
Bio Tech Course
Master the full spectrum of modern biotechnology, from molecular biology fundamentals to biopharmaceutical development and GMP compliance. This course equips you with the technical skills and regulatory knowledge demanded by today's biotech industry. Whether you're entering the field or advancing your career, you'll gain practical expertise that employers in pharma, diagnostics, and industrial biotech actively seek.
What you will learn:
You will build a strong foundation in cell biology, biochemistry, and molecular techniques before advancing to CRISPR-based genome editing, recombinant protein production, and bioprocess engineering. The curriculum covers biopharmaceutical development pipelines, including preclinical testing, clinical trial design, and regulatory approval pathways. You will also develop proficiency in quality management systems, GMP principles, and analytical method validation. Supplementary modules introduce synthetic biology, AI-driven drug design, diagnostics, and intellectual property strategy. By the end, you will have the technical and professional skills to contribute immediately in a biotech setting.
How you study in practice Bio Tech Course
How you practice Bio Tech Course
For companies looking to train their teams
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 Biotechnology
Foundations of Biotechnology
Lesson 1 • Essential Cell Biology Review
Reviews prokaryotic and eukaryotic cell structure relevant to biotech applications. Anchors molecular techniques to cellular context.
Lesson 2 • Biochemistry Essentials for Biotech
Covers proteins, lipids, carbohydrates, and nucleic acids as substrates and products in biotech workflows. Builds chemical literacy needed for lab techniques.
Lesson 3 • Biotech Industry and Career Pathways
Maps major industry sectors—pharma, agriculture, diagnostics, and industrial biotech—to job roles. Orients students to professional expectations.
Lesson 4 • History and Scope of Biotechnology
Traces biotechnology from ancient fermentation to modern genomics. Provides context for why each subsequent technique was developed.
Lesson 5 • Central Dogma and Gene Expression
Explains DNA replication, transcription, and translation as the mechanistic basis for genetic engineering. Connects molecular flow to practical manipulation.
Chapter 2HideHide detailsSee detailsCore Laboratory Techniques
Core Laboratory Techniques
Lesson 1 • Lab Safety and Good Practice
Establishes biosafety levels, personal protective equipment, and waste disposal standards. Ensures safe execution of all subsequent lab work.
Lesson 2 • Gel Electrophoresis Techniques
Covers agarose and polyacrylamide gel systems for separating nucleic acids and proteins. Builds analytical skills for verifying molecular biology experiments.
Lesson 3 • Spectrophotometry and Quantification
Teaches UV-Vis and fluorescence spectrophotometry for quantifying nucleic acids and proteins. Provides measurement skills used in nearly every biotech workflow.
Lesson 4 • Centrifugation and Separation Methods
Covers differential and density-gradient centrifugation for isolating cells, organelles, and macromolecules. Links separation principles to purification workflows.
Lesson 5 • Pipetting and Liquid Handling
Trains precise volumetric measurement using micropipettes and automated dispensers. Accuracy here directly affects downstream experimental outcomes.
Chapter 3HideHide detailsSee detailsMolecular Biology Techniques
Molecular Biology Techniques
Lesson 1 • DNA Sequencing Methods
Introduces Sanger sequencing and next-generation sequencing platforms for verifying constructs and profiling genomes. Sequence verification is mandatory before downstream use.
Lesson 2 • Restriction Enzymes and DNA Cloning
Covers restriction digestion, ligation, and vector selection for inserting genes into expression systems. Cloning skills enable production of recombinant proteins and constructs.
Lesson 3 • Polymerase Chain Reaction
Explains PCR thermocycling, primer design, and variant techniques such as RT-PCR and qPCR. Amplification underpins cloning, diagnostics, and expression analysis.
Lesson 4 • Nucleic Acid Extraction and Purification
Details protocols for isolating genomic DNA, plasmid DNA, and RNA from diverse sample types. Clean nucleic acids are prerequisite for all downstream molecular work.
Lesson 5 • Bioinformatics for Molecular Analysis
Applies computational tools to analyze sequences, predict structures, and design experiments. Bridges wet-lab data to biological interpretation.
Chapter 4HideHide detailsSee detailsRecombinant Protein Production
Recombinant Protein Production
Lesson 1 • Fermentation and Cell Culture Scale-Up
Teaches batch, fed-batch, and perfusion culture modes for scaling protein production. Process parameters control yield and product quality.
Lesson 2 • Protein Purification Strategies
Details affinity, ion-exchange, and size-exclusion chromatography steps for isolating target proteins. Purification trains the multi-step thinking needed in downstream processing.
Lesson 3 • Expression System Selection
Compares bacterial, yeast, insect, and mammalian expression hosts by yield, folding, and post-translational modification needs. Host choice determines downstream purification strategy.
Lesson 4 • Protein Characterization and Quality
Applies Western blotting, mass spectrometry, and activity assays to confirm protein identity and function. Characterization data supports regulatory submissions.
