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Plant Biotechnology Course
More than 2 million learners worldwide

Plant Biotechnology Course

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Master the full pipeline of plant biotechnology, from molecular tools and tissue culture to CRISPR genome editing and regulatory approval. This course delivers rigorous, research-grade training across genetics, transformation systems, functional genomics, and crop improvement. Whether you are advancing your research career or entering the biotech industry, you will gain the technical depth and practical skills that modern plant science demands.

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How you practise Plant Biotechnology Course

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Course content

8 Chapters • 40 LessonsDuration between 4 and 360 hours (you decide)

Chapter 1See details

Foundations of Plant Biology and Genetics

  • Lesson 1 • Central Dogma in Plants

    Traces DNA replication, transcription, and translation with plant-specific regulatory features. Establishes molecular vocabulary used throughout all subsequent chapters.

  • Lesson 2 • Plant Genome Organization

    Examines nuclear, plastid, and mitochondrial genomes in plants. Connects genome complexity to challenges in genetic engineering and marker development.

  • Lesson 3 • Plant Cell Structure and Function

    Covers organelle roles unique to plant cells, including chloroplasts, vacuoles, and cell walls. Provides the structural context needed for understanding transformation and tissue culture.

  • Lesson 4 • Plant Hormones and Development

    Introduces phytohormone signalling pathways controlling growth, differentiation, and stress responses. Directly relevant to tissue culture media formulation and regeneration protocols.

  • Lesson 5 • Mendelian and Non-Mendelian Inheritance

    Reviews segregation, linkage, and cytoplasmic inheritance patterns relevant to trait selection. Builds the genetic reasoning required for breeding and transgene analysis.

Chapter 2See details

Molecular Tools and Techniques

  • Lesson 1 • Restriction Enzymes and Gel Electrophoresis

    Explains restriction digestion, ligation, and fragment separation for cloning and genotyping. Provides foundational skills for constructing and verifying recombinant DNA constructs.

  • Lesson 2 • Nucleic Acid Extraction and Quantification

    Teaches DNA and RNA isolation from plant tissues with high polyphenol and polysaccharide content. Mastery here ensures quality inputs for all downstream molecular analyses.

  • Lesson 3 • PCR and Its Variants

    Covers standard PCR, RT-PCR, qPCR, and digital PCR for gene detection and expression analysis. Connects amplification strategies to marker-assisted selection and transgene detection.

  • Lesson 4 • DNA Cloning and Vector Systems

    Introduces plasmid, cosmid, and BAC vectors for gene cloning and library construction. Directly prepares students for building plant transformation constructs in later chapters.

  • Lesson 5 • DNA Sequencing and Bioinformatics Basics

    Covers Sanger sequencing, next-generation sequencing platforms, and sequence alignment tools. Equips students to verify constructs and analyse genomic data generated in later chapters.

Chapter 3See details

Plant Tissue Culture and Regeneration

  • Lesson 1 • Culture Media Formulation

    Explains macro- and micronutrient roles, carbon sources, and hormone ratios in plant culture media. Students formulate species-specific media to drive callus induction or organogenesis.

  • Lesson 2 • Organogenesis and Somatic Embryogenesis

    Teaches shoot and root organogenesis alongside somatic embryo induction and maturation. Both pathways are used to regenerate transformed plants from selected callus or explants.

  • Lesson 3 • Principles of Aseptic Technique

    Establishes contamination prevention protocols essential for successful tissue culture work. Correct aseptic practice underpins every subsequent culture and transformation procedure.

  • Lesson 4 • Callus Induction and Maintenance

    Covers explant selection, dedifferentiation, and long-term callus subculture for diverse species. Callus competence for regeneration is critical for efficient transformation protocols.

  • Lesson 5 • Micropropagation and Commercial Applications

    Applies tissue culture principles to large-scale clonal propagation of elite plant varieties. Connects laboratory regeneration skills to commercial nursery and conservation contexts.

Chapter 4See details

Agrobacterium-Mediated Plant Transformation

  • Lesson 1 • Binary Vector Design and Construction

    Covers the architecture of binary vectors including promoters, selectable markers, and multiple cloning sites. Students assemble functional transformation constructs using cloning skills from Chapter 2.

  • Lesson 2 • Transformation Protocols for Model Plants

    Details floral dip, leaf disc, and cotyledon transformation methods optimised for model species. Hands-on protocol execution builds the technical foundation for crop transformation work.

  • Lesson 3 • Biology of Agrobacterium tumefaciens

    Explains the Ti plasmid, T-DNA transfer mechanism, and virulence gene regulation in Agrobacterium. Understanding natural infection biology is essential for engineering effective transformation systems.

  • Lesson 4 • Selection and Regeneration of Transformants

    Teaches antibiotic and herbicide selection strategies to recover stably transformed plant lines. Connects selection to tissue culture regeneration protocols established in Chapter 3.

  • Lesson 5 • Molecular Confirmation of Transformation

    Applies PCR, Southern blot, and qPCR to confirm T-DNA integration and transgene copy number. Rigorous molecular verification is required before advancing lines to phenotypic analysis.

Chapter 5See details

Direct Gene Transfer and Biolistics

  • Lesson 1 • Plastid Transformation Technology

    Teaches chloroplast genome targeting, homologous recombination integration, and maternal inheritance advantages. Plastid transformation offers high transgene expression and biological containment.

