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Synthetic Biology for Sustainable Solutions Course

INR ₹2,499.00 INR ₹24,999.00Price range: INR ₹2,499.00 through INR ₹24,999.00

This program empowers participants to use synthetic biology for sustainable solutions. Learn genetic engineering, bioinformatics, and metabolic engineering to tackle environmental challenges, fostering innovation in agriculture, healthcare, and manufacturing.

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Aim

This course introduces synthetic biology (SynBio) as a platform for building sustainable solutions across climate, water, materials, agriculture, and circular bioeconomy systems. Participants will learn core SynBio concepts (genetic parts, circuits, chassis selection), the Design–Build–Test–Learn (DBTL) cycle, biosafety-by-design, and how to translate sustainability problems into engineered biological functions. The program emphasizes responsible innovation, real-world constraints, and evidence-based evaluation—using case studies and design exercises (conceptual and non-operational rather than wet-lab protocols). The course culminates in a capstone project where learners create a Synthetic Biology Sustainability Blueprint for a chosen application.

Program Objectives

  • SynBio Fundamentals: Understand genetic parts, circuits, and programmable biology at a conceptual level.
  • DBTL Workflow: Learn how to scope, design, test, and iterate engineered bio-solutions responsibly.
  • Sustainability Applications: Explore SynBio approaches for bioremediation, bio-based materials, carbon management, and resilient agriculture.
  • Biomanufacturing Thinking: Understand microbial fermentation concepts, pathway tuning, and scale-up constraints (high-level).
  • Measurement & Validation: Define KPIs for performance, safety, and environmental impact without over-claiming.
  • Biosafety & Governance: Learn containment concepts, risk assessment, and regulatory awareness for responsible deployment.
  • Lifecycle & Circularity: Apply LCA-style reasoning, circular design, and end-of-life considerations in SynBio solutions.
  • Hands-on Outcome: Build a complete sustainability solution blueprint ready for academic/industry review.

Program Structure

Module 1: Sustainability Problems SynBio Can Address

  • Where SynBio fits: climate mitigation, waste valorization, safer materials, water purification, and sustainable food systems.
  • Problem framing: defining scope, stakeholders, constraints, and measurable targets.
  • Success metrics: performance KPIs, safety KPIs, cost realism, and impact verification.
  • Reality check: limits of biology, time scales, and deployment considerations.

Module 2: SynBio Core Concepts (Genetic Parts to Systems)

  • Biological “programming” ideas: DNA as information and gene expression as output control.
  • Genetic parts overview: promoters, regulators, sensors, and reporters (high-level).
  • Genetic circuits: switches, feedback, and logic-like behavior (conceptual).
  • Chassis selection concepts: bacteria, yeast, algae—selection criteria and constraints.

Module 3: Design–Build–Test–Learn (DBTL) for Sustainable Innovation

  • Design: turning sustainability goals into biological functions and testable hypotheses.
  • Build (conceptual): assembly strategies, standardization ideas, and documentation habits.
  • Test: assays and measurements (conceptual) aligned to KPIs and reproducibility.
  • Learn: iteration, debugging, and data-driven improvement loops.

Module 4: Pathway Engineering and Biomanufacturing (High-Level)

  • Metabolic pathways: inputs → intermediates → outputs; tuning yield and productivity concepts.
  • Bioproduction examples: bio-based chemicals, bioplastics, enzymes, and natural pigments.
  • Fermentation overview: upstream/downstream concepts, feedstocks, and contamination risk.
  • Scale-up constraints: consistency, supply chain, quality control, and economics (overview).

Module 5: SynBio for Circular Economy and Waste-to-Value

  • Waste streams: agricultural residues, food waste, wastewater nutrients, and industrial byproducts (overview).
  • Valorization logic: converting waste carbon into useful products.
  • Enzyme and microbial conversion concepts: depolymerization, biotransformation, and resource recovery.
  • Design constraints: toxicity, variability of feedstocks, and process stability.

Module 6: SynBio for Water, Soil, and Environmental Monitoring

  • Bioremediation concepts: biodegradation, sequestration, immobilization, and biofilms (high-level).
  • Environmental biosensors: input signal → circuit → output; sensitivity/specificity and calibration concepts.
  • Monitoring workflows: integrating bio-signals with digital systems and reporting formats.
  • Field realities: containment, verification, and community trust considerations.

