
Basic Electrophoresis Course
Master the science and practice of electrophoresis from foundational principles to advanced techniques. This course covers gel preparation, protein and nucleic acid separation, capillary electrophoresis, and data interpretation — giving you the hands-on knowledge to produce reliable, publication-quality results every time.
What you'll learn:
Understand the physical and chemical principles that drive ionic separation in electric fields.
Select and prepare agarose and polyacrylamide gel matrices appropriate for target molecule size ranges.
Execute complete SDS-PAGE, native PAGE, and isoelectric focusing workflows with confidence and precision.
Interpret gel images, quantify band intensities, and identify common artefacts and their root causes.
Apply laboratory safety protocols and good laboratory practice standards to every electrophoresis procedure.
Evaluate emerging platforms, including capillary electrophoresis and chip-based systems, for research and diagnostic applications.
How you study in practice Basic Electrophoresis Course
How you practise Basic Electrophoresis Course
For businesses looking to train their team
With Dedika for businesses, the course includes exercises and examples tailored to your own business and the way your company needs.
Course content
8 Chapters • 40 LessonsDuration between 4 and 360 hours (you decide)
Chapter 1HideHide detailsSee detailsFoundations of Electrophoresis Science
Foundations of Electrophoresis Science
Lesson 1 • Historical Development of Electrophoresis
Traces key milestones from Tiselius moving-boundary work to modern gel systems. Provides context for understanding current technique diversity.
Lesson 2 • Electricity and Ionic Movement
Covers charge, voltage, current, and resistance as they apply to ions in solution. Connects Ohm's law to practical electrophoresis setup.
Lesson 3 • Buffers and pH Control
Teaches buffer selection, ionic strength, and pH stability during a run. Proper buffering is essential for reproducible separations.
Lesson 4 • Separation Driving Forces
Defines electrophoretic mobility and the forces opposing migration. Establishes the theoretical basis for band resolution.
Lesson 5 • Molecular Charge and Migration
Explains how pH, pKa, and net charge determine molecular mobility. Links molecular properties to separation outcomes.
Chapter 2HideHide detailsSee detailsGel Matrices and Their Properties
Gel Matrices and Their Properties
Lesson 1 • Matrix Selection Criteria
Guides decisions between agarose and polyacrylamide based on molecule type and size. Reinforces the link between matrix choice and experimental goals.
Lesson 2 • Gel Preparation Techniques
Provides step-by-step protocols for casting both gel types safely and reproducibly. Emphasises degassing, levelling, and comb placement.
Lesson 3 • Gel Quality Assessment
Teaches visual and functional checks for gel integrity before loading samples. Poor gel quality is a leading cause of failed separations.
Lesson 4 • Agarose Gel Fundamentals
Describes agarose polymer structure, pore size, and concentration effects. Connects gel percentage to the size range of molecules resolved.
Lesson 5 • Polyacrylamide Gel Fundamentals
Covers acrylamide and bis-acrylamide crosslinking, per cent T, and per cent C. Explains how crosslink density controls pore size and resolution.
Chapter 3HideHide detailsSee detailsAgarose Gel Electrophoresis of Nucleic Acids
Agarose Gel Electrophoresis of Nucleic Acids
Lesson 1 • Running Conditions and Parameters
Defines voltage, run time, and buffer selection for nucleic acid gels. Optimising these parameters balances speed against resolution.
Lesson 2 • Troubleshooting Nucleic Acid Gels
Identifies causes of smearing, missing bands, and lane distortion. Systematic diagnosis prevents repeated experimental failures.
Lesson 3 • Sample Preparation for Nucleic Acids
Covers DNA and RNA quantification, purity assessment, and loading buffer composition. Proper sample prep prevents smearing and lane distortion.
Lesson 4 • Staining and Visualisation Methods
Compares ethidium bromide, SYBR Safe, and other intercalating dyes for nucleic acid detection. Addresses sensitivity, safety, and imaging requirements.
Lesson 5 • DNA Ladders and Size Standards
Explains the role of molecular weight markers in size estimation. Students learn to select appropriate ladders and interpret band positions.
Chapter 4HideHide detailsSee detailsSDS-PAGE for Protein Separation
SDS-PAGE for Protein Separation
Lesson 1 • Molecular Weight Estimation
Teaches construction of standard curves from protein ladders to estimate unknown molecular weights. Accurate estimation requires proper ladder selection.
Lesson 2 • Gel System Design and Casting
Covers stacking and resolving gel composition, pH differences, and discontinuous buffer systems. Proper design sharpens band entry and resolution.
Lesson 3 • Protein Sample Preparation
Details lysis methods, protein quantification, and sample buffer preparation for SDS-PAGE. Consistent sample prep is critical for reproducible band patterns.
Lesson 4 • Running and Staining SDS-PAGE Gels
Provides protocols for electrophoresis conditions, Coomassie staining, and silver staining. Stain choice depends on sensitivity and downstream use.
