ANALISI DEI FARMACI E DEI PRODOTTI PER LA SALUTE 3 A - L
Academic Year 2026/2027 - Teacher: SIMONE RONSISVALLEExpected Learning Outcomes
Course Structure
Delivery mode
Traditional classroom teaching, with laboratory activities. English-friendly course. (Field pre-filled by the teaching office according to the Academic Regulations of the degree programme.)
Descriptive text for delivery mode
The course comprises a total of 58 hours, divided into 28 hours of lecture-based teaching and 30 hours of interactive teaching.
Lecture-based teaching — 28 hours. Classroom lectures supported by the projection of slides, spectra and demonstration videos, devoted to presenting the theoretical foundations of analytical techniques. It contributes primarily to the achievement of knowledge and understanding outcomes.
Interactive teaching — 30 hours, distributed as follows:
• individual-bench laboratory sessions (22 hours): qualitative and quantitative analysis of active ingredients, chemical identification tests, determination of physico-chemical constants and chromatographic separations, with individual written reports;
• problem-based learning sessions on real analytical cases (6 hours) drawn from pharmacopoeia monographs and primary literature, in which students, working in small groups, define the analytical objective and propose a solution strategy, subsequently discussed in plenary;
• presentation and discussion in class of the group project (2 hours) for the development and validation proposal of an analytical method;
• formative self-assessment quizzes at the end of the main thematic blocks, with immediate feedback, carried out within the hours indicated above.
Consistency between teaching methods and expected learning outcomes. Interactive teaching activities contribute to the achievement of ability to apply knowledge and understanding (laboratory sessions, PBL), making judgements (critical interpretation of data, reasoned method selection), communication skills (laboratory reports, project presentation) and learning skills (independent consultation of monographs and primary sources).
If the course is delivered in blended or remote mode, appropriate adjustments may be made to the above, in order to ensure consistency with the syllabus.
Students may use AI as a study aid, in compliance with applicable regulations—including those regarding copyright and the use of intellectual works, as outlined in section 5.1 of the guidelines (https://www.unict.it/it/ateneo/cidia-centro-l%E2%80%99informatica-la-digitalizzazione-e-l%E2%80%99intelligenza-artificiale)
Required Prerequisites
The following knowledge is essential for effective attendance of the course (cultural prerequisites):
1. principles of general and inorganic chemistry: acid-base equilibria, partition equilibria, solutions and their concentration;
2. organic chemistry: structure, nomenclature and reactivity of the main functional groups, stereochemistry and chirality;
3. principles of classical qualitative and quantitative analysis (gravimetry, volumetry) and basic statistical treatment of analytical data;
4. elements of physics: electromagnetic waves, the electromagnetic spectrum, electrostatics.
Basic computer skills for processing experimental data are useful.
Formal prerequisites: as established by the Academic Regulations of the degree programme, admission to the examination is subject to passing the examinations listed therein as prerequisites.
Attendance of Lessons
Attendance is compulsory, as established by the Academic Regulations of the degree programme: admission to the examination requires absences not exceeding 30% of the total teaching hours. Attendance of laboratory sessions is a necessary condition for admission to the examination.
Active participation in lectures and interactive teaching activities is decisive for achieving the expected learning outcomes: problem-based learning sessions, the group project and formative quizzes with immediate feedback are designed to develop applied competences and critical skills that are difficult to acquire through individual study alone.
Detailed Course Content
1. Introduction to instrumental analytical methods. Classification of instrumental analytical methods. Criteria for method selection. Figures of merit.
2. Spectroscopic methods. UV-Vis absorption and emission spectroscopy (fluorescence and phosphorescence). IR absorption spectroscopy. Nuclear magnetic resonance spectroscopy (¹H- and ¹³C-NMR). Integrated spectral interpretation.
3. Identification of functional groups and determination of physico-chemical constants. Chemical identification tests on compounds of pharmaceutical interest according to pharmacopoeia monographs.
4. General principles of the chromatographic process. Distribution constant, retention time, capacity factor. Resolution. Selectivity. Efficiency: plate theory; van Deemter equation. Chromatographic peak asymmetry.
5. Liquid chromatography. Stationary and mobile phases. Liquid-solid, liquid-liquid, ion-exchange, ion-pair, size-exclusion and affinity chromatography. Column chromatography and thin-layer chromatography (TLC). HPLC: instrumentation. Enantioselective separation: direct method using enantioselective stationary phases.
6. Gas chromatography and capillary electrophoresis. GC: instrumentation, types of stationary phase, detection. CE: instrumentation, theoretical principles, analytical parameters.
7. Mass spectrometry and hyphenated techniques. Classes of instrumentation, ionisation techniques, fragmentation analysis, analysers and detectors. HPLC-DAD, HPLC-MS, GC-MS.
8. Qualitative and quantitative analysis. External and internal standard methods. Sample preparation and extraction methods: liquid/liquid and liquid/solid extraction, supercritical fluid extraction (SFE), solid-phase extraction (SPE). Preparation of samples from complex biological matrices.
9. Analytical method validation. Linearity, precision, accuracy, reproducibility, LOD, LOQ. Development of chromatographic methods for quality control and for pre-clinical and clinical research. Determination of drug/target protein interactions by high-performance affinity chromatography (HPAC).
Textbook Information
- R.M. Silverstein, F.X. Webster, Identificazione spettroscopica di composti organici - Ambrosiana Editrice, Milano, 2016
- V. Cavrini. Principi di Analisi Farmaceutica, ultima edizione. Società Editrice Esculapio, Bologna
- J.F. Holler, S.R. Crouch. Fondamenti di chimica analitica di Skoog e West. EdiSES, III edizione 2015
- Veronika R. Meyer. Practical High-Performance Liquid Chromatography, 5th Edition. Wiley, New York
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Learning Assessment
Learning Assessment Procedures
Examples of frequently asked questions and / or exercises
1. Describe the theoretical principles of chromatographic separations and discuss approaches to improving resolution in liquid chromatography.
2. Illustrate the theoretical principles and applications of capillary electrophoresis, highlighting its advantages and limitations compared with HPLC.
3. Describe the block diagram of a mass spectrometer and the main ionisation techniques.
4. Describe the chemical identification of amines of pharmaceutical interest.
5. Illustrate the validation parameters of an analytical method and the experimental procedures used to determine them.
6. Exercise: given a chromatogram with two partially resolved peaks (retention times and widths provided), calculate the resolution, capacity factor and number of theoretical plates, and propose two changes to the chromatographic conditions to improve the separation.
7. Exercise: given the IR, ¹H-NMR, ¹³C-NMR and MS spectra of an unknown compound of pharmaceutical interest, propose its structure, justifying the assignment of the diagnostic signals.
8. Analytical case: a basic, lipophilic active ingredient must be assayed in human plasma at nanomolar concentrations. Propose a complete strategy (sample preparation, separation technique, detection, standards), justifying each choice.