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Physiologist Course
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Physiologist Course

Master the science of how the human body works at every level — from individual cells to integrated organ systems. This comprehensive Physiologist Course takes you through cardiovascular, respiratory, renal, endocrine, and neurophysiology with clinical depth and precision. Build the analytical skills that define a competent, confident physiologist.

Dedika for students

What your team will master:

You will develop a thorough understanding of human physiology across eight core systems, including neurophysiology, cardiovascular mechanics, respiratory gas exchange, renal fluid regulation, and endocrine signalling. You will learn to interpret clinical data such as blood gas panels, haemodynamic readings, and metabolic assessments. The course covers exercise and environmental physiology, pathophysiology of common disorders, pharmacological principles, and research methods. You will also build professional communication and interdisciplinary collaboration skills. Every topic connects foundational science directly to applied clinical and research practice.

How your team learns practically Physiologist Course

How your team practises Physiologist Course

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Course content

8 Chapters • 40 LessonsDuration between 4 and 360 hours (you decide)

Chapter 1See details

Foundations of Human Physiology

  • Lesson 1 • Introduction to Organ Systems

    Surveys all major organ systems and their primary functions in brief. Sets the roadmap for deeper study in subsequent chapters.

  • Lesson 2 • Homeostasis and Feedback Mechanisms

    Explains negative and positive feedback loops that regulate internal conditions. Provides the conceptual framework for understanding all regulatory physiology.

  • Lesson 3 • Tissue Types and Organization

    Identifies the four primary tissue types and their structural properties. Connects cellular biology to organ-level function.

  • Lesson 4 • Cell Structure and Function

    Covers organelle roles, membrane transport, and cellular metabolism as the building blocks of physiology. Anchors all subsequent organ-system content.

  • Lesson 5 • Body Fluid Compartments

    Describes intracellular and extracellular fluid volumes and their ionic compositions. Establishes baseline for fluid balance and renal physiology chapters.

Chapter 2See details

Neurophysiology and Sensory Systems

  • Lesson 1 • Synaptic Transmission

    Explains chemical and electrical synapses, neurotransmitter release, and receptor binding. Connects neural signalling to behaviour and pharmacology.

  • Lesson 2 • Sensory Transduction and Perception

    Covers mechanoreceptors, photoreceptors, chemoreceptors, and thermoreceptors and their transduction mechanisms. Links peripheral sensing to central interpretation.

  • Lesson 3 • Motor Control and Coordination

    Describes upper and lower motor neuron pathways, cerebellar coordination, and basal ganglia modulation. Completes the sensorimotor loop.

  • Lesson 4 • Central and Peripheral Nervous Systems

    Maps CNS and PNS divisions, their anatomical regions, and functional roles. Provides structural context for understanding neural control of organ systems.

  • Lesson 5 • Neuron Structure and Membrane Potentials

    Details neuron anatomy and the ionic basis of resting and action potentials. Builds on membrane transport concepts from Chapter 1.

Chapter 3See details

Cardiovascular Physiology

  • Lesson 1 • Vascular Physiology and Haemodynamics

    Applies Poiseuille's law and Laplace's law to blood flow and vessel wall tension. Connects vascular structure to resistance and flow distribution.

  • Lesson 2 • Coronary and Regional Circulation

    Describes blood flow regulation in coronary, cerebral, pulmonary, and skeletal muscle beds. Highlights autoregulation and metabolic vasodilation.

  • Lesson 3 • Cardiac Mechanics and the Cardiac Cycle

    Details systole, diastole, pressure-volume relationships, and cardiac output determinants. Provides quantitative tools for assessing heart performance.

  • Lesson 4 • Blood Pressure Regulation

    Integrates baroreceptor reflexes, renal mechanisms, and hormonal control of arterial pressure. Demonstrates multi-system coordination introduced in Chapter 1.

  • Lesson 5 • Cardiac Electrophysiology

    Examines pacemaker activity, conduction pathways, and the electrocardiogram. Builds on action potential concepts from Chapter 2.

Chapter 4See details

Respiratory Physiology

  • Lesson 1 • Pulmonary Mechanics and Ventilation

    Covers lung volumes, compliance, airway resistance, and the work of breathing. Establishes mechanical foundations for gas exchange analysis.

  • Lesson 2 • Acid-Base Physiology

    Applies Henderson-Hasselbalch principles to respiratory and metabolic acid-base disorders. Enables systematic blood gas interpretation.

  • Lesson 3 • Oxygen and Carbon Dioxide Transport

    Details haemoglobin binding kinetics, dissolved gas fractions, and CO2 carriage forms. Bridges gas exchange to tissue delivery.

  • Lesson 4 • Gas Exchange and Diffusion

    Applies Fick's law to alveolar-capillary O2 and CO2 transfer. Connects ventilation mechanics to blood gas composition.

