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Lecture
Introduction to Metabolism
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Related lectures (30)
Cellular Communication and Metabolism: Energy Transformation Principles
Discusses cellular communication, metabolism, energy transformation, and the role of enzymes in biochemical reactions.
Enzymes: Basic Concepts and Kinetics
Delves into enzymes' basic concepts, kinetics, and catalytic strategies for reaction acceleration.
Thermodynamics: Energy Transformation
Covers energy transformation in thermodynamics, discussing laws, entropy, and spontaneity criteria for reactions.
Enzymes: Basic Concepts and Kinetics
Explores enzymes' catalytic strategies, kinetics, and inhibition, emphasizing their role in accelerating biochemical reactions.
Cell Metabolism Fundamentals
Covers the basics of cell metabolism, including energy conversion, major pathways, enzymatic regulation, and ATP's role as the cell's energy currency.
Energy Minimization in Biological Systems: Equilibrium Models
Covers energy minimization models in biological systems, focusing on equilibrium and the roles of entropy and hydrophobicity.
Energy: Cellular Respiration and Photosynthesis
Explores energy generation in cells through respiration and photosynthesis, emphasizing ATP synthesis and metabolic pathways.
Thermodynamics: Chemical Reactions
Covers the basics of thermodynamics, chemical reactions, energy conservation, and the laws of perfect gases.
First Principle: General Statement
Covers the first principle of thermodynamics, energy conservation, system isolation, and external processes affecting system energy.
Thermodynamics: Energy, Work, and Chemical Reactions
Covers thermodynamics, focusing on energy, work, and their roles in chemical reactions.
Enzymes: Catalytic Strategies
Explores enzyme catalytic strategies, including proteases and carbonic anhydrase, inhibition mechanisms, and specificity of serine proteases.
Thermodynamics: Fundamentals and Applications
Explores the basics of thermodynamics, including energy transformation, laws, and entropy.
Phase Transitions: Stability Criteria
MOOC: Thermodynamics I
Explores phase transitions and stability criteria in thermodynamics, emphasizing entropy, internal energy, and thermodynamic potentials.
Enzyme Kinetics: Understanding Reaction Rates and Mechanisms
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Covers enzyme kinetics, focusing on reaction rates, the Michaelis-Menten equation, and factors affecting enzyme activity.
Systems Biology: Warburg Effect
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Explores the Warburg Effect in cancer cells, discussing metabolic shifts and kinetic model construction.
Metabolic Flux Balance Analysis
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Covers modeling and analyzing complex biological networks, focusing on metabolism and signaling, using techniques like flux balance analysis and kinetic modeling.
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Flux Balance Analysis: Optimization and Phenotypic Phase Planes
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Explores Flux Balance Analysis principles, optimization, Phenotypic Phase Planes, and bioenergetics in metabolic networks.
Bioenergetics: Cellular Energy Generation
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Explores cellular energy generation through bioenergetics and metabolic pathways.
Thermodynamics in Metabolic Pathways
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Delves into applying thermodynamics in metabolic pathways, discussing constraints, bi-directional reactions, and estimation methods.
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