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Cell Biology Course
More than 2 million students worldwide

Cell Biology Course

Cell Biology Course gives you a rigorous, molecule-by-molecule understanding of how living cells are built, powered, and controlled. From membrane transport to gene expression and cancer biology, every major system is covered with precision and depth. This is the comprehensive foundation serious biology students and researchers need.

Dedika for Business

What you will learn:

You will master the structure and function of prokaryotic and eukaryotic cells, including major organelles and the cytoskeleton. You will work through cellular metabolism, covering glycolysis, the citric acid cycle, oxidative phosphorylation, and photosynthesis in detail. The course covers DNA replication, transcription, RNA processing, and translation, linking each step to protein function and gene regulation. You will examine cell cycle control, mitosis, meiosis, and how mutations in these pathways drive cancer. Cell signaling chapters cover GPCRs, receptor tyrosine kinases, and nuclear receptors with downstream effectors. Additional chapters introduce research techniques, stem cell biology, apoptosis, immunology, and bioinformatics tools used in modern cell biology laboratories.

How you study in practice Cell Biology Course

How you practise Cell Biology Course

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Course Content

8 Chapters • 39 LessonsDuration between 4 and 360 hours (you decide)

Chapter 1See details

Foundations of Cell Biology

  • Lesson 1 • Overview of Cellular Components

    Introduces the major structural categories: membrane, cytoplasm, nucleus, and organelles. Serves as a roadmap for detailed chapters ahead.

  • Lesson 2 • Prokaryotic vs. Eukaryotic Cells

    Contrasts structural and functional differences between prokaryotes and eukaryotes. Sets the stage for understanding organelle complexity in later chapters.

  • Lesson 3 • Cell Size, Shape, and Scale

    Examines how physical dimensions constrain cell function and surface-to-volume ratios. Builds quantitative intuition applied throughout the course.

  • Lesson 4 • History and Cell Theory

    Traces discovery of cells from early microscopy to modern cell theory. Provides historical context that anchors all subsequent biological reasoning.

Chapter 2See details

Biomolecules and Cellular Chemistry

  • Lesson 1 • Nucleic Acids and Information Flow

    Introduces DNA and RNA structure and the central dogma. Lays the molecular foundation for gene expression chapters.

  • Lesson 2 • Proteins: Structure and Function

    Covers amino acid chemistry and the four levels of protein structure. Protein function underpins enzyme, cytoskeleton, and signaling chapters.

  • Lesson 3 • Water, pH, and Cellular Environment

    Covers water's unique properties and pH regulation inside cells. Establishes the chemical context in which all cellular reactions occur.

  • Lesson 4 • Carbohydrates and Lipids

    Examines structure-function relationships in sugars, polysaccharides, fatty acids, and membrane lipids. Directly prepares students for membrane and metabolism chapters.

  • Lesson 5 • Enzymes and Reaction Kinetics

    Explains catalysis, active sites, and factors affecting enzyme activity. Directly enables understanding of metabolic pathways covered next.

Chapter 3See details

Membrane Structure and Transport

  • Lesson 1 • Active Transport Mechanisms

    Examines primary and secondary active transport requiring ATP or ion gradients. Builds on passive transport to explain how cells maintain electrochemical gradients.

  • Lesson 2 • Passive Transport Mechanisms

    Covers simple diffusion, facilitated diffusion, and osmosis without energy input. Establishes baseline transport concepts before active processes.

  • Lesson 3 • Vesicular Transport: Endo- and Exocytosis

    Describes bulk transport of large molecules via membrane-bound vesicles. Connects to organelle trafficking covered in the next chapter.

  • Lesson 4 • Fluid Mosaic Model

    Details phospholipid bilayer organization and membrane protein diversity. Provides the structural basis for all transport and signaling discussions.

  • Lesson 5 • Membrane Potential and Electrochemistry

    Introduces resting membrane potential and its physiological significance. Prepares students for signal transduction and excitable cell discussions.

Chapter 4See details

Organelles and Cellular Architecture

  • Lesson 1 • Mitochondria: Structure and Bioenergetics

    Details mitochondrial ultrastructure and its role in ATP production. Directly prepares students for the cellular respiration chapter.

  • Lesson 2 • Endomembrane System

    Traces protein and lipid flow through ER, Golgi, and vesicles. Integrates vesicular transport concepts from the membrane chapter.

  • Lesson 3 • Chloroplasts and Photosynthetic Organelles

    Examines thylakoid and stroma organization in chloroplasts. Provides structural context for photosynthesis reactions covered later.

  • Lesson 4 • The Nucleus and Genetic Control

    Covers nuclear envelope, chromatin organization, and nucleolus function. Establishes the nucleus as the command center for gene expression.

  • Lesson 5 • Cytoskeleton and Cell Shape

    Covers microfilaments, intermediate filaments, and microtubules as structural and dynamic elements. Connects to cell division and motility topics ahead.

