BP} – \text{Diastolic BP} = 120 – 80 = 40\text{ mmHg}$.

6. Regulation, Portal Systems, Blood Vessels & Disorders

A. Regulation of Cardiac Activity

  • Autonomic Nervous System (ANS): Neural centre in Medulla Oblongata.• Sympathetic Nervous System: Secretes Adrenaline/Noradrenaline $\to$ Increases heart rate, ventricular contraction force, and Cardiac Output.

    Parasympathetic Nervous System: Secretes Acetylcholine $\to$ Decreases heart rate and Cardiac Output to normal.

  • Hormonal Control: Adrenal medullary hormones (Adrenaline/Noradrenaline) increase cardiac output during stress/emergency.

B. Portal Circulation Systems

  • Hepatic Portal System: Deoxygenated blood from intestine/digestive tract is carried to the liver via Hepatic Portal Vein before reaching systemic circulation to process nutrients and toxins.
  • Hypophyseal Portal System: Carries blood from Hypothalamus to Anterior Pituitary gland.

C. Blood Vessels Structure (Artery vs. Vein)

FeatureArteryVein
Direction & BloodCarries oxygenated blood away from heart (except Pulmonary Artery).Carries deoxygenated blood toward heart (except Pulmonary Vein).
Wall LayersThick Tunica Media (smooth muscle & elastic fibers); narrow lumen.Thin Tunica Media, prominent Tunica Externa; wide lumen.
Valves & PressureNo valves; high pressure, jerky flow. Deep seated.Valves present (prevents backflow); low pressure. Superficial.

D. Cardiovascular Disorders

  • 1. Hypertension (High BP): Sustained BP $> 140/90\text{ mmHg}$. Damages vital organs like heart, kidneys, and brain.
  • 2. Coronary Artery Disease (CAD) / Atherosclerosis: Deposition of calcium, fat, cholesterol, and fibrous tissue in coronary arteries, narrowing lumen and reducing blood supply to heart muscle.
  • 3. Angina Pectoris: Acute chest pain when insufficient oxygen reaches heart muscles.
  • 4. Heart Attack (Myocardial Infarction): Sudden damage to heart muscle due to inadequate blood supply (ischemia).
  • 5. Heart Failure: State when heart fails to pump blood effectively enough to meet body needs (often called congestive heart failure due to lung congestion).
  • 6. Cardiac Arrest: Complete stoppage of heart beat.

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