
Bio Technology Course
Master the full spectrum of modern biotechnology, from molecular biology fundamentals and CRISPR gene editing to bioprocess engineering and regulatory affairs. This course gives you the technical depth and practical skills the biotech industry demands. Whether you're entering the field or advancing your career, this is the training that gets you there.
What you will learn:
You will build a strong foundation in molecular biology, genetics, and biochemistry before advancing into recombinant DNA technology, CRISPR-based genome editing, and next-generation sequencing. You will learn to design and operate bioreactors, engineer proteins through directed evolution, and analyze genomic and proteomic data using industry-standard bioinformatics tools. The course also covers biopharmaceutical product development, GMP compliance, and regulatory submission strategy. Supplementary modules introduce synthetic biology, agricultural biotechnology, bioethics, and emerging technologies including AI-driven drug discovery and organ-on-a-chip systems. You will finish with the technical knowledge and professional skills needed to contribute immediately in a biotechnology setting.
How you study in practice Bio Technology Course
How you practice Bio Technology Course
For companies that want to train their team
With Dedika for Business, 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 Biotechnology
Foundations of Biotechnology
Lesson 1 • History and Scope of Biotechnology
Traces biotechnology from ancient fermentation to modern genomics. Contextualizes the field's breadth and sets expectations for the course.
Lesson 2 • Cell Biology Essentials
Reviews prokaryotic and eukaryotic cell structure relevant to biotech applications. Provides the cellular context for gene expression and protein production.
Lesson 3 • Biochemistry for Biotechnologists
Introduces proteins, enzymes, carbohydrates, and lipids as functional molecules. Enzyme kinetics and reaction conditions directly inform bioprocess design.
Lesson 4 • Molecular Biology Core Concepts
Covers DNA structure, replication, transcription, and translation. These processes are the mechanistic basis for all genetic engineering techniques.
Lesson 5 • Genetics and Heredity Principles
Explains Mendelian and molecular genetics, mutation types, and inheritance patterns. Foundational for understanding genetic modification and trait selection.
Chapter 2HideHide detailsSee detailsLaboratory Skills and Safety
Laboratory Skills and Safety
Lesson 1 • Microscopy and Imaging Techniques
Introduces light, fluorescence, and electron microscopy for biological visualization. Imaging skills support cell culture, microbiology, and quality control work.
Lesson 2 • Measurement and Instrumentation
Trains accurate use of balances, pipettes, spectrophotometers, and centrifuges. Precision measurement underpins reproducible experimental results.
Lesson 3 • Laboratory Safety and Compliance
Covers biosafety levels, hazard classification, and personal protective equipment. Compliance with safety standards is mandatory before any practical work begins.
Lesson 4 • Documentation and Lab Notebooks
Establishes standards for recording experiments, data integrity, and electronic records. Proper documentation supports reproducibility and regulatory compliance.
Lesson 5 • Sterile Technique and Aseptic Practice
Teaches contamination prevention through aseptic technique in cell and microbial work. Sterility is critical for valid results and product safety.
Chapter 3HideHide detailsSee detailsRecombinant DNA Technology
Recombinant DNA Technology
Lesson 1 • Gene Expression Systems
Compares bacterial, yeast, insect, and mammalian expression systems for recombinant proteins. System selection balances yield, post-translational modification, and cost.
Lesson 2 • Construct Verification Methods
Applies sequencing, restriction mapping, and Southern blotting to confirm insert identity. Verification prevents downstream failures caused by incorrect constructs.
Lesson 3 • Vectors and Cloning Strategies
Covers plasmid, viral, and artificial chromosome vectors and their selection criteria. Vector choice determines insert capacity, host compatibility, and expression level.
Lesson 4 • Restriction Enzymes and DNA Cutting
Explains restriction enzyme recognition, cutting patterns, and selection criteria. Restriction digestion is the entry point for assembling recombinant constructs.
Lesson 5 • Ligation and Transformation
Teaches DNA ligation chemistry, transformation methods, and colony screening. These steps complete the cloning cycle and yield recombinant clones for analysis.
Chapter 4HideHide detailsSee detailsGenetic Engineering and Gene Editing
Genetic Engineering and Gene Editing
Lesson 1 • Homology-Directed Repair and Base Editing
Applies HDR templates and base editors for precise sequence changes without double-strand breaks. These approaches expand the precision and safety of genome editing.
Lesson 2 • Editing Validation and Off-Target Analysis
Uses T7E1 assay, amplicon sequencing, and whole-genome sequencing to confirm edits. Rigorous validation is required before edited cells are used in research or therapy.
Lesson 3 • CRISPR-Cas9 Mechanism and Design
Explains Cas9 nuclease function, guide RNA design, and PAM sequence requirements. Mechanistic understanding is essential for designing efficient and specific edits.
Lesson 4 • Transgenic Organisms and Applications
Covers production of transgenic plants, animals, and microbes for research and commercial use. Regulatory and ethical considerations accompany each application area.
