Microbial carbonates: the geological record of calcified bacterial–algal mats and biofilms
2000/02/01 by Robert Riding · 1,540 citations
Chemistry · Earth and Planetary Sciences · Environmental Science · #Algae #Bacteria #Bioerosion #Biofilm #Biology #Carbonate #Chemistry #Chemosynthesis #Cyanobacteria #Ecology #Environmental chemistry #Extracellular polymeric substance #Geology #Hydrothermal vent #Marine Biology and Ecology Research #Methane Hydrates and Related Phenomena #Microbial mat #Oceanography #Paleontology #Paleontology and Stratigraphy of Fossils #Reef #Stromatolite
paper · doi:10.1046/j.1365-3091.2000.00003.x
published in Sedimentology 47(s1), 179-214 (Wiley)
openalex publication_date 2000/02/01 · openalex created_date 2025/10/10 · openalex updated_date 2026/08/06
Abstract
Summary Deposits produced by microbial growth and metabolism have been important components of carbonate sediments since the Archaean. Geologically best known in seas and lakes, microbial carbonates are also important at the present day in fluviatile, spring, cave and soil environments. The principal organisms involved are bacteria, particularly cyanobacteria, small algae and fungi, that participate in the growth of microbial biofilms and mats. Grain‐trapping is locally important, but the key process is precipitation, producing reefal accumulations of calcified microbes and enhancing mat accretion and preservation. Various metabolic processes, such as photosynthetic uptake of CO 2 and/or HCO 3 – by cyanobacteria, and ammonification, denitrification and sulphate reduction by other bacteria, can increase alkalinity and stimulate carbonate precipitation. Extracellular polymeric substances, widely produced by microbes for attachment and protection, are important in providing nucleation sites and facilitating sediment trapping. Microbial carbonate microfabrics are heterogeneous. They commonly incorporate trapped particles and in situ algae and invertebrates, and crystals form around bacterial cells, but the main component is dense, clotted or peloidal micrite resulting from calcification of bacterial cells, sheaths and biofilm, and from phytoplankton‐stimulated whiting nucleation. Interpretation of these texturally convergent and often inscrutable fabrics is a challenge. Conspicuous accumulations are large domes and columns with laminated (stromatolite), clotted (thrombolite) and other macrofabrics, which may be either agglutinated or mainly composed of calcified or spar‐encrusted microbes. Stromatolite lamination appears to be primary, but clotted thrombolite fabrics can be primary or secondary. Microbial precipitation also contributes to hot‐spring travertine, cold‐spring mound, calcrete, cave crust and coated grain deposits, as well as influencing carbonate cementation, recrystallization and replacement. Microbial carbonate is biologically stimulated but also requires favourable saturation state in ambient water, and thus relies uniquely on a combination of biotic and abiotic factors. This overriding environmental control is seen at the present day by the localization of microbial carbonates in calcareous streams and springs and in shallow tropical seas, and in the past by temporal variation in abundance of marine microbial carbonates. Patterns of cyanobacterial calcification and microbial dome formation through time appear to reflect fluctuations in seawater chemistry. Stromatolites appeared at ∼3450 Ma and were generally diverse and abundant from 2800 to 1000 Ma. Inception of a Proterozoic decline variously identified at 2000, 1000 and 675 Ma, has been attributed to eukaryote competition and/or reduced lithification. Thrombolites and dendrolites mainly formed by calcified cyanobacteria became important early in the Palaeozoic, and reappeared in the Late Devonian. Microbial carbonates retained importance through much of the Mesozoic, became scarcer in marine environments in the Cenozoic, but locally re‐emerged as large agglutinated domes, possibly reflecting increased algal involvement, and thick micritic reef crusts in the late Neogene. Famous modern examples at Shark Bay and Lee Stocking Island are composite coarse agglutinated domes and columns with complex bacterial–algal mats occurring in environments that are both stressed and current‐swept: products of mat evolution, ecological refugia, sites of enhanced early lithification or all three?
