Basics of genetic engineering

Study programme: general veterinary medicine full-time form of study
Teaching language:   english
Subject code: KaMBaI/GVM-BGE/11    Short: GVM-BGE
  •  Credits: 3
  •  Completion method: Credit and Examination
  •   Lectures: 1 / Practice: 3
  •   Semester: summer semester
Form, course-load and method od study:
Form of study: Lecture / Practical
Course-load: Per week: 1 / 3   -   Per study period: 13 / 39 (recommended, in hours)
Method of study: prezenčná
 
Prerequisites a following
Prerequisites:      
 
Teachers
Lecturer:
Instructor:
Examiner:
Guarantor:
CONDITIONS FOR COMPLETION OF COURSE
Credit: 100 % active participation on the lessons and elaboration of seminary work. Exam is written (test).
Brief outline of the course
The subject will mediate information on potential application of DNA methods in agriculture, health services and in environmental management and protection. Practical lessons are model-focused on work with recombinant DNA, „in vitro“ mutagenesis, isolation of plasmid and chromosomal DNA, construction of gene library, obtaining genes with required functions, and quantification of expression of recombinant DNA in relation to the role of promoters, transpozones and plasmid DNA in expression of functional genes. It will allow one to understand principles of diagnostics of bacteria and viruses by means of restriction-endonuclease profile, PCR and DNA probes and diagnostics of hereditary diseases.
Course syllabus
Syllabus of lectures:
1. Basic terms used in genetic engineering.
2. Replication of DNA.
3. Preparation of effective expression systems. Preparation of recombinant DNA.
4. Construction of „gene library“.
5. Selection of required clones.
6. Mutagenesis in vitro.
7. Mobile genes, translocable elements. Use of viruses, bacteriophages.
8. Construction of recombinant DNA for procaryotic or eucaryotic systems.
9. Transfer of genes to procaryotic or eucaryotic cells.
10. Diagnostic methods based on molecular cloning, gene therapy.
11. Genetically modified organisms – EU legislation.
12. Commercial use of molecular cloning, prospective, protection. Biotechnologies.
13. Computer techniques in molecular cloning.
Syllabus of practical lessons:
1. Purification of plasmid DNA
a) analytical,
b) preparative,
c) determination of DNA concentration
2. Purification of chromosomal DNA
a) analytical,
b) preparative,
c) differentiation of plasmid and chromosomal DNA.
3. Electrophoretic differentiation and visualisation of DNA
a) preparation of agarose gels,
b) preparation of polyacrylamide gels,
c) visualisation of DNA.
4. Use of restriction endonucleases
a) complete splitting by restriction endonucleases,
b) partial splitting by restriction endonucleases,
c) construction of simple physical maps.
5. Isolation of genes from plasmid or chromosomal DNA
a) methods of separation of DNA genes from agarose gel,
b) purification of isolated genes,
c) amplification of isolated fragment by PCR.
6. Use of vectors in preparation of recombinant DNA
a) for prokaryotic systems
b) for eukaryotic systems
c) amplification of eukaryotic DNA in prokaryotic cells
d) inducible or dependent vectors
7. Preparation of recombinant DNA – genetically modified organisms
a) preparation of suitable vector system,
b) ligation,
c) transformation
8. Amplification of recombinant DNA in vivo
a) construction of „gene library“,
b) preparation of „competent cells“,
c) transformation.
9. Selection of required clones
a) selection on the basis of antibiotic-resistance,
b) selection on the basis of other phenotype properties,
c) restriction – endonuclease analysis of recombinant DNA.
10. Methods of testing the products of recombinant DNA
a) in vivo,
b) in vitro,
c) mutation,
d) utilization of transpozones.
11. Transfer of genetic information into the eukaryotic system
a) work with cell line,
b) transformation into the eukaryotic system,
c) selection methods.
12. DNA diagnostic methods
a) PCR,
b) hybridization,
c) non-radioactive labeling of DNA, Southern blotting.
d) Inactivation of functional genes
e) Genetically modified micro-organisms.
f) Test.
13. Evaluation of student’s activity
- Giving credits.
Question areas for examination:
1. Principles of preparation of recombinant DNA: Isolation and purification of nucleic acids, separation of nucleic acids (types of electrophoresis, PFGE, 2D electrophoresis); construction of gene libraries, principles of gene isolation.
2. Enzymes in recombinant DNA techniques: Restriction endonucleases, methylases, DNA and RNA polymerases, reverse transcriptases, ligases, kinases, phosphatases, proteases; Principles of physical mapping of nucleic acids. Regulatory signals affecting gene expression.
3. Selection and analysis of prepared clones: Selection and analysis of clones (physical analysis, functional detection, hybridization and serological methods).
4. Vectors: Types of cloning vectors – their properties and use, expression systems; recipient strains, methods of „insertion of genetic information“ into host cells.
5. Mutagenesis In vitro: methods and their practical use.
6. Hybridization methods: Radioactive and non-radioactive labeling; types of hybridization methods.
7. DNA diagnostic methods: PCR – principle, types, conditions, designing primers, technique variations.
8. Sequencing of nucleic acids: Methods of DNA sequencing (Sanger, Maxam-Gilbert).
9. Genetically modified organisms: Preparation, use, safety, legislation.
10. Biotechnological processes: Division of biotechnologies, their use.
Recommended literature
Ausubel, F.M., Brent, R., Kingston, R.E., Moore, D.D., Seidman, J.G., Smith, J.A., Struhl, K.: Current Protocols in Molecular Biology. Greene Publ. Assoc. and Wiley - Interscience, New York, 1989.
Holoda E., Pistl J., Pilipčinec E.: Microbiology. General microbiology and bacterial genetics, Part 2. University of Veterinary Medicine in Košice. 2008
McPherson, M.J., Quirke, P. and Taylor, G.R.: PCR a practical approach. Oxford University Press, 1993, str. 253
Ratledge, C., Kristiansen, B.: Basic biotechnology. Cambridge University Press: http://books.google.com/
Watson, D. J., Hopkins, N.H., Roberts, J.W., Steiz, J.A., Weiner, A.M.: Molecular Biology of the Gene. The Benjamin Cummings Publishing comp., Inc., California
Conditions for completion of course
Content prerequisite:
The students will obtain new knowledge about structure, function, mechanisms of regulation and expression of functional genes and basic information on gene therapy, surplus production of important substances and usability of recombinant DNA in biotechnologies.
Continuous assessment:
Practical work, protocols, elaboration of seminary work.
Conditions for completion of course:
Credit: 100 % active participation on the lessons and elaboration of seminary work. Exam is written (test).
Final assessment:
Form of evaluation of study results: on the basis of continuous evaluation, seminary work and written form (test).
LANGUAGE, WHICH KNOWLEDGE IS NEEDED TO PASS THE COURSE
  english   
NOTES
Minimal count of students for compulsory optional subject Basics of genetic engineering is 5. Maximal count of students for this subject is 8.
 
Evaluation of the course
Total number of evaluated students: 1
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Date of last modification: 30.11.2022
Approved by: Tutot Dr. h. c. Prof. MVDr. Jana Mojžišová, PhD.
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