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Advanced Biochemical Engineering Course
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Advanced Biochemical Engineering Course

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Master the full spectrum of biochemical engineering, from enzyme kinetics and microbial growth modelling to bioreactor design and large-scale manufacturing. This advanced course equips engineers with the quantitative tools, regulatory knowledge, and metabolic engineering strategies demanded by today's biopharmaceutical and industrial biotech industries.

Dedika for students

What your team will master:

You will build robust competency in transport phenomena, stoichiometry, and thermodynamics as applied to biological systems. You will model enzyme and microbial kinetics, design sterilization cycles, and operate bioreactors in batch, fed-batch, and continuous modes. You will engineer metabolic pathways using genome-scale models and CRISPR tools to improve strain performance. You will design downstream purification trains and perform techno-economic analyses to evaluate process viability. You will also develop skills in regulatory compliance, process validation, sustainability assessment, and scientific communication essential for senior engineering roles.

How your team learns practically Advanced Biochemical Engineering Course

How your team practises Advanced Biochemical Engineering Course

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Course content

8 Chapters • 41 LessonsDuration between 4 and 360 hours (you decide)

Chapter 1See details

Foundations of Biochemical Engineering

  • Lesson 1 • Thermodynamics of Biological Systems

    Applies Gibbs free energy, enthalpy, and entropy to biochemical reactions. Enables prediction of reaction spontaneity and equilibrium in bioprocesses.

  • Lesson 2 • Stoichiometry of Cell Growth

    Quantifies elemental balances for biomass, substrate, and product formation. Provides the mass-balance framework used throughout all subsequent bioprocess chapters.

  • Lesson 3 • Units, Scales, and Engineering Notation

    Standardizes unit systems, dimensional analysis, and scale conventions used in bioprocess engineering. Prevents calculation errors across all subsequent quantitative work.

  • Lesson 4 • Transport Phenomena in Bioprocesses

    Introduces mass, heat, and momentum transfer as rate-limiting factors in bioreactors. Connects transport theory to oxygen transfer and nutrient delivery.

  • Lesson 5 • Biochemistry Essentials for Engineers

    Reviews macromolecules, metabolic pathways, and enzyme function as engineering inputs. Bridges biological knowledge to quantitative process analysis.

Chapter 2See details

Enzyme Kinetics and Reactor Design

  • Lesson 1 • Immobilized Enzyme Systems

    Covers immobilization techniques and the effect of diffusion limitations on apparent kinetics. Connects internal effectiveness factor to reactor productivity.

  • Lesson 2 • Enzyme Stability and Deactivation Kinetics

    Models first-order and multi-step enzyme deactivation and its impact on reactor performance. Enables prediction of enzyme replacement schedules and economic optimization.

  • Lesson 3 • Michaelis-Menten Kinetics

    Derives the Michaelis-Menten model from rapid-equilibrium and quasi-steady-state assumptions. Establishes Km and Vmax as the primary design parameters for enzymatic processes.

  • Lesson 4 • Enzyme Inhibition and Regulation

    Classifies competitive, uncompetitive, and mixed inhibition with diagnostic plots. Applies inhibition models to process troubleshooting and inhibitor removal strategies.

  • Lesson 5 • Enzymatic Reactor Types and Selection

    Compares batch, CSTR, and plug-flow reactors for enzymatic conversions using design equations. Guides reactor selection based on kinetics, cost, and product requirements.

Chapter 3See details

Microbial Growth Kinetics and Modeling

  • Lesson 1 • Population Dynamics and Mixed Cultures

    Models competition, mutualism, and predator-prey dynamics in mixed microbial populations. Applies population models to co-culture bioprocesses and contamination risk assessment.

  • Lesson 2 • Product Formation Kinetics

    Classifies growth-associated, non-growth-associated, and mixed product formation using Luedeking-Piret models. Links product kinetics to bioreactor operating strategy selection.

  • Lesson 3 • Environmental Effects on Growth

    Quantifies the impact of temperature, pH, dissolved oxygen, and osmolarity on growth kinetics. Enables specification of optimal operating windows for bioreactor control.

  • Lesson 4 • Structured and Cybernetic Models

    Introduces intracellular compartment models and cybernetic frameworks for metabolic regulation. Improves prediction accuracy for complex fermentation dynamics beyond Monod.

  • Lesson 5 • Unstructured Growth Models

    Presents Monod kinetics and its extensions as the standard framework for microbial growth prediction. Provides the kinetic foundation for bioreactor design in subsequent chapters.

Chapter 4See details

Sterilization and Aseptic Processing

  • Lesson 1 • Aseptic Technique and Contamination Control

    Establishes engineering and procedural controls to prevent contamination during inoculation and sampling. Connects contamination prevention to process economics and batch success rates.

  • Lesson 2 • Air and Gas Sterilization

    Designs depth filtration and membrane filter systems for sterile air supply to bioreactors. Ensures particulate and microbial removal efficiency under process flow conditions.

  • Lesson 3 • Microbial Death Kinetics

    Models first-order thermal inactivation using D-values and z-values for target organisms. Provides the quantitative basis for all sterilization cycle design in this chapter.

  • Lesson 4 • Batch and Continuous Sterilization

    Compares in-situ batch sterilization with continuous high-temperature short-time processes. Selects sterilization mode based on nutrient degradation, throughput, and scale.

