
Geobiology Training Programme
Geobiology Training gives you a rigorous, end-to-end command of how life and Earth have shaped each other across billions of years. From Archaean biosignatures to modern microbial mats, you will master the analytical tools, field protocols, and conceptual frameworks that define this discipline. This course is built for scientists who need both depth and practical skill.
What you will learn:
You will gain an understanding of biogeochemical cycles, microbial metabolism, and Earth's geologic record of life. The course covers stable isotope geochemistry, biomineralisation, mineral‑microbe interactions, and sedimentary environments in technical detail. You will learn standard field sampling protocols and laboratory methods such as molecular microbiology, electron microscopy, and geochemical instrumentation. Earth history is traced from Archaean conditions through the Great Oxidation Event to Cenozoic climate feedbacks. Applied topics include monitoring, astrobiology, bioleaching, and research communication. Supplementary modules introduce bioinformatics, remote sensing, geobiological modelling, and technologies like machine learning and single‑cell omics.
How you study in practice Geobiology Training Programme
How you practise Geobiology Training Programme
For companies looking to train their teams
With Dedika for businesses, the course includes exercises and examples tailored to your own business and the way your company needs.
Course content
8 Chapters • 40 LessonsDuration between 4 and 360 hours (you decide)
Chapter 1HideHide detailsSee detailsFoundations of Geobiology
Foundations of Geobiology
Lesson 1 • Overview of Earth's Biosphere
The distribution of life across surface, subsurface, and oceanic realms is surveyed. Students recognise the full spatial scope of geobiological processes.
Lesson 2 • Defining Geobiology as a Discipline
Geobiology's scope, history, and relationship to adjacent sciences are mapped. This context anchors all subsequent technical content in a unified framework.
Lesson 3 • Life's Chemical Requirements
Essential elements, energy sources, and redox chemistry needed by life are examined. This biochemical baseline supports later analysis of extreme and ancient environments.
Lesson 4 • Geological Time and Stratigraphy Basics
The geological timescale, stratigraphic principles, and relative dating methods are covered. Students can place biological events in correct temporal context.
Lesson 5 • Earth Systems and Biogeochemical Cycles
Major element cycles (C, N, S, P) and their coupling to Earth systems are introduced. Understanding these cycles is prerequisite for interpreting microbial and geological records.
Chapter 2HideHide detailsSee detailsMicrobial Diversity and Metabolism
Microbial Diversity and Metabolism
Lesson 1 • Extremophiles and Unusual Environments
Microorganisms thriving in thermal, acidic, alkaline, and high-pressure settings are profiled. Their adaptations inform models of early Earth and astrobiology.
Lesson 2 • Heterotrophic and Anaerobic Metabolisms
Fermentation, sulphate reduction, methanogenesis, and other anaerobic pathways are examined. Students connect these metabolisms to sediment diagenesis and mineral formation.
Lesson 3 • Microbial Community Ecology
Biofilm formation, syntrophic partnerships, and community succession are analysed. Community-level processes amplify individual metabolic effects on geochemistry.
Lesson 4 • Phylogenetic Framework of Microbial Life
The three-domain tree of life and major microbial lineages are presented. This taxonomy underpins identification of key geobiological actors.
Lesson 5 • Autotrophic Metabolic Pathways
Photosynthesis, chemolithotrophy, and carbon fixation pathways are detailed. These processes represent primary inputs of organic carbon to geological records.
Chapter 3HideHide detailsSee detailsBiosignatures and the Fossil Record
Biosignatures and the Fossil Record
Lesson 1 • Microbial Fossils and Stromatolites
Microfossil preservation, stromatolite morphology, and their environmental context are studied. These structures provide direct evidence of early microbial ecosystems.
Lesson 2 • Organic Geochemistry of Biosignatures
Biomarkers, lipid preservation, and diagenetic alteration of organic matter are covered. Students assess how molecular signals survive and transform over geological time.
Lesson 3 • Types of Biosignatures
Morphological, chemical, isotopic, and mineralogical biosignatures are classified. A systematic typology enables rigorous evaluation of ancient life evidence.
Lesson 4 • Taphonomy and Preservation Bias
Processes controlling what gets preserved, altered, or destroyed in the rock record are analysed. Recognising taphonomic bias is essential for accurate paleobiological interpretation.
Lesson 5 • Stable Isotope Geochemistry
Fractionation principles for C, S, N, and O isotopes and their biological drivers are explained. Isotope ratios serve as quantitative proxies for past metabolic activity.
Chapter 4HideHide detailsSee detailsMineral-Microbe Interactions
Mineral-Microbe Interactions
Lesson 1 • Carbonate and Silica Biomineralisation
Microbial carbonate precipitation and silicification processes are examined. These products form major rock-forming minerals and archive environmental conditions.
Lesson 2 • Microbial Roles in Soil Formation
Pedogenesis driven by microbial communities, root associations, and organic matter accumulation is covered. Soils represent a critical interface between the biosphere and lithosphere.
Lesson 3 • Iron and Sulphur Mineral Cycling
Microbial roles in pyrite formation, iron oxide precipitation, and sulphide cycling are detailed. These reactions dominate sediment geochemistry and preserve redox signals.
Lesson 4 • Weathering and Mineral Dissolution
Biotic weathering of silicates, carbonates, and sulphides by microorganisms and fungi is analysed. Weathering rates set long-term controls on atmospheric CO2 and nutrient flux.
