ANATOMIA COMPARATA ED EVOLUZIONE BIOLOGICA 1
Module Biological Evolution

Academic Year 2026/2027 - Teacher: DEBORAH VICARI

Expected Learning Outcomes

At the end of the course, the student must demonstrate that they have acquired the following skills:


• Knowledge and understanding

In particular, they should possess knowledge and understanding of zoological classification and its role in the study of evolutionary relationships, as well as be familiar with mechanisms of microevolution, such as stochastic and directional processes, and the fundamentals of phylogenetics.


• Apply knowledge and understanding

Regarding the ability to apply this knowledge, they should be able to critically analyse the concept of 'species', recognising its limitations through practical examples, interpret and discuss the basic methods for reconstructing phylogenetic trees, and connect microevolutionary processes to phenomena such as macroevolution and speciation.


• Making judgements

Furthermore, it is important to develop autonomous judgement through critical analysis of case studies.


• Communication skills

In this way, the student will improve their communication skills using appropriate scientific language to describe biological and evolutionary processes.


• Learning skills

Finally, the student should be able to independently utilise educational materials, such as concept maps and texts, to deepen their understanding of the topics covered.

Course Structure

The teaching is organised into:

  • Lectures: Supported by the use of concept maps and learning objectives to facilitate the outlining of each individual lesson and the developmental processes. It is possible to request the course to be delivered entirely in English.
  • Interactive teaching: Presentation of practical cases and concrete examples. Guided discussion sessions are planned to stimulate critical thinking. Some of the questions discussed in class may form part of the final assessment to encourage progressive preparation. Interactive quizzes will be used at the end of each lesson to test understanding and focus on the key points of the lessons.

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.

Required Prerequisites

No specific prerequisites are required. The course is designed to be accessible even to students without prior in-depth knowledge, as all fundamental concepts will be revisited during the lessons.

Attendance of Lessons

The course lasts 21 hours and, according to the study programme, requires mandatory attendance at the lessons (at least 60%).

Detailed Course Content

The Classification of Organisms. 1- Carl Linnaeus and the first system of classification and binomial nomenclature. 2- The taxonomic order of the classification system. 3- Explain why classification is useful and how modern technology has contributed to its improvement. 


The Concept of Species. 1- Analyse the different concepts of species and evaluate their limitations through concrete examples from the real world. 2- Interpret the species from a multidimensional perspective, recognising its dynamic and continuous nature (one-dimensional and multi-dimensional views). 


Population and Variability. 1- Link species and subspecies, illustrating how geographical variation influences differences between populations. 2- The role of DNA in the transmission of traits. 3- Introduce population genetics and recognise what a population is and how genetic variability among individuals is generated. 


Stochastic Evolutionary Mechanisms. 1- Explain the role of mutations as the origin of genetic and evolutionary variability. 2- Recognise the importance of functional, regulatory, and neutral mutations in evolutionary and applied processes. 3- Connect mutations to developmental mechanisms (Evo-Devo). Gene flow, genetic drift, bottleneck effect, founder effect. 


Directional Microevolutionary Mechanisms. 1- Understand Darwin’s role in the theory of natural selection. 2- Identify and describe the main types of natural selection: directional, diversifying, and stabilising, with practical examples. 3- Summarise the process through which natural selection drives evolution and understand the concept of adaptation. 


Coevolution. 1- Understand the concept of coevolution as a reciprocal, simultaneous, and heritable process. 2- Analyse the multiple interactions of diffuse coevolution and the role of arms races in adaptation. 3- Explore the host-parasite system as a model for studying coevolution. 4- Mimesis as a phenotypic coevolutionary outcome. 


Speciation. Reproductive isolation prezygotic and postzygotic with examples. Hybridisation. Dobzhansky/Muller model. Allopatric, sympatric, and parapatric speciation. Drivers of speciation. Ecological speciation. 


Phylogeny. How to read an evolutionary tree. Monophyletic, paraphyletic, and polyphyletic clades. Analogies and homologies. Using derived characters to infer phylogenies. Applying the principle of maximum parsimony to a molecular systematic problem. Fossils, extinction, how to use fossils for phylogenetic analysis in macroevolution. 


Macroevolution. 1- Understand the definition and differences from microevolution. 2- Analyse the main data sources and methods used. 3- Examine the continuity or discontinuity of the evolutionary process. Punctuated equilibrium model, gradualism, and punctuated gradualism. 4- Assess the rates of evolutionary change/speciation or diversification. Extinction rates. Adaptive radiation. Comparative methods for studying the evolution of morphological traits.

Textbook Information

  • Suggested texts:
I. Campbell, Reece, et al., Biology: Mechanisms of Evolution and Origins of Diversity, Pearson. 

II. Ferraguti and Castellacci – EVOLUTION. MODELS AND PROCESSES – Pearson.


  • Teaching material:
III. course slides, conceptual maps, and supplementary handouts provided by the lecturer through official channels.  

Course Planning

 SubjectsText References
1 Introduction and classification III
2The Concept of SpeciesIII
3Population and VariabilityIII
4Stochastic Evolutionary MechanismsIII
5Directional Microevolutionary Mechanisms. III
6CoevolutionIII
7SpeciationIII
8 Models of evolution and evolutionary novelties III
9Extinction, fossils, and biodiversity III
10PhylogenyIII
11PhylogenyIII

Learning Assessment

Learning Assessment Procedures

Assesment

The assessment will take place through a written exam (duration: 60 minutes), consisting of 20 multiple-choice questions aimed at evaluating theoretical knowledge and the ability to apply this knowledge to practical cases:

 

Tipologia Domande

Numero

Punti ciascuna

Totale

Base

10

1

10

Intermedie

7

2

14

Avanzate

3

2

6

Totale

20

-

30


Passing threshold: To pass the exam, students must achieve a minimum score of 18/30. 


Evaluation: The evaluation will emphasize content mastery, analytical and synthesis abilities, and the appropriateness of using technical language. 


To ensure equal opportunities and in compliance with current laws, interested students may request a personal interview in order to plan any compensatory and/or dispensatory measures based on educational objectives and specific needs. Students can also contact the CInAP (Centro per l’integrazione Attiva e Partecipata — Servizi per le Disabilità e/o i DSA) referring teacher within their department (https://www.cinap.unict.it/content/referenti).

 

Examples of frequently asked questions and / or exercises

  1. Most comprehensive biological concept of species [points 1]
  2. Orders the steps involved in natural selection [points 2]
  3. Observes the geographical distribution of the subspecies of Phylloscopus trochiloides shown on the map. Which of the following statements describes this distribution? [points 2]
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