Citations
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- VNIR–mid-IR spectral signatures of abiotic and biogenic mixed-cation carbonates: implications for carbonate detection and biosignature assessment on Mars
- Climate-extreme-driven genesis of a Cretaceous dinosaur Lagerstätte
- Calcium carbonate and phosphorus interactions in inland waters
- Carbonate build-ups in lacustrine, hydrothermal and fluvial settings: comparing depositional geometry, fabric types and geochemical signature
- An abiotic model for the development of textures in some South Atlantic early Cretaceous lacustrine carbonates
- Protracted intercontinental aridification preserved within the early Late Cretaceous strata of the Eastern Gobi Basin, Mongolia
- Decoding tufa and travertine (fresh water carbonates) in the sedimentary record: The state of the art
- Seasonal biogeochemical variations in a modern microbialite reef under early Earth-like conditions
- Depositional facies and platform architecture of microbialite-dominated carbonate reservoirs, Ediacaran–Cambrian Ara Group, Sultanate of Oman
- Steep Rock Lake: Sedimentology and geochemistry of an Archean carbonate platform
- Responses of a hybrid carbonate shelf to progressive basin restriction: Pre- and Messinian Salinity Crisis environmental shifts in the Western Mediterranean (Tabernas Basin)
- Characterization of Microbialites Using ERT and GPR: Insights from Neoproterozoic and Mesozoic Carbonate Systems
- MICROFABRICS IN MESOPROTEROZOIC MICRODIGITATE STROMATOLITES: EVIDENCE OF BIOGENICITY AND ORGANOMINERALIZATION AT MICRON AND NANOMETER SCALES
- MICROBIALITES IN A HIGH-ALTITUDE ANDEAN LAKE: MULTIPLE CONTROLS ON CARBONATE PRECIPITATION AND LAMINA ACCRETION
- Discovery of Extraterrestrial 244Pu in 2 Million Year Old Fossilized Stromatolites
- Biotic-Abiotic controls on deep-water carbonate sedimentation during progressive Mediterranean restriction: Insights from Messinian pre-evaporitic deposits of the Mesaoria Basin (NE Cyprus)
- Fungal involvement in bioweathering and biotransformation of rocks and minerals
- Tectono-depositional pattern and evolution of the middle Yangtze Platform (South China) during the late Ediacaran
- SPINICAUDATANS FROM THE UPPER JURASSIC OF ARGENTINA AND THEIR PALEOENVIRONMENTS
- Chapter 3 Silicification of Continental Carbonates
- Palaeoecology and evolution of marine hard substrate communities
- Early skeletal fossils
- Origins and Early Evolution of Predation
- Fossils explained 35
- Melanosomes and ancient coloration re‐examined: A response to Vinther 2015 (DOI 10.1002/bies.201500018)
- Microbialite resurgence after the Late Ordovician extinction
- Microbial carbonate abundance compared with fluctuations in metazoan diversity over geological time
- Carbon Mineral Evolution
- Possible animal-body fossils in pre-Marinoan limestones from South Australia
- Origin of peloids in Early Cretaceous deposits, Dorset, South England
- Structure and composition of organic reefs and carbonate mud mounds: concepts and categories
- The fabrics and origins of peloids immediately after the end-Permian extinction, Guizhou Province, South China
- Bacterial biomineralization: new insights from Myxococcus -induced mineral precipitation
- Paleobiology and taphonomy of exceptionally preserved organisms from the Waukesha Biota (Silurian), Wisconsin, USA
- Water, Life, and Planetary Geodynamical Evolution
- Application of microbially induced calcium carbonate precipitation in designing bio self-healing concrete
- Jurassic septarian concretions from NW Scotland record interdependent bacterial, physical and chemical processes of marine mudrock diagenesis
- Depositional evolution of an extinct sinter mound from source to outflow, El Tatio, Chile
- Microbially catalyzed dolomite formation: From near-surface to burial
- Dolomite Mountains and the origin of the dolomite rock of which they mainly consist: historical developments and new perspectives