  • Lesson 5 • Sterility Validation and Regulatory Compliance

    Applies sterility assurance level calculations and validation protocols to meet regulatory expectations. Prepares documentation packages required for process approval.

Chapter 5See details

Bioreactor Design and Operation

  • Lesson 1 • Bioreactor Instrumentation and Control

    Covers sensors for pH, DO, temperature, and biomass and integrates them into feedback control loops. Provides the instrumentation basis for automated bioprocess operation.

  • Lesson 2 • Non-Ideal Flow and Mixing Analysis

    Characterizes mixing time, dead zones, and channeling using tracer experiments and RTD analysis. Corrects non-ideal behavior to restore predicted bioreactor performance.

  • Lesson 3 • Fed-Batch Bioreactor Strategies

    Analyzes constant-rate, exponential, and feedback-controlled feeding strategies for fed-batch cultures. Optimizes feeding profiles to maximize biomass or product titer.

  • Lesson 4 • Oxygen Transfer and Aeration Design

    Quantifies the volumetric oxygen transfer coefficient kLa and its dependence on agitation and aeration. Sizes sparger and impeller systems to meet oxygen demand at scale.

  • Lesson 5 • Ideal Bioreactor Models

    Derives mass balances for ideal batch, CSTR, and plug-flow bioreactors using microbial kinetics. Establishes the design equation framework applied throughout this chapter.

  • Lesson 6 • Heat Transfer and Temperature Control

    Calculates metabolic heat generation and designs jacket and coil systems for temperature control. Prevents thermal deviations that compromise cell viability and product quality.

Chapter 6See details

Downstream Processing and Bioseparations

  • Lesson 1 • Cell Harvest and Disruption

    Covers centrifugation, microfiltration, and mechanical disruption for biomass recovery and cell lysis. Establishes the first downstream step that determines all subsequent separation efficiency.

  • Lesson 2 • Membrane Separation Processes

    Applies ultrafiltration, diafiltration, and nanofiltration for concentration and buffer exchange. Sizes membrane area and optimizes transmembrane pressure for target flux.

  • Lesson 3 • Integrated Purification Train Design

    Sequences unit operations into a purification train using yield and purification factor analysis. Balances purity, recovery, and cost across the entire downstream process.

  • Lesson 4 • Chromatographic Separations

    Designs ion exchange, affinity, size exclusion, and hydrophobic interaction chromatography steps. Applies plate theory and resolution equations to column sizing and gradient design.

  • Lesson 5 • Precipitation and Extraction

    Applies salting-out, isoelectric precipitation, and aqueous two-phase extraction for initial product capture. Reduces volume and removes bulk contaminants before chromatography.

Chapter 7See details

Metabolic Engineering and Pathway Design

  • Lesson 1 • Genetic Tools for Pathway Engineering

    Reviews promoter engineering, gene knockouts, overexpression, and CRISPR-based editing for metabolic rewiring. Connects genetic interventions to predicted flux changes.

  • Lesson 2 • Rational Pathway Design Principles

    Applies thermodynamic feasibility, cofactor balancing, and precursor availability to design new biosynthetic routes. Evaluates pathway designs before experimental implementation.

  • Lesson 3 • Strain Optimization and Adaptive Evolution

    Combines rational engineering with directed evolution and adaptive laboratory evolution for strain improvement. Integrates omics data to guide iterative design-build-test cycles.

  • Lesson 4 • Metabolic Flux Analysis

    Formulates stoichiometric network models and solves flux distributions using mass balances and isotope labeling. Identifies rate-limiting steps and carbon routing inefficiencies.

  • Lesson 5 • Genome-Scale Modeling for Bioprocess

    Uses genome-scale metabolic models to predict growth phenotypes and identify engineering targets computationally. Reduces experimental burden by prioritizing high-impact genetic modifications.

Chapter 8See details

Bioprocess Scale-Up and Technology Transfer

  • Lesson 1 • Scale-Up Criteria and Dimensionless Numbers

    Evaluates constant power-per-volume, tip speed, Reynolds number, and mixing time as competing scale-up criteria. Resolves conflicts between criteria using process-specific prioritization.

  • Lesson 2 • Technology Transfer Protocols

    Structures formal technology transfer packages including process descriptions, analytical methods, and acceptance criteria. Ensures receiving sites reproduce process performance within defined limits.

  • Lesson 3 • Oxygen Transfer Scale-Up

    Scales kLa correlations from bench to pilot and production scale using empirical and mechanistic models. Validates oxygen supply adequacy before committing to large-scale runs.

  • Lesson 4 • Risk Assessment in Scale-Up

    Applies failure mode and effects analysis and risk ranking to identify scale-up failure points. Develops mitigation plans that protect product quality and schedule during scale-up.

  • Lesson 5 • Pilot Plant Design and Operation

    Designs pilot plant configurations to generate scale-up data and de-risk manufacturing transitions. Identifies critical process parameters through pilot-scale characterization studies.

Certification

Your valid completion certificate

This course is for you:

  • Chemical engineers transitioning into biotechnology or biopharma manufacturing roles.

  • Bioprocess scientists seeking stronger quantitative and engineering design foundations.

  • Microbiology graduates who want to move into industrial fermentation development careers.

  • Process development engineers preparing to lead scale-up and technology transfer projects.

  • Pharmaceutical manufacturing professionals expanding into biologics production environments.

  • Graduate students in life sciences building applied engineering skills for industry.

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