Studying at the University of Verona
Here you can find information on the organisational aspects of the Programme, lecture timetables, learning activities and useful contact details for your time at the University, from enrolment to graduation.
Study Plan
The Study Plan includes all modules, teaching and learning activities that each student will need to undertake during their time at the University.
Please select your Study Plan based on your enrollment year.
1° Year
| Modules | Credits | TAF | SSD |
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One course among the followingOne course among the followingTwo courses among the followingThree courses among the following2° Year It will be activated in the A.Y. 2026/2027
| Modules | Credits | TAF | SSD |
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| Modules | Credits | TAF | SSD |
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One course among the followingOne course among the followingTwo courses among the followingThree courses among the following| Modules | Credits | TAF | SSD |
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| Modules | Credits | TAF | SSD |
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Two courses among:
- 2nd year - Molecular farming, Toxicology and applied pharmacology, Systems biology, Radioactivity and radiation protection - delivered in 2026/2027
- 1st and 2nd year - Biotechnology in neuroscience, Clinical proteomics - delivered in 2025/2026 and 2026/2027
A.A. 2025/2026: BIOTECHNOLOGY IN NEUROSCIENCE not available Legend | Type of training activity (TTA)
TAF (Type of Educational Activity) All courses and activities are classified into different types of educational activities, indicated by a letter.
Systems biology (2026/2027)
Teaching code
4S003680
Academic staff
Coordinator
Credits
6
Also offered in courses:
- Systems biology of the course Master's degree in Medical Bioinformatics
Language
English
Scientific Disciplinary Sector (SSD)
MED/04 - EXPERIMENTAL MEDICINE AND PATHOPHYSIOLOGY
Period
II semestre dal Mar 1, 2027 al Jun 11, 2027.
Courses Single
Authorized
Learning objectives
The class will provide the students with an overview of different aspects of Systems Biology applied to life and medical science. The class will be initially focused on general aspects of Systems Biology, including the concepts of complexity, emergent properties, abstraction, mathematical modeling and biological networks. the course will provide a number of examples regarding general principles and methods typical of systems biology, data-bases and software widely used in the field. Furthermore, in the course we will introduce as propaedeutic background, some examples of complex systems in biology, including signal transduction and metabolic networks. In the second part of the course we will proceed with the description of complex systems relevant to medicine, such as the immune systems, autoimmune diseases and cancer in the context of systems biology. Several examples will be explained and extensively illustrated. Moreover, a general view of systems biology in the context of a transition toward personalized medicine will be proposed. In the context of the degree, the class will provide the necessary bases to understand the interdisciplinary nature of biomedicine and bioinformatics.