  • Lesson 2 • Principles of Direct DNA Delivery

    Compares physical, chemical, and electrical methods for bypassing the plant cell wall. Establishes when direct methods are preferred over Agrobacterium-based approaches.

  • Lesson 3 • Monocot Transformation Strategies

    Addresses the unique challenges of transforming cereals and grasses using biolistics and optimized Agrobacterium protocols. Connects transformation methods to crop improvement goals in Chapter 7.

  • Lesson 4 • Protoplast Isolation and Transformation

    Covers enzymatic cell wall removal, protoplast viability assessment, and PEG-mediated DNA uptake. Protoplast systems enable precise genome editing and transient expression studies.

  • Lesson 5 • Biolistic Particle Bombardment

    Explains gene gun design, gold particle coating, and helium pressure optimization for DNA delivery. Biolistics is the primary method for plastid transformation and monocot improvement.

Chapter 6See details

Plant Genome Editing with CRISPR Systems

  • Lesson 1 • Advanced Cas Variants and Base Editing

    Introduces Cas12a, Cas13, cytosine base editors, adenine base editors, and prime editing for precise changes. Expands the editing toolkit beyond simple knockouts to precise allele engineering.

  • Lesson 2 • Delivery of CRISPR Components into Plants

    Compares DNA, RNA, and ribonucleoprotein delivery routes for Cas9 and guide RNA into plant cells. Delivery method choice affects editing efficiency, off-target risk, and regulatory status.

  • Lesson 3 • Guide RNA Design and Off-Target Analysis

    Covers bioinformatic tools for guide RNA selection, specificity scoring, and off-target prediction in plant genomes. Rigorous design minimizes unintended mutations in edited lines.

  • Lesson 4 • Detection and Analysis of Editing Events

    Teaches T7E1 assay, amplicon sequencing, and whole-genome sequencing to detect and quantify editing outcomes. Accurate genotyping is required to select homozygous edited lines for downstream use.

  • Lesson 5 • CRISPR-Cas9 Mechanism and Components

    Explains Cas9 nuclease activity, PAM recognition, and guide RNA structure for targeted double-strand breaks. Mechanistic understanding enables rational design of editing experiments.

Chapter 7See details

Functional Genomics and Gene Expression Analysis

  • Lesson 1 • Protein Expression and Proteomics

    Introduces Western blotting, ELISA, and mass spectrometry-based proteomics for transgene product quantification. Protein-level data validates transcriptomic findings and confirms trait mechanisms.

  • Lesson 2 • Gene Silencing and RNAi Tools

    Explains RNA interference, hairpin RNA constructs, and virus-induced gene silencing for functional studies. Silencing tools complement editing approaches for validating gene function hypotheses.

  • Lesson 3 • Transcriptome Profiling Methods

    Covers RNA-seq library preparation, sequencing, and differential expression analysis for plant samples. Transcriptomics reveals how transgene insertion or editing alters global gene expression.

  • Lesson 4 • Phenotypic and Physiological Characterisation

    Covers growth analysis, photosynthesis measurement, and stress tolerance assays for transgenic plant evaluation. Phenotypic data integrates molecular findings into agronomically relevant trait assessment.

  • Lesson 5 • Metabolomics and Biochemical Phenotyping

    Applies GC-MS, LC-MS, and NMR to profile metabolite changes in transgenic or edited plant lines. Metabolomics is essential for assessing compositional equivalence and unintended effects.

Chapter 8See details

Crop Improvement and Regulatory Frameworks

  • Lesson 1 • Event Selection and Breeding Integration

    Covers transformation event characterisation, molecular stack development, and introgression into elite germplasm. Connects laboratory transformation to commercial variety development pipelines.

  • Lesson 2 • Biosafety Assessment Principles

    Explains risk assessment frameworks for evaluating human health, animal safety, and environmental impact of biotech crops. Biosafety data packages are required for regulatory submissions worldwide.

  • Lesson 3 • Regulatory Approval Processes

    Navigates the multi-agency regulatory pathway from contained use to commercial release of biotech crops. Understanding regulatory timelines and data requirements is critical for product development planning.

  • Lesson 4 • Target Traits for Crop Biotechnology

    Surveys herbicide tolerance, insect resistance, drought tolerance, and nutritional enhancement as major trait categories. Trait selection criteria connect molecular tools to agricultural and market needs.

  • Lesson 5 • Intellectual Property and Technology Access

    Addresses patents, material transfer agreements, and freedom-to-operate analysis in plant biotechnology. IP literacy enables researchers to navigate technology licensing and public-sector access issues.

Certification

Your valid completion certificate

This course is for you:

  • Graduate students in plant biology seeking advanced biotechnology specialization.

  • Crop scientists wanting to integrate genome editing into their research workflows.

  • Molecular biologists transitioning from animal or microbial systems into plant science.

  • Agricultural researchers aiming to develop biotech traits for commercial crop varieties.

  • Regulatory affairs professionals building technical fluency in plant transformation methods.

  • Biotech industry newcomers who hold a life sciences degree and want plant-specific expertise.

What our students say

Your lessons are perfect. I purchased the one-year package and finally have the opportunity to follow various topics of my interest without needing to change platforms... I'm grateful for everything you do, I've already recommended you to other people...
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Giulio CarloDigital Marketing Student
I like how the lessons are straight to the point and how I can change chapters and skip content I don't need.
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