Lesson 5 • Vector Design and Gene Optimization
Covers promoter selection, codon optimization, and affinity tag placement for maximizing soluble protein yield. Construct design directly impacts expression efficiency.
Chapter 5HideHide detailsSee detailsGenomic Engineering and Gene Editing
Genomic Engineering and Gene Editing
Lesson 1 • Ethical and Regulatory Considerations
Examines biosafety guidelines, informed consent, and germline editing debates governing genome editing research. Regulatory literacy prevents compliance failures in applied projects.
Lesson 2 • Editing Verification and Off-Target Analysis
Applies T7E1 assay, Sanger sequencing, and whole-genome sequencing to confirm edits and detect off-target sites. Verification is required before therapeutic or commercial use.
Lesson 3 • Principles of Genome Editing
Explains double-strand break repair pathways—NHEJ and HDR—as the mechanistic basis for all editing tools. Understanding repair determines which editing strategy to choose.
Lesson 4 • CRISPR-Cas9 System Design
Covers guide RNA design, PAM site selection, and Cas9 delivery methods for efficient editing. Proper design minimizes off-target effects and maximizes editing efficiency.
Lesson 5 • Advanced CRISPR Variants
Introduces base editing, prime editing, and CRISPRi/CRISPRa for precise single-base changes and gene regulation. Expands the editing toolkit beyond simple knockouts.
Chapter 6HideHide detailsSee detailsBioprocess Engineering Fundamentals
Bioprocess Engineering Fundamentals
Lesson 1 • Microbial and Cell Growth Kinetics
Applies Monod kinetics and logistic growth models to predict and optimize culture performance. Kinetic modeling links biological behavior to engineering control strategies.
Lesson 2 • Process Analytical Technology
Introduces inline and at-line sensors, multivariate data analysis, and real-time release testing for process control. PAT reduces batch failures and supports continuous manufacturing.
Lesson 3 • Mass Transfer and Oxygen Delivery
Explains volumetric oxygen transfer coefficient and agitation strategies for maintaining aerobic cultures. Oxygen limitation is a primary cause of yield loss at scale.
Lesson 4 • Bioreactor Design and Operation
Covers stirred-tank, airlift, and hollow-fiber bioreactor configurations and their operating parameters. Reactor choice shapes mixing, oxygen transfer, and shear stress on cells.
Lesson 5 • Downstream Processing Overview
Maps cell harvest, clarification, and initial capture steps that follow bioreactor production. Downstream processing accounts for the majority of manufacturing cost.
Chapter 7HideHide detailsSee detailsBiopharmaceutical Development
Biopharmaceutical Development
Lesson 1 • Biologics Drug Discovery
Covers target identification, lead molecule selection, and early feasibility studies for biologic candidates. Discovery decisions determine the entire downstream development path.
Lesson 2 • Clinical Trial Phases and Design
Explains Phase I–III trial objectives, endpoints, and adaptive design principles for biologics. Trial design directly affects approval timelines and data quality.
Lesson 3 • Regulatory Pathways for Biologics
Navigates biologics license applications, biosimilar approval, and accelerated designation programs. Regulatory strategy determines market access speed and commercial success.
Lesson 4 • Preclinical Development and Testing
Details in vitro and in vivo safety, pharmacokinetics, and efficacy studies required before human trials. Preclinical data packages support regulatory filing for clinical entry.
Lesson 5 • Vaccine and Cell Therapy Platforms
Compares mRNA, viral vector, and cell-based therapeutic platforms for immunization and disease treatment. Platform selection drives manufacturing and regulatory strategy.
Chapter 8HideHide detailsSee detailsQuality, Compliance, and GMP
Quality, Compliance, and GMP
Lesson 1 • Regulatory Inspections and Audits
Prepares teams for regulatory agency inspections and internal audits through mock audit practice. Inspection readiness protects manufacturing licenses and product supply.
Lesson 2 • Process Validation and Qualification
Guides installation, operational, and performance qualification of equipment and processes. Validation data demonstrates consistent product quality to regulators.
Lesson 3 • Good Manufacturing Practice Principles
Covers facility design, personnel hygiene, and batch record requirements mandated by GMP regulations. GMP compliance is non-negotiable for commercial biologic manufacturing.
Lesson 4 • Quality Management Systems
Establishes document control, change management, and CAPA systems as the backbone of biotech quality. A robust QMS prevents deviations and supports regulatory inspections.
Lesson 5 • Analytical Method Validation
Applies accuracy, precision, specificity, and linearity criteria to validate bioanalytical methods. Validated methods are required for product release and stability testing.
Your valid completion certificate
This course is for you:
Biology graduate: ready to connect academic training to real industry workflows.
Lab technician: seeking to advance beyond routine tasks into specialized biotech roles.
Career changer: moving from a science-adjacent field into the life sciences industry.
Pharmaceutical professional: wanting to deepen technical knowledge across the biotech pipeline.
Pre-med or health sciences student: exploring biotechnology as a research or industry career.
Environmental scientist: looking to apply biological tools to sustainability and remediation work.
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