Introduction to Synthetic Biology
Synthetic Biology (often abbreviated as **Syn Bio**) is a cutting-edge,
interdisciplinary field that combines biology with principles of engineering,
computer science, and chemistry to design and construct new biological
parts, devices, and systems, or re-design existing natural biological systems
for useful purposes.
General Definition:
> “Synthetic biology is the science of designing and building novel
biological systems, components, or entire organisms using standardized
genetic parts and engineering principles.”
Why Is Synthetic Biology Important?
Biology has traditionally been descriptive—studying existing organisms
and molecules.
Synthetic biology shifts the focus to constructive biology: building new
forms of life with desired functions.
This allows us to:
* Manufacture pharmaceuticals in engineered bacteria.
* Create biosensors for disease detection.
* Engineer crops to fix nitrogen or resist pests.
* Develop microbial factories for biofuels and biodegradable plastics.
* Even design organisms that can survive on Mars.
Historical Background
| Period | Milestone
1970s | Recombinant DNA technology developed (Paul Berg, Boyer &
Cohen).
| 1990s | Systems biology emerges—modeling complex biological networks.
| Early 2000s | Term "synthetic biology" becomes mainstream (Drew Endy, Tom
Knight at MIT).
| 2010 | Craig Venter’s team **creates the first synthetic cell
(*Mycoplasma mycoides (parasite in ruminents* with a synthetic genome).
| 2012 onward | **CRISPR-Cas9** revolutionizes genome editing and synthetic
circuit design.
Synthetic Biology vs. Traditional Genetic Engineering
| Feature | Synthetic Biology | Genetic Engineering
| Approach | Engineering-like: modular, design-build-test cycles
| Modify existing genes or insert foreign genes
| Goal | Design new biological systems or organisms from scratch |
Enhance or repair existing biological traits
| Tools | Standardized parts (BioBricks, standardized DNA sequences
used as interchangeable parts in synthetic biology and facilitate the creation of
new biological functions by combining these standardized parts.),
CAD software is to design and model biological systems, automation
(significantly transforming synthetic biology by enhancing the efficiency,
precision, and throughput of experiments) | Gene cloning, mutagenesis,
transformation
| Output | Whole circuits, pathways, synthetic genomes
Core Concepts of Synthetic Biology
1. Standardization
Use of standard biological parts (e.g., promoters, terminators, genes) much like
electronic components.
The BioBrick standard allows easy assembly of genetic parts.
2. Modularity
Biological systems are broken into “modules” that can be independently
designed and tested. modules are self-contained, reusable components that
encapsulate specific functionalities. Modularity is the principle of designing
systems by breaking them down into these independent, interconnected
modules.
3. Abstraction ( ‫خالص‬
‫ہ‬ ) Hierarchy (‫بندی‬ ‫درج‬
‫ہ‬ )
Parts → Devices → Systems
Mirrors engineering disciplines where complex designs are built from simple
elements.
4. Design-Build-Test-Learn (DBTL) Cycle
Iterative process:
Design synthetic circuits using software tools.
Build DNA constructs via synthesis.
Test functionality in cells.
Learn from results to improve next design.
5. Orthogonality (the state of being independent or unrelated)
Designed parts operate independently of the host’s native systems, reducing
unintended interactions.
Key Technologies Enabling Synthetic Biology
DNA Synthesis and Assembly: De novo gene and genome synthesis, Golden
Gate, Gibson Assembly.
CRISPR and Genome Editing: Precise insertion, deletion, or replacement of
DNA sequences.
Computational Tools: CAD tools, in silico modeling of genetic circuits.
Automation & Biofoundries: (specialized, highly automated facilities designed
to accelerate the engineering of biological systems) Robotics and AI for high-
throughput synthetic biology workflows.
Chassis Organisms:(are engineered microbial hosts used as foundational
platforms for constructing new biological systems and pathways)
Model microbes (E. coli, yeast) used as biological platforms.
Interdisciplinary Nature of Synthetic Biology
Synthetic Biology brings together expertise from:
Biology (molecular, cellular, microbiology)
Engineering (systems, electrical, mechanical)
Computer Science (modeling, simulation, machine learning)
Chemistry (biochemistry, metabolic engineering)
Ethics and Policy (governance, regulation, biosecurity)
Types of Synthetic Biology Approaches
Top-down approach
Start with existing organisms and simplify or rewire them (e.g., minimal
genome projects).
Bottom-up approach
Build synthetic life from scratch using biomolecules to mimic life-like
behavior (e.g., protocells).
Potential Impact Areas
| Sector | Application |
| ----------------- | --------------------------------------------------- |
| Medicine | Custom therapeutics, diagnostics, and vaccines
| Agriculture | Pest-resistant crops, soil microbiome engineering
| Industry | Green manufacturing, biodegradable plastics
| Energy | Microbial production of biofuels, hydrogen
| Environment | Bioremediation, pollution sensing and cleanup
| Space Biology | Engineering organisms for extraterrestrial habitats
Ethical and Social Considerations
Biosecurity: Could synthetic biology be misused for bioterrorism?
Biosafety: Can synthetic organisms escape and impact ecosystems?
Ethics: Are we “playing God” by creating new life forms?
Regulation: How should synthetic organisms be governed?
Responsible innovation frameworks are essential for balancing progress with
precaution.
Conclusion
Synthetic biology represents a paradigm (‫)تمثیل‬ shift in biological research and
biotechnology, transforming biology into an engineerable discipline.
It holds transformative potential across multiple industries, but must be
developed thoughtfully with ethical foresight.
LEC Synthetic Biology and its application.ppt