Lesson 5 • Delivery Systems for Gene Editing
Compares viral, lipid nanoparticle, and electroporation delivery of editing components. Delivery efficiency and cell viability determine editing success in each system.
Chapter 5HideHide detailsSee detailsGenomics and Sequencing Technologies
Genomics and Sequencing Technologies
Lesson 1 • Variant Calling and Analysis
Identifies SNPs, indels, and structural variants from sequencing data. Variant analysis links genotype to phenotype in research and diagnostic contexts.
Lesson 2 • Genome Assembly and Annotation
Teaches de novo and reference-guided assembly, scaffolding, and gene annotation pipelines. Accurate assembly is prerequisite to functional genomic interpretation.
Lesson 3 • Transcriptomics and RNA Sequencing
Applies RNA-seq to measure gene expression, alternative splicing, and non-coding RNAs. Transcriptomic data reveals cellular responses to conditions and treatments.
Lesson 4 • Comparative and Functional Genomics
Uses synteny, ortholog mapping, and genome-wide association to infer gene function. Comparative approaches accelerate discovery across species and populations.
Lesson 5 • Next-Generation Sequencing Platforms
Compares short-read and long-read sequencing chemistries, throughput, and error profiles. Platform selection drives downstream analysis strategy and cost.
Chapter 6HideHide detailsSee detailsProtein Engineering and Proteomics
Protein Engineering and Proteomics
Lesson 1 • Rational Protein Design
Applies computational modeling and site-directed mutagenesis to improve protein properties. Rational design targets specific residues to alter stability, binding, or catalysis.
Lesson 2 • Protein Structure and Function
Reviews primary through quaternary structure and structure-function relationships. Structural understanding guides rational design and mutation strategies.
Lesson 3 • Proteomics and Mass Spectrometry
Applies 2D gel electrophoresis and mass spectrometry to identify and quantify proteomes. Proteomics reveals protein expression changes under different biological conditions.
Lesson 4 • Directed Evolution Techniques
Uses random mutagenesis and high-throughput screening to evolve proteins with desired traits. Directed evolution bypasses the need for complete structural knowledge.
Lesson 5 • Protein Purification Methods
Covers affinity, ion exchange, and size exclusion chromatography for protein isolation. Purity and yield directly affect downstream characterization and product quality.
Chapter 7HideHide detailsSee detailsBioprocess Engineering and Fermentation
Bioprocess Engineering and Fermentation
Lesson 1 • Media Formulation and Optimization
Designs defined and complex media for growth and product formation. Nutrient balance and feeding strategies directly impact titer and product quality.
Lesson 2 • Microbial Growth and Kinetics
Quantifies growth phases, specific growth rate, and yield coefficients for production organisms. Kinetic models guide media formulation and process control decisions.
Lesson 3 • Bioreactor Design and Operation
Covers stirred tank, airlift, and perfusion bioreactor configurations and control systems. Reactor design determines mixing, oxygen transfer, and shear stress on cells.
Lesson 4 • Downstream Processing and Recovery
Covers cell harvesting, clarification, and initial purification steps after fermentation. Efficient downstream processing preserves product integrity and reduces manufacturing cost.
Lesson 5 • Scale-Up and Process Transfer
Applies geometric and engineering similarity rules to transfer processes from lab to pilot scale. Scale-up decisions affect mixing time, oxygen transfer, and shear sensitivity.
Chapter 8HideHide detailsSee detailsBiopharmaceuticals and Regulatory Affairs
Biopharmaceuticals and Regulatory Affairs
Lesson 1 • Analytical Characterization of Biologics
Uses bioassays, chromatography, and spectroscopy to characterize identity, purity, and potency. Characterization data supports regulatory submissions and lot release decisions.
Lesson 2 • Good Manufacturing Practice Principles
Applies GMP requirements to facility design, personnel, equipment, and documentation. GMP compliance is mandatory for products intended for human use.
Lesson 3 • Regulatory Submission and Approval
Guides preparation of regulatory dossiers, common technical document format, and agency interactions. Successful submissions require complete chemistry, manufacturing, and controls data.
Lesson 4 • Biopharmaceutical Product Classes
Surveys monoclonal antibodies, vaccines, gene therapies, and cell therapies as product categories. Each class has distinct manufacturing, characterization, and regulatory requirements.
Lesson 5 • Clinical Development and Trial Phases
Outlines preclinical safety studies and Phase I through III clinical trial design. Understanding trial phases helps biotechnologists align product development with regulatory milestones.
Your valid completion certificate
This course is for you:
Biology graduates: seeking practical industry skills beyond academic coursework.
Lab technicians: aiming to expand their role into genetic or bioprocess work.
Pharmaceutical professionals: wanting to understand the biologics side of drug development.
Career changers from chemistry or medicine: building a foundation in modern biotech practice.
Agricultural scientists: exploring biotechnology applications in crop and soil research.
Pre-med or research students: preparing for graduate programs in biomedical sciences.
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