
Evolutionary Biology Course
Master the full scope of evolutionary biology, from Mendelian genetics and population dynamics to macroevolution and human origins. This course gives you the theoretical depth and analytical tools used by working scientists. Whether you're advancing your research or building a rigorous foundation, this is the most comprehensive evolutionary biology program available.
What you will learn:
You will develop a thorough understanding of natural selection, genetic drift, gene flow, and mutation as forces shaping populations over time. You will learn to reconstruct phylogenetic trees, date evolutionary divergences, and apply comparative methods to test biological hypotheses. The course covers evo-devo, coevolution, macroevolution, and the Extended Evolutionary Synthesis. You will also gain practical skills in population genomics, bioinformatics pipelines, and statistical analysis of evolutionary data. By the end, you will be equipped to apply evolutionary thinking to medicine, conservation, and agriculture.
How you study in practice Evolutionary Biology Course
How you practise Evolutionary Biology Course
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Course Content
8 Chapters • 36 LessonsDuration between 4 and 360 hours (you decide)
Chapter 1HideHide detailsSee detailsFoundations of Evolutionary Theory
Foundations of Evolutionary Theory
Lesson 1 • Evidence for Evolution
Surveys fossil, biogeographic, molecular, and anatomical evidence. Demonstrates how independent data streams converge on evolutionary conclusions.
Lesson 2 • Core Principles of Natural Selection
Defines variation, heritability, and differential reproduction as the engine of selection. Links these principles to observable outcomes in populations.
Lesson 3 • Units and Levels of Selection
Examines genes, organisms, and groups as potential targets of selection. Clarifies debates about inclusive fitness and multilevel selection.
Lesson 4 • History of Evolutionary Thought
Traces ideas from pre-Darwinian naturalists to the Modern Synthesis. Provides context for why evolutionary theory replaced earlier frameworks.
Chapter 2HideHide detailsSee detailsGenetics and Heredity in Evolution
Genetics and Heredity in Evolution
Lesson 1 • Mendelian Genetics Review
Covers alleles, dominance, segregation, and independent assortment. Establishes the genetic vocabulary needed for population-level analysis.
Lesson 2 • Quantitative Genetics Basics
Introduces heritability, polygenic traits, and the breeder's equation. Bridges individual genotype-phenotype mapping to population-level response to selection.
Lesson 3 • Molecular Basis of Genetic Variation
Explains mutations, recombination, and transposable elements as sources of variation. Connects molecular events to phenotypic diversity.
Lesson 4 • Epigenetics and Inheritance
Covers DNA methylation, histone modification, and transgenerational epigenetic inheritance. Evaluates their evolutionary significance beyond classical genetics.
Chapter 3HideHide detailsSee detailsPopulation Genetics and Microevolution
Population Genetics and Microevolution
Lesson 1 • Gene Flow and Migration
Quantifies allele exchange between populations and its homogenizing effect. Connects gene flow to speciation barriers and local adaptation.
Lesson 2 • Mutation as an Evolutionary Force
Evaluates mutation rates and their weak but directional pressure on allele frequencies. Distinguishes mutation pressure from selection in shaping variation.
Lesson 3 • Detecting Selection in Populations
Applies statistical tests to identify signatures of positive, purifying, and balancing selection. Prepares students to interpret genomic scan results.
Lesson 4 • Genetic Drift and Small Populations
Models stochastic allele frequency change in finite populations. Explains bottleneck and founder effects with conservation and evolutionary implications.
Lesson 5 • Hardy-Weinberg Equilibrium
Derives the null model of allele and genotype frequencies under no evolution. Serves as the baseline for detecting evolutionary forces in populations.
Chapter 4HideHide detailsSee detailsPhylogenetics and Evolutionary Trees
Phylogenetics and Evolutionary Trees
Lesson 1 • Horizontal Gene Transfer and Reticulate Evolution
Addresses gene flow, hybridization, and HGT as sources of non-tree-like evolution. Extends phylogenetic thinking to networks and reticulate histories.
Lesson 2 • Molecular Phylogenetic Methods
Covers distance, maximum likelihood, and Bayesian methods for tree reconstruction. Compares their assumptions, strengths, and computational requirements.
Lesson 3 • Using Trees to Test Hypotheses
Demonstrates ancestral state reconstruction, trait mapping, and comparative methods. Shows how phylogenies control for shared ancestry in evolutionary studies.
Lesson 4 • Principles of Phylogenetic Inference
Introduces homology, synapomorphy, and the logic of cladistics. Establishes the conceptual framework for all tree-building methods.