  • Lesson 5 • Control of Breathing

    Explains brainstem respiratory centres, chemoreceptor inputs, and reflex modulation of ventilation. Integrates neural control from Chapter 2.

Chapter 5See details

Renal and Fluid Physiology

  • Lesson 1 • Electrolyte Regulation

    Details renal handling of sodium, potassium, calcium, and phosphate. Demonstrates how hormonal axes maintain electrolyte balance.

  • Lesson 2 • Urine Concentration and Dilution

    Explains the medullary osmotic gradient and ADH-dependent water reabsorption. Integrates hormonal control introduced in Chapter 1.

  • Lesson 3 • Tubular Reabsorption and Secretion

    Maps solute handling along proximal tubule, loop of Henle, and distal segments. Connects transport proteins to clinical electrolyte disorders.

  • Lesson 4 • Renal Contribution to Acid-Base Balance

    Covers bicarbonate reabsorption, titratable acid excretion, and ammonium production. Complements respiratory acid-base content from Chapter 4.

  • Lesson 5 • Glomerular Filtration and Renal Blood Flow

    Quantifies GFR, filtration fraction, and autoregulation of renal perfusion. Builds on cardiovascular haemodynamics from Chapter 3.

Chapter 6See details

Endocrine and Metabolic Physiology

  • Lesson 1 • Glucose Homeostasis and Pancreatic Hormones

    Details insulin and glucagon secretion, receptor signalling, and metabolic effects on liver, muscle, and adipose. Anchors metabolic physiology content.

  • Lesson 2 • Hypothalamic-Pituitary Axes

    Maps releasing hormones, tropic hormones, and target-organ feedback for each major axis. Demonstrates hierarchical endocrine control.

  • Lesson 3 • Calcium, Bone, and Mineral Metabolism

    Integrates PTH, calcitonin, and vitamin D in calcium and phosphate regulation. Builds on renal electrolyte content from Chapter 5.

  • Lesson 4 • Principles of Hormone Action

    Classifies hormones by chemical nature, receptor type, and signal transduction pathway. Provides the mechanistic framework for all endocrine content.

  • Lesson 5 • Thyroid and Adrenal Physiology

    Covers thyroid hormone synthesis, metabolic effects, and adrenal cortex and medulla secretions. Connects to cardiovascular and stress-response physiology.

Chapter 7See details

Exercise and Environmental Physiology

  • Lesson 1 • Metabolic Responses to Exercise

    Quantifies energy substrate utilisation across exercise intensities and durations. Builds on metabolic physiology from Chapter 6.

  • Lesson 2 • Cardiovascular and Respiratory Adaptations

    Describes acute cardiac output increases, ventilatory drive, and oxygen delivery during exercise. Integrates Chapters 3 and 4 content.

  • Lesson 3 • Training Adaptations and Detraining

    Quantifies cardiac, skeletal muscle, and metabolic adaptations to endurance and resistance training. Addresses reversibility of adaptations.

  • Lesson 4 • Altitude and Hypoxic Physiology

    Covers acute hypoxic ventilatory response, erythropoietic adaptation, and chronic acclimatisation. Applies respiratory and haematologic physiology.

  • Lesson 5 • Thermoregulation During Exercise

    Explains heat production, cutaneous vasodilation, sweating, and core temperature defence. Connects autonomic control from Chapter 2.

Chapter 8See details

Integrative and Clinical Physiology

  • Lesson 1 • Neuroendocrine Stress Response

    Traces the integrated HPA axis, sympathoadrenal, and cytokine responses to physiological stress. Synthesises Chapters 2 and 6.

  • Lesson 2 • Cardiovascular-Renal Integration

    Analyses how heart failure triggers renal sodium retention and volume expansion. Integrates Chapters 3 and 5 in a clinical context.

  • Lesson 3 • Respiratory-Metabolic Interactions

    Examines how metabolic disorders alter ventilatory drive and how lung disease disrupts metabolism. Bridges Chapters 4 and 6.

  • Lesson 4 • Physiological Responses to Haemorrhage

    Applies cardiovascular, renal, and endocrine physiology to staged haemorrhagic shock. Demonstrates compensatory and decompensatory phases.

  • Lesson 5 • Physiological Assessment and Data Interpretation

    Develops systematic approaches to interpreting haemodynamic, blood gas, and metabolic data sets. Prepares students for applied clinical and research roles.

Certification

Your valid completion certificate

This course is for you:

  • Nursing professional: seeking deeper physiological reasoning behind clinical decisions daily.

  • Exercise science graduate: ready to move beyond fitness basics into applied human physiology.

  • Pre-med student: building the mechanistic foundation required for medical school success.

  • Paramedic or EMT: wanting to understand the science behind the emergencies they manage.

  • Career changer from biology: transitioning into health sciences with a structured physiology foundation.

  • Sports coach or trainer: aiming to apply evidence-based physiological principles to athlete performance.

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