Lesson 5 • Biomineralisation Mechanisms
Biologically induced and biologically controlled mineralisation pathways are contrasted. Understanding these mechanisms explains mineral textures used as biosignatures.
Chapter 5HideHide detailsSee detailsField and Laboratory Methods
Field and Laboratory Methods
Lesson 1 • Data Integration and Quality Control
Cross-validation of geochemical, microscopic, and molecular datasets and quality assurance practices are addressed. Integrated datasets reduce interpretive ambiguity in complex geobiological systems.
Lesson 2 • Microscopy and Imaging Techniques
Light microscopy, fluorescence, SEM, and TEM methods for visualising microbial and mineral textures are covered. Imaging provides direct morphological evidence for geobiological interpretations.
Lesson 3 • Field Sampling Strategies
Site selection, contamination prevention, and sample documentation protocols for rocks, sediments, and fluids are taught. Rigorous field practice ensures sample integrity for downstream analyses.
Lesson 4 • Geochemical Analytical Methods
ICP-MS, XRF, stable isotope mass spectrometry, and chromatographic methods are introduced. Selecting the right analytical tool depends on the geobiological question being addressed.
Lesson 5 • Molecular Microbiology Methods
DNA extraction, PCR, 16S rRNA gene sequencing, and metagenomics workflows for environmental samples are detailed. Molecular tools reveal community composition invisible to microscopy.
Chapter 6HideHide detailsSee detailsSedimentary Environments and Microbial Mats
Sedimentary Environments and Microbial Mats
Lesson 1 • Diagenesis in Organic-Rich Sediments
Early and late diagenetic reactions in organic-rich muds, including sulphate reduction and methanogenesis zones, are traced. Diagenesis controls mineral assemblages and isotope records.
Lesson 2 • Lacustrine and Marine Depositional Settings
Geobiological processes in lakes, shallow seas, and deep-ocean settings are compared. Environmental context determines which biosignatures are produced and preserved.
Lesson 3 • Reconstructing Palaeoenvironments
Proxy integration methods combining isotopes, mineralogy, and fossils to reconstruct ancient environments are practised. Students synthesise multiple lines of evidence into coherent palaeoecological narratives.
Lesson 4 • Sedimentary Structures from Microbial Activity
MISS, wrinkle structures, and microbially induced sedimentary textures are identified and interpreted. These structures extend the record of mat ecosystems into deep time.
Lesson 5 • Modern Microbial Mat Systems
Structure, zonation, and metabolic stratification of modern mats in hot springs, tidal flats, and hypersaline lakes are described. Modern analogues calibrate ancient mat interpretations.
Chapter 7HideHide detailsSee detailsGeobiology Through Earth History
Geobiology Through Earth History
Lesson 1 • Archaean Earth and Early Life
Hadean and Archaean conditions, origin of life hypotheses, and earliest biosignatures are reviewed. This sets the evolutionary and geochemical baseline for all subsequent chapters.
Lesson 2 • Great Oxidation Event and Its Consequences
The rise of atmospheric oxygen, its causes, and cascading geochemical effects are analysed. The GOE represents the most transformative geobiological event in Earth history.
Lesson 3 • Cenozoic Geobiology and Modern Analogues
Cenozoic climate-biosphere feedbacks, ocean acidification, and modern geobiological systems are connected to deep-time patterns. Students apply historical lessons to present-day monitoring.
Lesson 4 • Proterozoic Biosphere and Snowball Earth
Eukaryote evolution, Neoproterozoic glaciations, and cap carbonate sequences are examined. These events link biological innovation to global climate perturbations.
Lesson 5 • Cambrian Explosion and Phanerozoic Trends
The Cambrian radiation, skeletal biomineralisation, and Phanerozoic biogeochemical trends are traced. Metazoan evolution fundamentally altered sediment and carbon cycling.
Chapter 8HideHide detailsSee detailsApplied Geobiology and Research Design
Applied Geobiology and Research Design
Lesson 1 • Astrobiology and Planetary Geobiology
Biosignature detection strategies for Mars, icy moons, and exoplanets are developed using Earth analogues. Students evaluate habitability criteria and mission science objectives.
Lesson 2 • Geobiology in Resource and Energy Contexts
Microbial roles in ore deposit formation, hydrocarbon generation, and bioleaching are examined. These applications connect fundamental geobiology to economic geology and energy industries.
Lesson 3 • Communicating Geobiological Research
Scientific writing, figure design, peer review, and oral presentation skills specific to geobiology are developed. Effective communication ensures research findings reach and influence the broader scientific community.
Lesson 4 • Environmental Monitoring Applications
Geobiological indicators for contamination, remediation progress, and ecosystem health are applied. Monitoring frameworks translate geobiological science into actionable environmental management.
Lesson 5 • Designing a Geobiological Research Project
Hypothesis formulation, sampling design, method selection, and interpretive frameworks are integrated into a complete research plan. Students practise the full scientific workflow from question to conclusion.
Your valid completion certificate
This course is for you:
Geology graduate student: wants to incorporate microbial processes into their research.
Environmental microbiologist: seeks deeper grounding in sedimentary and geochemical contexts.
Planetary scientist: needs Earth-based biosignature frameworks for astrobiology work.
Paleontology researcher: aims to interpret ancient life evidence with geochemical rigor.
Environmental consultant: looks to apply geobiological indicators in remediation projects.
Biology undergraduate: plans to transition into earth science or geomicrobiology graduate programs.
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