- Nano−porous pyrite and organic matter in 3.5-billion-year-old stromatolites record primordial life
- Hydrochemistry and microbialites of the alkaline crater lake Alchichica, Mexico
- The rise and fall of stromatolites in shallow marine environments
- Review: geological and experimental evidence for secular variation in seawater Mg/Ca (calcite-aragonite seas) and its effects on marine biological calcification
- Geomycology: biogeochemical transformations of rocks, minerals, metals and radionuclides by fungi, bioweathering and bioremediation
- Travertine [wikipedia]
- Biologically induced mineralization of dypingite by cyanobacteria from an alkaline wetland near Atlin, British Columbia, Canada. [europepmc]
- 16S rDNA-based analysis reveals cosmopolitan occurrence but limited diversity of two cyanobacterial lineages with contrasted patterns of intracellular carbonate mineralization. [europepmc]
- CaCO3 precipitation in multilayered cyanobacterial mats: clues to explain the alternation of micrite and sparite layers in calcareous stromatolites. [europepmc]
- Spatial patterns of carbonate biomineralization in biofilms. [europepmc]
- Metagenome-based diversity analyses suggest a significant contribution of non-cyanobacterial lineages to carbonate precipitation in modern microbialites. [europepmc]
- Carbonate Precipitation through Microbial Activities in Natural Environment, and Their Potential in Biotechnology: A Review. [europepmc]
- Experimental and visual research on the microbial induced carbonate precipitation by Pseudomonas aeruginosa. [europepmc]
- Genomic and Transcriptomic Insights into Calcium Carbonate Biomineralization by Marine Actinobacterium Brevibacterium linens BS258. [europepmc]
- Applications of microalgal biofilms for wastewater treatment and bioenergy production. [europepmc]
- Cyanobacterial exopolymer properties differentiate microbial carbonate fabrics. [europepmc]
- Stromatolites on the rise in peat-bound karstic wetlands. [europepmc]
- Exploring Biogeochemistry and Microbial Diversity of Extant Microbialites in Mexico and Cuba. [europepmc]
- High pCO 2 -induced exopolysaccharide-rich ballasted aggregates of planktonic cyanobacteria could explain Paleoproterozoic carbon burial. [europepmc]
- Symbiodinium -Induced Formation of Microbialites: Mechanistic Insights From in Vitro Experiments and the Prospect of Its Occurrence in Nature. [europepmc]
- Comparative Metagenomics Provides Insight Into the Ecosystem Functioning of the Shark Bay Stromatolites, Western Australia. [europepmc]
- Environmental and Biological Influences on Carbonate Precipitation Within Hot Spring Microbial Mats in Little Hot Creek, CA. [europepmc]
- Biomineralization Induced by Colletotrichum acutatum : A Potential Strategy for Cultural Relic Bioprotection. [europepmc]
- Enhanced calcium carbonate-biofilm complex formation by alkali-generating Lysinibacillus boronitolerans YS11 and alkaliphilic Bacillus sp. AK13. [europepmc]
- A rock-boring and rock-ingesting freshwater bivalve (shipworm) from the Philippines. [europepmc]
- A Bibliometric Analysis of Microalgae Research in the World, Europe, and the European Atlantic Area. [europepmc]
- Unexpected Abundance and Diversity of Phototrophs in Mats from Morphologically Variable Microbialites in Great Salt Lake, Utah. [europepmc]
- Microbiome and ecology of a hot spring-microbialite system on the Trans-Himalayan Plateau. [europepmc]
- Bacteria-induced mineral precipitation: a mechanistic review. [europepmc]
- Bacterial community structure and metabolic potential in microbialite-forming mats from South Australian saline lakes. [europepmc]
- Hard shell, soft blue-green core: Ecology, processes, and modern applications of calcification in terrestrial cyanobacteria. [europepmc]
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