More Related Content

PPTX
Synthetic biology
PPTX
Introduction to synthetic biology
PDF
Synthetic Biology: Foundations, Tools, Techniques, Challenges and Future Dire...
PPTX
Introduction to Biology for Engineers.pptx
PDF
Synthetic Biology: Creating Custom Organisms for Industry (www.kiu.ac.ug)
PPTX
introductiontobiologyforengineers-221011084857-44184b31 (1).pptx
PPTX
Synthetic bio alankar
PPTX
Bioprocess Equipment Design and Economics
Synthetic biology
Introduction to synthetic biology
Synthetic Biology: Foundations, Tools, Techniques, Challenges and Future Dire...
Introduction to Biology for Engineers.pptx
Synthetic Biology: Creating Custom Organisms for Industry (www.kiu.ac.ug)
introductiontobiologyforengineers-221011084857-44184b31 (1).pptx
Synthetic bio alankar
Bioprocess Equipment Design and Economics

Similar to LEC Synthetic Biology and its application.ppt (20)

PPTX
Synthetic Biology.pptx
PPTX
engineering life- an introduction to synthetic biology
PPTX
Session ii g2 overview chemical modeling mmc
PPT
Bio Nanocomposite Material Presentation
PDF
Systems Biology: Integrating Engineering with Biological Research (www.kiu.a...
PPTX
Synthetic Biology
PPTX
Tissue Engineering & Regenerative Medicine
PDF
Yeast Systems Biology Methods and Protocols 1st Edition Juan I. Castrillo
PDF
Synthetic Biology - Modeling and Optimisation
PDF
Yeast Systems Biology Methods and Protocols 1st Edition Juan I. Castrillo
PPTX
Biology presentation regarding biomedical engineering
PDF
Yeast Systems Biology Methods and Protocols 1st Edition Juan I. Castrillo
PPT
Systemic differences between biological and technical systems
PPTX
LEC 1 & 2.pptx
PDF
Biocomputing
PDF
PPT
3D-Bioprinting coming of age-from cells to organs
PPTX
Categorias
PPT
Synthetic Biology
Synthetic Biology.pptx
engineering life- an introduction to synthetic biology
Session ii g2 overview chemical modeling mmc
Bio Nanocomposite Material Presentation
Systems Biology: Integrating Engineering with Biological Research (www.kiu.a...
Synthetic Biology
Tissue Engineering & Regenerative Medicine
Yeast Systems Biology Methods and Protocols 1st Edition Juan I. Castrillo
Synthetic Biology - Modeling and Optimisation
Yeast Systems Biology Methods and Protocols 1st Edition Juan I. Castrillo
Biology presentation regarding biomedical engineering
Yeast Systems Biology Methods and Protocols 1st Edition Juan I. Castrillo
Systemic differences between biological and technical systems
LEC 1 & 2.pptx
Biocomputing
3D-Bioprinting coming of age-from cells to organs
Categorias
Synthetic Biology
Ad

More from Hassan Yousaf (20)