Module 7: Biosafety-by-Design, Ethics, and Governance

  • Biosafety basics: hazard identification, risk assessment, and mitigation planning.
  • Biocontainment concepts: physical containment, kill-switch logic, auxotrophy (overview).
  • Ethical design: transparency, consent, and environmental justice considerations.
  • Regulatory awareness: documentation expectations and responsible communication (overview).

Module 8: Sustainability Measurement, LCA Thinking, and Impact Validation

  • Impact logic: defining baselines, comparing alternatives, and identifying rebound risks.
  • Lifecycle thinking: feedstock sourcing, energy use, waste outputs, and end-of-life planning.
  • Verification: evidence-based reporting, uncertainty, and reproducibility.
  • Communication: turning technical performance into decision-ready insights.

Module 9: Case Studies and Future Directions

  • Case studies: bio-based materials, carbon-to-value concepts, wastewater nutrient recovery, sustainable agriculture inputs (overview).
  • Emerging trends: cell-free systems, engineered consortia, and AI-assisted design (conceptual).
  • Integration with smart systems: sensors + IoT + digital twins for sustainability programs.
  • Responsible scaling: from prototype to pilot to deployment.

Final Project

  • Create a Synthetic Biology Sustainable Solutions Blueprint for a chosen sustainability problem.
  • Include: problem definition, conceptual SynBio approach, DBTL plan, safety/containment strategy, validation KPIs, and lifecycle impact reasoning.
  • Example projects: enzyme-based plastic depolymerization concept, wastewater nutrient recovery strategy, biosensor-driven water quality monitoring plan, bio-based material pathway concept, or a waste-to-value bioprocess blueprint.

Participant Eligibility

  • Students and professionals in Biotechnology, Environmental Science/Engineering, Chemical Engineering, Microbiology, or related fields.
  • Sustainability professionals exploring bio-based solutions for circular economy and climate goals.
  • Data/AI professionals interested in bio-design, monitoring, and decision systems.
  • Basic biology knowledge is helpful, but not required.

Program Outcomes

  • SynBio Literacy: Clear understanding of synthetic biology concepts and sustainable application pathways.
  • Solution Design Skill: Ability to translate sustainability needs into engineered biological functions and measurable KPIs.
  • Biosafety Readiness: Understanding of containment concepts, risk thinking, and responsible governance constraints.
  • Impact Thinking: Ability to apply lifecycle reasoning and communicate sustainability claims responsibly.
  • Portfolio Deliverable: A complete sustainability blueprint for academic, industry, or grant-style evaluation.

Program Deliverables

  • Access to e-LMS: Course materials, worksheets, and case studies.
  • Design Toolkit: DBTL planning template, chassis/payload selection worksheet, biosafety checklist, and LCA-lite impact worksheet.
  • Case Exercises: Problem framing, KPI definition, impact validation planning, and stakeholder mapping.
  • Project Guidance: Mentor support for final blueprint completion and feedback.
  • Final Assessment: Certification after assignments + capstone submission.
  • e-Certification and e-Marksheet: Digital credentials provided upon successful completion.

Future Career Prospects

  • Synthetic Biology / Bioeconomy Associate
  • Sustainability Innovation & Bioprocess Analyst
  • Environmental Biotechnology Associate
  • Biosafety & Responsible Innovation Associate
  • Bio-based Product Development Associate

Job Opportunities

  • Biotech & SynBio Companies: Bio-based chemicals, enzymes, and sustainable materials development.
  • Environmental & Water Organizations: Monitoring strategy, restoration planning support, and evidence-based sustainability programs.
  • Industrial Sustainability Teams: Waste-to-value innovation, circularity projects, and sustainability reporting support.
  • Research Institutes & Universities: SynBio R&D for climate, water, and materials applications.
  • Startups & Innovation Labs: Rapid prototyping and commercialization of bio-based sustainable solutions.
Category

E-LMS, E-LMS+Videos, E-LMS+Videos+Live

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Certification

  • Upon successful completion of the workshop, participants will be awarded a Certificate of Completion, validating their skills and knowledge in advanced AI ethics and regulatory frameworks. This certification can be added to your LinkedIn profile or shared with employers to demonstrate your commitment to ethical AI practices.

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Hall of Fame.

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