
Immune System Course
Master the science that defends your body against every pathogen, cancer cell, and foreign threat. This comprehensive immunology course takes you from foundational cell biology through cutting-edge cancer immunotherapy and vaccine design. Whether you're advancing your medical career or deepening your scientific expertise, you'll gain the mechanistic knowledge that modern immunology demands.
What you will learn:
You will build a complete understanding of how the immune system detects, responds to, and remembers threats at the molecular, cellular, and tissue levels. The course covers innate and adaptive immunity, antigen presentation, T and B cell biology, immune regulation, and tolerance. You will also analyse immune dysfunction, including hypersensitivity, autoimmunity, and immunodeficiency disorders. Applied topics include vaccine design, monoclonal antibody therapeutics, and cancer immunotherapy. Supplementary content addresses mucosal immunity, neuroimmunology, and emerging research methods. By the end, you will connect core immunological principles directly to clinical and therapeutic applications.
How you study in practice Immune System Course
How you practise Immune System Course
For companies looking to train their team
With Dedika for businesses, the course includes exercises and examples tailored to your own business and the specific needs of your company.
Course content
8 Chapters • 40 LessonsDuration between 4 and 360 hours (you decide)
Chapter 1HideHide detailsSee detailsFoundations of the Immune System
Foundations of the Immune System
Lesson 1 • Key Molecules of the Immune System
Introduces cytokines, chemokines, antibodies, and complement as signalling tools. Provides molecular vocabulary needed for mechanistic discussions ahead.
Lesson 2 • Innate vs. Adaptive Immunity
Contrasts the two major branches by speed, specificity, and memory. Establishes the conceptual divide that structures the entire course.
Lesson 3 • Defining Immunity and Its Purpose
Introduces the biological concept of immunity and its survival value. Anchors all subsequent learning in the system's fundamental protective mission.
Lesson 4 • Major Cell Types of Immunity
Surveys leukocyte lineages and their core functions. Gives students a cellular vocabulary essential for understanding all immune mechanisms.
Lesson 5 • Anatomical Sites of Immune Activity
Maps primary and secondary lymphoid organs and their roles. Provides spatial understanding of where immune responses are generated and maintained.
Chapter 2HideHide detailsSee detailsInnate Immunity Mechanisms
Innate Immunity Mechanisms
Lesson 1 • Phagocytosis and Innate Killing
Details how neutrophils and macrophages engulf and destroy pathogens. Links cellular mechanics to pathogen clearance outcomes.
Lesson 2 • Physical and Chemical Barriers
Covers skin, mucous membranes, and secretions as the first line of defence. Establishes how barriers prevent pathogen entry before cellular responses activate.
Lesson 3 • Pattern Recognition Receptors
Explains how innate cells detect conserved microbial structures via PRRs. Connects molecular recognition to downstream inflammatory signalling.
Lesson 4 • Complement System Pathways
Covers classical, lectin, and alternative complement activation cascades. Demonstrates how complement amplifies innate killing and links to adaptive immunity.
Lesson 5 • The Inflammatory Response
Describes the cardinal signs, mediators, and resolution of acute inflammation. Shows how inflammation bridges innate detection to tissue repair and adaptive priming.
Chapter 3HideHide detailsSee detailsAntigen Presentation and Recognition
Antigen Presentation and Recognition
Lesson 1 • MHC Molecules and Their Diversity
Explains MHC class I and II structure, function, and genetic polymorphism. Provides the molecular basis for antigen presentation to T cells.
Lesson 2 • Dendritic Cells as Antigen Presenters
Focuses on dendritic cell subsets, maturation, and migration to lymph nodes. Highlights their central role in initiating adaptive immune responses.
Lesson 3 • Antigens and Immunogenicity
Defines antigens, epitopes, and factors determining immunogenicity. Establishes what makes a molecule recognisable by the adaptive immune system.
Lesson 4 • T Cell Receptor Recognition
Describes TCR structure, pMHC binding, and the immunological synapse. Links antigen presentation to the activation signal received by T cells.
Lesson 5 • Antigen Processing Pathways
Details endogenous and exogenous processing routes and cross-presentation. Connects intracellular protein degradation to peptide loading on MHC molecules.
Chapter 4HideHide detailsSee detailsT Cell Biology and Adaptive Immunity
T Cell Biology and Adaptive Immunity
Lesson 1 • T Cell Activation and Co-stimulation
Explains the two-signal model and downstream signalling cascades. Shows why both antigen recognition and co-stimulation are required for full activation.
Lesson 2 • CD8 Cytotoxic T Lymphocytes
Details CTL activation, killing mechanisms, and target cell recognition. Explains how CTLs eliminate virus-infected and tumour cells.
Lesson 3 • T Cell Development in the Thymus
Traces T cell maturation from progenitor to naive T cell through thymic selection. Establishes how the T cell repertoire is shaped for self-tolerance and reactivity.
Lesson 4 • T Cell Memory Formation
Describes effector-to-memory transition, memory subsets, and longevity. Explains the cellular basis for faster, stronger responses upon re-exposure.