PPTX
nadeem presentation power pointandd.pptx
PPTX
elisa enzmelinked immunosorbent essay.pptx
PPTX
Lecture AgroBacterium tumefaciansL3.pptx
PPT
Mutation in dna of bacteria and repairss
PPTX
plasmid, green flourescence protein.pptx
PPTX
teaching method.pptx
PPTX
Breast Cancer Pink Ribbon PowerPoint Templates.pptx
PPTX
Every Day Earth Day.pptx
PPTX
Diet And Fitness.pptx
PPTX
Coffee quality presentation.pptx
PPTX
Islamic festivals.pptx
PPTX
Education PowerPoint.pptx
PPTX
Global Warming.pptx
PPT
Lecture 2 - The Impact of Humans on Biodiversity - Slide Set.ppt
PPTX
columnchromatography 3.pptx
PPTX
Economical Importance of Mammals.pptx
PPTX
columnchromatography ppt.pptx
PPTX
biomass energy.pptx
PPTX
blooting image.pptx
PPTX
hydrogenfuelcell ppt.pptx
nadeem presentation power pointandd.pptx
elisa enzmelinked immunosorbent essay.pptx
Lecture AgroBacterium tumefaciansL3.pptx
Mutation in dna of bacteria and repairss
plasmid, green flourescence protein.pptx
teaching method.pptx
Breast Cancer Pink Ribbon PowerPoint Templates.pptx
Every Day Earth Day.pptx
Diet And Fitness.pptx
Coffee quality presentation.pptx
Islamic festivals.pptx
Education PowerPoint.pptx
Global Warming.pptx
Lecture 2 - The Impact of Humans on Biodiversity - Slide Set.ppt
columnchromatography 3.pptx
Economical Importance of Mammals.pptx
columnchromatography ppt.pptx
biomass energy.pptx
blooting image.pptx
hydrogenfuelcell ppt.pptx
Ad

Recently uploaded (20)

PDF
S2 SOIL BY TR. OKION.pdf based on the new lower secondary curriculum
PPTX
Hypertension_Training_materials_English_2024[1] (1).pptx
PPTX
GREEN FIELDS SCHOOL PPT ON HOLIDAY HOMEWORK
PDF
Looking into the jet cone of the neutrino-associated very high-energy blazar ...
PDF
Science Form five needed shit SCIENEce so
PDF
Warm, water-depleted rocky exoplanets with surfaceionic liquids: A proposed c...
PPTX
Introcution to Microbes Burton's Biology for the Health
PPTX
perinatal infections 2-171220190027.pptx
PPTX
endocrine - management of adrenal incidentaloma.pptx
PPT
Presentation of a Romanian Institutee 2.
PDF
Social preventive and pharmacy. Pdf
PPT
Animal tissues, epithelial, muscle, connective, nervous tissue
PPTX
limit test definition and all limit tests
PDF
Cosmic Outliers: Low-spin Halos Explain the Abundance, Compactness, and Redsh...
PDF
Unit 5 Preparations, Reactions, Properties and Isomersim of Organic Compounds...
PDF
Communicating Health Policies to Diverse Populations (www.kiu.ac.ug)
PPT
Enhancing Laboratory Quality Through ISO 15189 Compliance
PPTX
TORCH INFECTIONS in pregnancy with toxoplasma
PPTX
INTRODUCTION TO PAEDIATRICS AND PAEDIATRIC HISTORY TAKING-1.pptx
PPTX
Understanding the Circulatory System……..
S2 SOIL BY TR. OKION.pdf based on the new lower secondary curriculum
Hypertension_Training_materials_English_2024[1] (1).pptx
GREEN FIELDS SCHOOL PPT ON HOLIDAY HOMEWORK
Looking into the jet cone of the neutrino-associated very high-energy blazar ...
Science Form five needed shit SCIENEce so
Warm, water-depleted rocky exoplanets with surfaceionic liquids: A proposed c...
Introcution to Microbes Burton's Biology for the Health
perinatal infections 2-171220190027.pptx
endocrine - management of adrenal incidentaloma.pptx
Presentation of a Romanian Institutee 2.
Social preventive and pharmacy. Pdf
Animal tissues, epithelial, muscle, connective, nervous tissue
limit test definition and all limit tests
Cosmic Outliers: Low-spin Halos Explain the Abundance, Compactness, and Redsh...
Unit 5 Preparations, Reactions, Properties and Isomersim of Organic Compounds...
Communicating Health Policies to Diverse Populations (www.kiu.ac.ug)
Enhancing Laboratory Quality Through ISO 15189 Compliance
TORCH INFECTIONS in pregnancy with toxoplasma
INTRODUCTION TO PAEDIATRICS AND PAEDIATRIC HISTORY TAKING-1.pptx
Understanding the Circulatory System……..