Lesson 5 • SDS Denaturation Principles
Explains how SDS binds proteins, imparts uniform negative charge, and unfolds secondary structure. This denaturation enables size-based separation.
Chapter 5HideHide detailsSee detailsNative PAGE and Non-Denaturing Systems
Native PAGE and Non-Denaturing Systems
Lesson 1 • Activity Staining After Native PAGE
Covers in-gel enzyme activity assays to identify functional proteins after native separation. Links band position to enzymatic function.
Lesson 2 • Blue Native PAGE Technique
Introduces Coomassie G-250 as a charge-shift agent in blue native PAGE for membrane proteins. This technique resolves protein complexes while maintaining native interactions.
Lesson 3 • Buffer and pH Selection for Native Gels
Guides pH and buffer choice to maintain protein charge and stability during native runs. Buffer conditions directly affect migration direction and band sharpness.
Lesson 4 • Principles of Native Electrophoresis
Contrasts native PAGE with SDS-PAGE, emphasising that separation depends on charge, size, and shape. Establishes when native conditions are required.
Lesson 5 • Interpreting Native PAGE Results
Addresses band pattern analysis, oligomeric state determination, and complex identification. Correct interpretation requires understanding all factors affecting mobility.
Chapter 6HideHide detailsSee detailsIsoelectric Focusing and 2D Electrophoresis
Isoelectric Focusing and 2D Electrophoresis
Lesson 1 • IPG Strip Rehydration and Loading
Details rehydration protocols, sample loading methods, and cup loading versus in-gel rehydration. Correct loading maximises protein entry and resolution.
Lesson 2 • Isoelectric Focusing Principles
Explains how proteins migrate to their isoelectric point in a pH gradient. IEF provides the first dimension of 2D electrophoresis.
Lesson 3 • IEF Running Conditions
Covers voltage ramping protocols, total volt-hours, and temperature control for IEF. Proper running conditions prevent protein precipitation at the pI.
Lesson 4 • 2D Gel Staining and Image Analysis
Covers fluorescent and colloidal staining for 2D gels and software-based spot detection. Quantitative analysis requires consistent staining and calibrated imaging.
Lesson 5 • Second Dimension SDS-PAGE
Describes IPG strip equilibration, transfer to SDS-PAGE gel, and sealing with agarose. This step separates proteins by molecular weight after IEF.
Chapter 7HideHide detailsSee detailsCapillary Electrophoresis Principles and Practice
Capillary Electrophoresis Principles and Practice
Lesson 1 • Capillary Types and Coatings
Compares bare fused-silica, coated, and gel-filled capillaries for different analytes. Capillary selection determines EOF control and analyte interaction.
Lesson 2 • Detection Systems in CE
Covers UV absorbance, laser-induced fluorescence, and mass spectrometry detection for CE. Detector choice governs sensitivity and analyte identification capability.
Lesson 3 • CE Method Development and Optimisation
Guides buffer selection, voltage, and temperature optimisation for CE separations. Systematic method development reduces run time while maintaining resolution.
Lesson 4 • Capillary Electrophoresis Fundamentals
Introduces CE instrumentation, electroosmotic flow, and separation modes. CE offers higher resolution and automation compared to slab gel formats.
Lesson 5 • Sample Injection Methods
Explains hydrodynamic and electrokinetic injection, their biases, and quantitative implications. Injection method affects sensitivity and reproducibility.
Chapter 8HideHide detailsSee detailsData Interpretation and Quality Control
Data Interpretation and Quality Control
Lesson 1 • Documentation and Data Integrity
Establishes standards for image capture, file formats, and laboratory notebook records. Proper documentation supports reproducibility and regulatory compliance.
Lesson 2 • Statistical Analysis of Gel Data
Applies descriptive statistics, replicate analysis, and significance testing to electrophoresis results. Statistical rigour distinguishes real differences from experimental noise.
Lesson 3 • Quantitative Band and Spot Analysis
Teaches densitometry, lane normalisation, and background subtraction for gel images. Accurate quantification requires calibrated imaging and consistent protocols.
Lesson 4 • Common Artefacts and Their Causes
Catalogues gel artefacts including ghosting, satellite bands, and uneven migration. Recognising artefacts prevents misinterpretation of results.
Lesson 5 • Controls and Standards in Electrophoresis
Defines positive controls, negative controls, and internal standards for each gel type. Controls are mandatory for valid interpretation of experimental results.
Your valid completion certificate
This course is for you:
Undergraduate biology student: needs to understand electrophoresis before entering a research lab.
Laboratory technician: runs gel protocols daily but lacks formal training in the theory.
Biotech quality control analyst: must apply GLP standards to electrophoresis-based testing workflows.
Graduate student switching fields: needs a reliable reference before tackling protein separation projects.
Science educator: wants accurate, current content to teach electrophoresis concepts more confidently.
Career changer entering life sciences: building foundational wet-lab knowledge for a new role.
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