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Courses

Courses

Explore our wide range of courses, filtered by age, program type, and exam profile. Whether you’re interested in verbal or quantitative subjects, we have something to challenge and inspire you.

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  • Genetics and Food: From Molecule to Medicine

    Have you ever wondered how biomolecules or chemical compounds contained in food affect our genes? Why each of us perceives the taste of foods differentely or how certain nutrients influence human health on a molecular level? This course explores the fascinating correlation between food, the human genome and the potential application of food science in medicine, in an interdisciplinary manner.

    Students are introduced to fundamental concepts of food biochemistry and investigate the influence of nutrition in gene expression. Through the study of basic biological and pharmacological principles, they examine the crucial role of food science and technology in combating inflammations and serious diseases. Gene regulation, nutrigenomics and the study of novel edible materials with application in medicine are some of the key concepts of the exciting world which bridges food and medicine! Students also gain hands-on experience with laboratory techniques, involving gel electrophoresis, synthesis of polymeric materials for personalized medicine, and various biochemical assays (e.g. DNA extraction).

    Learning Objectives:
    • Study of the structure of nutrients and their impact on human body function.
    • Investigate the bioactivity of nutrients and its application in treatment of various diseases.
    • Practice laboratory techniques used in biosciences and food industry.
    • Develop and communicate cutting-edge projects through poster and oral presentations.

    Inside the Brain: Psychology Meets Medicine

    How does the brain create thoughts, emotions, and behavior? What happens when it is injured or affected by illness?

    In this interdisciplinary course, students will explore the fascinating connection between neuroscience, psychology, and medicine. Through interactive activities, real clinical case studies, and hands-on experiments, participants will learn how brain structure and biology influence memory, decision-making, personality, and mental health.

    The course also introduces modern medical technologies and ethical questions shaping the future of brain science.

    Introduction to Biomedical Sciences

    Which organ has over 400 functions? Are there liquid tissues in the human body? What factors contribute to the development of cancer? Much like Leonardo da Vinci’s fascination with human anatomy, our course delves into these intriguing questions! Drawing upon fundamental biological and chemical concepts, students explore the intricate anatomical and physiological mechanisms that govern normal human function, as an introduction to human biology and the science of medicine. Students learn about the human body’s different systems, including the digestive, cardiovascular, respiratory, musculoskeletal, excretory, nervous, endocrine, and immune systems, highlighting their interconnectedness. Laboratory activities encompass histology, anatomy and physiology (including dissections) and biochemistry techniques. Students also learn practical skills, such as suturing, and dive into group work, solving epidemiology mysteries and investigating the causes and cures for different diseases.

    Learning Objectives

    • Model the interrelatedness of three human body systems working together to maintain homeostasis. 
    • Demonstrate the skills and tools to complete scientific dissections.
    • Select, review and report on a disease or syndrome that impacts one human body system, including its causes, manifestation, symptoms and treatment methods. 

    Mathematical Modeling

    Mathematics is more than just numbers and symbols on a page. Applications of mathematics are indispensable in the modern world. Math can be used to determine whether a meteor will impact Earth, predict the spread of an infectious disease, or analyze a remarkably close presidential election. In this course, students create and evaluate mathematical models to represent and solve problems across a broad range of disciplines, including political science, economics, biology, and physics.

    Students begin with a review of some of the core mathematical tools in modeling, such as linear functions, lines of best fit, and exponential and logarithmic functions. Using these tools, students examine models such as those used in population growth and decay, voting systems, or the motion of a spring. Students also learn how to use Euler and Hamilton circuits to find the optimal solutions in a variety of real-world situations, such as determining the most efficient way to schedule airline travel. A introduction to probability and statistics lead into a study of using deterministic versus stochastic models to predict the spread of an epidemic and explore classic mathematical problems such as the traveling salesman problem, birthday paradox, and light switching problem.  Students are introduced to logic proofs by induction and contradiction.  Students leave this course familiar with all steps of the modeling process, from defining the problem and making assumptions, to assessing the model for strengths and weaknesses.

    Nanotechnology: Billionths at Work!

    So small yet so powerful … We cannot see it, but it can change our everyday life! “Nano” indicates something small, something minute, about a billion times less than a meter. In these dimensions materials can go ‘crazy’ and display unique, unprecedented properties. How does the size of a material affect its properties? How do some plants manage to repel water and clean themselves? How can I make my clothes stain resistant? How does the gecko lizard walk on the ceiling? How can a robot climb onto a glass window? How do all this relate to bio-mimicry and everyday life?

    Nanotechnology is linked to many disciplines, such as physics, biology, chemistry and mathematics, to produce useful applications with innovative properties. Through a series of approaches, including problem-solving, designing and conducting experiments, games, studying natural and artificial nanomaterials, searching for information, modeling, and group activities, students are introduced to the exciting world of science and technology at a nanoscale!

    Principles of Engineering Design

    What is the difference between science and engineering? What are the techniques that must be applied for successfully tackling any engineering challenge, from designing and building a bed-side table to conceptualizing and sending a shuttle to space? How can a group of engineers efficiently compartmentalize a multi-system project, allocate tasks and optimize the budget provided to solve a multifaceted constructional problem? This course explores a range of topics from physics and science and bridges the gap between pure theoretical knowledge and its practical application. Through daily doses of lectures, class discussions, problem-solving and plentiful hands-on lab activities, the students will be exposed to an array of concepts, varying from Newtonian dynamics and circuitry to fluid dynamics and thermal physics and through their application, complete engineering tasks of progressively increasing complexity. 

    Learning objectives:

    • Apply concepts from various topics of physics into practical constructional projects with strict requirements, aimed at tackling specific problems of varying complexity and constraints.
    • Train in the engineering design process, practical problem-solving and collaborative teamwork to complete assigned engineering design and production tasks. 
    • Develop and train a variety of technical skills, including detailed technical drawings of projects, precision soldering of electronic components and wood work skills.