Chapter 5See details

Cellular Energy and Metabolism

  • Lesson 1 • Photosynthesis: Light and Dark Reactions

    Covers light-dependent reactions and the Calvin cycle in chloroplasts. Completes the energy chapter by linking solar energy to organic carbon production.

  • Lesson 2 • Oxidative Phosphorylation and ATP Synthesis

    Explains the electron transport chain and chemiosmotic ATP synthesis. Integrates mitochondrial structure knowledge from the organelle chapter.

  • Lesson 3 • Pyruvate Oxidation and Citric Acid Cycle

    Covers pyruvate decarboxylation and the eight-step citric acid cycle. Connects glycolysis output to electron carrier generation for oxidative phosphorylation.

  • Lesson 4 • Bioenergetics and Thermodynamics

    Introduces free energy, ATP, and redox principles governing cellular reactions. Provides the thermodynamic framework for all metabolic pathway analysis.

  • Lesson 5 • Glycolysis and Fermentation

    Details the ten-step glycolytic pathway and anaerobic fermentation alternatives. Establishes the universal entry point into cellular energy metabolism.

Chapter 6See details

Gene Expression and Protein Synthesis

  • Lesson 1 • Gene Regulation in Eukaryotes

    Examines transcriptional, post-transcriptional, and epigenetic control mechanisms. Explains how identical genomes produce diverse cell types.

  • Lesson 2 • Translation and the Genetic Code

    Explains ribosome structure, codon-anticodon pairing, and the three phases of translation. Connects mRNA sequence to amino acid sequence in proteins.

  • Lesson 3 • Protein Targeting and Quality Control

    Covers signal sequences directing proteins to organelles and proteasomal degradation. Integrates endomembrane and organelle knowledge from earlier chapters.

  • Lesson 4 • Transcription and RNA Processing

    Covers RNA polymerase function, promoter recognition, and eukaryotic pre-mRNA processing. Bridges DNA information to translatable messenger RNA.

  • Lesson 5 • DNA Replication and Fidelity

    Details the replication machinery and proofreading mechanisms ensuring genomic accuracy. Provides the molecular basis for inheritance discussed in the cell cycle chapter.

Chapter 7See details

Cell Cycle, Division, and Reproduction

  • Lesson 1 • Cell Cycle Phases and Checkpoints

    Details G1, S, G2, and M phases and the checkpoint machinery controlling progression. Establishes the regulatory framework for all division discussions.

  • Lesson 2 • Mitosis: Stages and Mechanisms

    Traces chromosome condensation, spindle formation, and segregation through mitotic stages. Builds on cytoskeleton knowledge to explain spindle dynamics.

  • Lesson 3 • Cell Cycle Dysregulation and Cancer

    Examines how mutations in oncogenes and tumor suppressors drive uncontrolled proliferation. Applies cell cycle knowledge to understand cancer as a cellular disease.

  • Lesson 4 • Cytokinesis in Animal and Plant Cells

    Compares cleavage furrow and cell plate mechanisms of cytoplasmic division. Highlights how cytoskeletal differences drive divergent division strategies.

  • Lesson 5 • Meiosis and Genetic Diversity

    Covers the two meiotic divisions, crossing over, and independent assortment. Explains the molecular basis of genetic variation in sexually reproducing organisms.

Chapter 8See details

Cell Signaling and Communication

  • Lesson 1 • G Protein-Coupled Receptor Pathways

    Details GPCR activation, G protein cycling, and downstream effectors like adenylyl cyclase. Illustrates the most abundant receptor class in eukaryotic cells.

  • Lesson 2 • Cell Adhesion and Intercellular Junctions

    Covers cadherins, integrins, and junction types mediating cell-cell and cell-matrix communication. Integrates signaling with structural organization in tissues.

  • Lesson 3 • Principles of Cell Communication

    Introduces signaling modes, ligand-receptor specificity, and signal amplification logic. Provides the conceptual framework for all specific pathway discussions.

  • Lesson 4 • Nuclear Receptor and Steroid Signaling

    Examines lipid-soluble ligands that activate intracellular receptors acting as transcription factors. Demonstrates direct gene regulation by extracellular signals.

  • Lesson 5 • Receptor Tyrosine Kinase Pathways

    Covers RTK dimerization, autophosphorylation, and Ras-MAPK and PI3K-Akt cascades. Connects to cancer biology discussed in the cell cycle chapter.

Certification

Your valid completion certificate

This course is for you:

  • Undergraduate biology majors: building a rigorous cellular and molecular science foundation.

  • Pre-med students: needing deep mechanistic understanding before clinical coursework begins.

  • Graduate school applicants: strengthening their scientific background before entering research programs.

  • Biotech and pharma professionals: filling knowledge gaps to better understand laboratory workflows.

  • Science educators: refreshing and deepening content knowledge to teach cell biology confidently.

  • Curious science enthusiasts: ready to move beyond surface-level biology into real molecular detail.

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