Lesson 5 • CD4 T Helper Cell Subsets
Covers Th1, Th2, Th17, Tfh, and Treg differentiation and cytokine profiles. Connects subset identity to specific immune defence strategies.
Chapter 5HideHide detailsSee detailsB Cell Biology and Antibody Responses
B Cell Biology and Antibody Responses
Lesson 1 • B Cell Activation Pathways
Contrasts T-dependent and T-independent B cell activation routes. Shows how antigen type determines the nature and quality of the antibody response.
Lesson 2 • B Cell Development and Selection
Traces B cell maturation in bone marrow and peripheral tolerance checkpoints. Establishes how a diverse, self-tolerant B cell repertoire is generated.
Lesson 3 • Humoral Memory and Long-Lived Immunity
Covers memory B cell formation, long-lived plasma cells, and serum antibody persistence. Explains the cellular basis for durable humoral protection.
Lesson 4 • Antibody Structure and Function
Details immunoglobulin domains, isotypes, and effector mechanisms. Links antibody structure to neutralisation, opsonisation, and complement activation.
Lesson 5 • Germinal Centre Reactions
Explains somatic hypermutation, affinity maturation, and class switching in germinal centres. Connects these processes to high-affinity antibody production.
Chapter 6HideHide detailsSee detailsImmune Regulation and Tolerance
Immune Regulation and Tolerance
Lesson 1 • Immune Privilege and Tissue Tolerance
Examines sites with reduced immune surveillance and their protective mechanisms. Explains how immune privilege prevents damaging responses in sensitive tissues.
Lesson 2 • Regulatory T Cell Networks
Details Treg subsets, suppressive mechanisms, and tissue-specific roles. Connects Treg function to prevention of autoimmunity and inflammatory control.
Lesson 3 • Peripheral Tolerance Mechanisms
Explains anergy, ignorance, and regulatory suppression in peripheral tissues. Shows how escaped autoreactive cells are controlled outside primary organs.
Lesson 4 • Cytokine Networks in Regulation
Maps pro- and anti-inflammatory cytokine balances that govern immune intensity. Demonstrates how cytokine imbalance leads to pathological inflammation.
Lesson 5 • Central Tolerance Mechanisms
Covers clonal deletion and receptor editing in primary lymphoid organs. Establishes how autoreactive lymphocytes are eliminated before peripheral release.
Chapter 7HideHide detailsSee detailsImmune Dysfunction and Disease
Immune Dysfunction and Disease
Lesson 1 • Hypersensitivity Reactions
Classifies the four hypersensitivity types by mechanism and clinical presentation. Connects immune effector pathways to tissue damage in allergic and immune diseases.
Lesson 2 • Autoimmune Disease Mechanisms
Explains molecular mimicry, bystander activation, and epitope spreading in autoimmunity. Links tolerance breakdown to organ-specific and systemic autoimmune diseases.
Lesson 3 • Immune Evasion by Pathogens
Examines strategies viruses, bacteria, and parasites use to escape immune detection. Explains why some infections persist despite active immune responses.
Lesson 4 • Primary Immunodeficiency Disorders
Surveys genetic defects in innate and adaptive immunity and their clinical consequences. Demonstrates how specific component failures reveal immune system architecture.
Lesson 5 • Secondary Immunodeficiency
Covers acquired immune suppression from infection, malnutrition, and medical interventions. Connects external factors to compromised immune defence capacity.
Chapter 8HideHide detailsSee detailsApplied Immunology and Interventions
Applied Immunology and Interventions
Lesson 1 • Immunomodulation and Future Directions
Surveys emerging strategies including cytokine therapies, microbiome modulation, and precision immunology. Positions students to evaluate novel immune interventions critically.
Lesson 2 • Transplantation Immunology
Covers allorecognition, rejection mechanisms, and immunosuppressive protocols. Explains how immune responses to foreign tissue are managed clinically.
Lesson 3 • Monoclonal Antibodies as Therapeutics
Explains monoclonal antibody production, engineering, and clinical applications. Demonstrates how antibody specificity is harnessed to treat cancer and autoimmune disease.
Lesson 4 • Vaccine Principles and Design
Covers vaccine types, adjuvant mechanisms, and correlates of protection. Connects immunological memory concepts to vaccine-induced long-term immunity.
Lesson 5 • Immune Checkpoint and Cancer Immunotherapy
Details checkpoint blockade, CAR-T cell therapy, and tumour immunology principles. Connects immune evasion by tumours to strategies that restore anti-tumour immunity.
Your valid completion certificate
This course is for you:
Pre-med student: needs a rigorous immunology foundation before clinical training.
Registered nurse: wants deeper mechanistic context behind immune-related patient conditions.
Biomedical researcher: seeks structured immunology knowledge to support laboratory work.
Pharmacy graduate: aims to better understand biologics and immunotherapy drug classes.
Science educator: looks to update and deepen immunology content for teaching purposes.
Career changer entering biotech: needs credible immunology grounding for industry roles.
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