LEC Synthetic Biology and its application.ppt

  • 1. Introduction to Synthetic Biology Synthetic Biology (often abbreviated as **Syn Bio**) is a cutting-edge, interdisciplinary field that combines biology with principles of engineering, computer science, and chemistry to design and construct new biological parts, devices, and systems, or re-design existing natural biological systems for useful purposes. General Definition: > “Synthetic biology is the science of designing and building novel biological systems, components, or entire organisms using standardized genetic parts and engineering principles.”
  • 2. Why Is Synthetic Biology Important? Biology has traditionally been descriptive—studying existing organisms and molecules. Synthetic biology shifts the focus to constructive biology: building new forms of life with desired functions. This allows us to: * Manufacture pharmaceuticals in engineered bacteria. * Create biosensors for disease detection. * Engineer crops to fix nitrogen or resist pests. * Develop microbial factories for biofuels and biodegradable plastics. * Even design organisms that can survive on Mars.
  • 3. Historical Background | Period | Milestone 1970s | Recombinant DNA technology developed (Paul Berg, Boyer & Cohen). | 1990s | Systems biology emerges—modeling complex biological networks. | Early 2000s | Term "synthetic biology" becomes mainstream (Drew Endy, Tom Knight at MIT). | 2010 | Craig Venter’s team **creates the first synthetic cell (*Mycoplasma mycoides (parasite in ruminents* with a synthetic genome). | 2012 onward | **CRISPR-Cas9** revolutionizes genome editing and synthetic circuit design.
  • 4. Synthetic Biology vs. Traditional Genetic Engineering | Feature | Synthetic Biology | Genetic Engineering | Approach | Engineering-like: modular, design-build-test cycles | Modify existing genes or insert foreign genes | Goal | Design new biological systems or organisms from scratch | Enhance or repair existing biological traits | Tools | Standardized parts (BioBricks, standardized DNA sequences used as interchangeable parts in synthetic biology and facilitate the creation of new biological functions by combining these standardized parts.), CAD software is to design and model biological systems, automation (significantly transforming synthetic biology by enhancing the efficiency, precision, and throughput of experiments) | Gene cloning, mutagenesis, transformation | Output | Whole circuits, pathways, synthetic genomes
  • 5. Core Concepts of Synthetic Biology 1. Standardization Use of standard biological parts (e.g., promoters, terminators, genes) much like electronic components. The BioBrick standard allows easy assembly of genetic parts. 2. Modularity Biological systems are broken into “modules” that can be independently designed and tested. modules are self-contained, reusable components that encapsulate specific functionalities. Modularity is the principle of designing systems by breaking them down into these independent, interconnected modules. 3. Abstraction ( ‫خالص‬ ‫ہ‬ ) Hierarchy (‫بندی‬ ‫درج‬ ‫ہ‬ ) Parts → Devices → Systems Mirrors engineering disciplines where complex designs are built from simple elements.
  • 6. 4. Design-Build-Test-Learn (DBTL) Cycle Iterative process: Design synthetic circuits using software tools. Build DNA constructs via synthesis. Test functionality in cells. Learn from results to improve next design. 5. Orthogonality (the state of being independent or unrelated) Designed parts operate independently of the host’s native systems, reducing unintended interactions.
  • 7. Key Technologies Enabling Synthetic Biology DNA Synthesis and Assembly: De novo gene and genome synthesis, Golden Gate, Gibson Assembly. CRISPR and Genome Editing: Precise insertion, deletion, or replacement of DNA sequences. Computational Tools: CAD tools, in silico modeling of genetic circuits. Automation & Biofoundries: (specialized, highly automated facilities designed to accelerate the engineering of biological systems) Robotics and AI for high- throughput synthetic biology workflows. Chassis Organisms:(are engineered microbial hosts used as foundational platforms for constructing new biological systems and pathways) Model microbes (E. coli, yeast) used as biological platforms.
  • 8. Interdisciplinary Nature of Synthetic Biology Synthetic Biology brings together expertise from: Biology (molecular, cellular, microbiology) Engineering (systems, electrical, mechanical) Computer Science (modeling, simulation, machine learning) Chemistry (biochemistry, metabolic engineering) Ethics and Policy (governance, regulation, biosecurity) Types of Synthetic Biology Approaches Top-down approach Start with existing organisms and simplify or rewire them (e.g., minimal genome projects). Bottom-up approach Build synthetic life from scratch using biomolecules to mimic life-like behavior (e.g., protocells).
  • 9. Potential Impact Areas | Sector | Application | | ----------------- | --------------------------------------------------- | | Medicine | Custom therapeutics, diagnostics, and vaccines | Agriculture | Pest-resistant crops, soil microbiome engineering | Industry | Green manufacturing, biodegradable plastics | Energy | Microbial production of biofuels, hydrogen | Environment | Bioremediation, pollution sensing and cleanup | Space Biology | Engineering organisms for extraterrestrial habitats
  • 10. Ethical and Social Considerations Biosecurity: Could synthetic biology be misused for bioterrorism? Biosafety: Can synthetic organisms escape and impact ecosystems? Ethics: Are we “playing God” by creating new life forms? Regulation: How should synthetic organisms be governed? Responsible innovation frameworks are essential for balancing progress with precaution. Conclusion Synthetic biology represents a paradigm (‫)تمثیل‬ shift in biological research and biotechnology, transforming biology into an engineerable discipline. It holds transformative potential across multiple industries, but must be developed thoughtfully with ethical foresight.