SubjectsSubjects(version: 953)
Course, academic year 2023/2024
  
Environmental Microbiology - E320001
Title: Environmental Microbiology
Guaranteed by: Department of Biochemistry and Microbiology (320)
Faculty: Faculty of Food and Biochemical Technology
Actual: from 2012
Semester: both
Points: 5
E-Credits: 5
Examination process:
Hours per week, examination: 2/1, Ex [HT]
Capacity: winter:unknown / unknown (unknown)
summer:unknown / unknown (unknown)
Min. number of students: unlimited
Language: English
Teaching methods: full-time
Teaching methods: full-time
Level:  
For type:  
Note: you can enroll for the course in winter and in summer semester
Guarantor: Macková Martina prof. Dr. Ing.
Uhlík Ondřej prof. Ing. Bc. Ph.D.
Examination dates   Schedule   
Literature

Pletsch M., de Araujo B.S., Charlwood B.V.: Novel biotechnological approaches in enviromental remediation research. Biotechnology Advances 17, 679-687, (1999).

Hurst a kol. Manual of Environmental Microbiology. 2nd edition, 2002, ASM Press, Washington DC

Last update: MACKOVAM (28.01.2008)
Teaching methods

lectures

Last update: MACKOVAM (28.01.2008)
Requirements to the exam

Basic knowledge of biology, inorganic and organic chemistry

Last update: MACKOVAM (28.01.2008)
Syllabus

1. Introduction to the basic terms in environmental microbiology and environmental ecology.

2. Major biological cycling of carbon, hydrogen, nitrogen, oxygen, and sulfur catalyzed by microorganisms.

3. Diversity of microorganisms that catabolize organic compounds. Microbial genera known to degrade organic compounds.

4. Importance of microbial diversity. Evolution of biodegradative/biocatalytic pathways.

5. Methodology – biochemical, molecular approaches of microbial development, growth and metabolic properties.

6. Metabolic logic and pathway maps. Catabolic pathways of myriad compounds funnel into a limited set of key intermediates (degradation pathways of polyclic aromatic hydrocarbons, polychlorinated biphenyls, nitroaromatic compounds, substituted aliphatic hydrocarbons, accumulation of heavy metals etc).

7. Issues in aquatic and soil microbiology and ecology, directed to biodegradation of harmful pollutants.

8. Metagenomics.

9. Methods used for isolation of microbes, detection and quantification of their activities. Predicting microbial biocatalysis and biodegradation.

10. Molecular biology techniques of biodiversity and microbial community analysis (PCR, TGGE, RFLP).

11. Basic knowledge of plant metabolism of xenobiotics, similarities and differences with microbes.

12. Action of individual species, activities of the communities, interactions between consortia of microorganisms, microorganisms and plants in real contaminated environments.

13. Possibilities to improve degradation processes: construction of genetically modified organisms with enhanced degradative abilities (microbes and plants), enhance bioavailability of the xenobiotics and interactions of indigenous organisms.

14. Test.

Last update: MACKOVAM (28.01.2008)
 
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