Lesson 5 • Molecular Clocks and Divergence Dating
Applies substitution rate models to estimate divergence times. Integrates fossil calibration points with molecular data for time-calibrated trees.
Chapter 5HideHide detailsSee detailsMacroevolution and the Fossil Record
Macroevolution and the Fossil Record
Lesson 1 • Patterns in the Fossil Record
Analyzes gradualism, punctuated equilibrium, and mass extinction events. Evaluates how preservation biases affect macroevolutionary inference.
Lesson 2 • Adaptive Radiation and Convergence
Examines rapid diversification into ecological niches and independent evolution of similar traits. Illustrates how ecology shapes macroevolutionary trajectories.
Lesson 3 • Speciation Mechanisms
Covers allopatric, sympatric, parapatric, and peripatric speciation models. Connects population genetic processes to the origin of reproductive isolation.
Lesson 4 • Extinction Dynamics and Diversity
Models background and mass extinction rates and their effects on global biodiversity. Links extinction patterns to evolutionary opportunity and lineage turnover.
Chapter 6HideHide detailsSee detailsAdaptation, Constraint, and Evo-Devo
Adaptation, Constraint, and Evo-Devo
Lesson 1 • Phenotypic Plasticity and Canalization
Analyzes reaction norms, developmental plasticity, and canalization as evolutionary phenomena. Connects plasticity to the origin of novel traits.
Lesson 2 • Developmental Genetics of Body Plans
Covers Hox genes, signaling pathways, and gene regulatory networks controlling body plan. Links developmental toolkit conservation to macroevolutionary patterns.
Lesson 3 • Modularity and Evolvability
Examines how modular organization of genomes and phenotypes facilitates evolution. Evaluates evolvability as a property shaped by selection.
Lesson 4 • Adaptation and Its Limits
Defines adaptation rigorously and distinguishes it from exaptation and spandrels. Evaluates genetic, developmental, and historical constraints on adaptive evolution.
Chapter 7HideHide detailsSee detailsCoevolution and Ecological Interactions
Coevolution and Ecological Interactions
Lesson 1 • Host-Parasite Coevolution
Models antagonistic coevolution, Red Queen dynamics, and immune evasion. Connects parasite-driven selection to host genetic diversity.
Lesson 2 • Mutualism and Coevolutionary Dynamics
Examines pollination, seed dispersal, and endosymbiosis as coevolved mutualisms. Analyzes how mutualism can shift to parasitism under changed conditions.
Lesson 3 • Foundations of Coevolution
Defines coevolution and distinguishes diffuse from pairwise coevolution. Establishes criteria for identifying genuine coevolutionary dynamics.
Lesson 4 • Predator-Prey Arms Races
Covers escalation, mimicry, and chemical defense as products of predator-prey coevolution. Evaluates the evolutionary escalation hypothesis.
Lesson 5 • Competition and Character Displacement
Analyzes competitive exclusion, niche partitioning, and character displacement as evolutionary outcomes. Links ecological competition to trait divergence.
Chapter 8HideHide detailsSee detailsHuman Evolution and Applied Evolutionary Biology
Human Evolution and Applied Evolutionary Biology
Lesson 1 • Evolutionary Approaches in Agriculture
Examines domestication genetics, pest resistance evolution, and sustainable breeding. Shows how evolutionary principles guide crop and livestock improvement.
Lesson 2 • Conservation Genetics and Evolutionary Biology
Uses evolutionary principles to manage genetic diversity in threatened populations. Connects effective population size, inbreeding, and adaptive potential to conservation outcomes.
Lesson 3 • Evolutionary Medicine
Applies evolutionary frameworks to disease susceptibility, antibiotic resistance, and cancer. Demonstrates how evolutionary thinking improves clinical and public health strategies.
Lesson 4 • Hominin Evolution and Fossil Evidence
Traces the hominin lineage from early australopiths to anatomically modern humans. Integrates fossil morphology with ancient DNA evidence.
Lesson 5 • Human Genomic Variation and Adaptation
Examines population structure, recent positive selection, and local adaptation in humans. Connects genomic data to phenotypic diversity across populations.
Your valid completion certificate
This course is for you:
Biology undergraduates: ready to move beyond introductory coursework into rigorous theory.
Graduate students: needing a structured foundation before diving into dissertation research.
Medical professionals: curious about how evolutionary thinking reshapes disease understanding.
Science educators: wanting deeper subject mastery to teach evolution with confidence.
Conservation practitioners: seeking the genetic and ecological theory behind their fieldwork.
Curious naturalists: driven to understand the mechanisms behind biodiversity and adaptation.
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