Access the full text.
Sign up today, get DeepDyve free for 14 days.
(1992)
A general comparison of microbial mats and microbial stromatolites: bridging the gap between the modrn and the fossil
B. Laval, S. Cady, J. Pollack, C. Mckay, J. Bird, J. Grotzinger, D. Ford, H. Bohm (2000)
Modern freshwater microbialite analogues for ancient dendritic reef structuresNature, 407
Ammann Ammann, Buhrer Buhrer, Schefer Schefer, Müller Müller, Simon Simon (1987)
Intracellular neutral?carrier based Ca 2+ microelectrode with subnanomolar detection limitEuropean Journal of Physiology, 409
T. McConnaughey, R. Falk (1991)
Calcium-Proton Exchange During Algal Calcification.The Biological bulletin, 180 1
(2003)
Evaluation of DNA extraction methods for molecular analysis of microbial communities in modern microbialites
F. Garcia-Pichel, J. Belnap (1996)
MICROENVIRONMENTS AND MICROSCALE PRODUCTIVITY OF CYANOBACTERIAL DESERT CRUSTS 1Journal of Phycology, 32
P. Sheridan, K. Freeman, J. Brenchley (2003)
Estimated Minimal Divergence Times of the Major Bacterial and Archaeal PhylaGeomicrobiology Journal, 20
P. Visscher, R. Reid, B. Bebout (2000)
Microscale observations of sulfate reduction: Correlation of microbial activity with lithified micritic laminae in modern marine stromatolitesGeology, 28
S. Golubić, L. Seong-Joo, K. Browne (2000)
Cyanobacteria: Architects of Sedimentary Structures
(1987)
The role of diatoms in stromatoite growth: two examples from modern fresh-water settings
I. Macintyre, R. Reid, R. Steneck (1996)
Growth History of Stromatolites in a Holocene Fringing Reef, Stocking Island, BahamasJournal of Sedimentary Research, 66
B. Winsborough, J. Seeler, S. Golubić, R. Folk, B. Maguire (1994)
Recent Fresh-Water Lacustrine Stromatolites, Stromatolitic Mats and Oncoids from Northeastern Mexico
Robbins Robbins, Porter Porter, Haberyan Haberyan (1985)
Pellet microfossils: possible evidence for metazoan life in Early Proterozoic timeProceedings of the National Academy of Sciences of the USA, 82
F. Garcia-Pichel, M. Kühl, U. Nübel, G. Muyzer (1999)
SALINITY‐DEPENDENT LIMITATION OF PHOTOSYNTHESIS AND OXYGEN EXCHANGE IN MICROBIAL MATSJournal of Phycology, 35
P. Garrett (1970)
Phanerozoic Stromatolites: Noncompetitive Ecologic Restriction by Grazing and Burrowing AnimalsScience, 169
K. Rasmussen, I. Macintyre, L. Prufert (1993)
Modern stromatolite reefs fringing a brackish coastline, Chetumal Bay, BelizeGeology, 21
(1990)
Geochemical model for Proterozoic stromatolite decline
R. Glud, N. Ramsing, N. Revsbech (1992)
PHOTOSYNTHESIS AND PHOTOSYNTHESIS‐COUPLED RESPIRATION IN NATURAL BIOFILMS QUANTIFIED WITH OXYGEN MICROSENSORS 1Journal of Phycology, 28
S. Howe, A. Marshall (2002)
Temperature effects on calcification rate and skeletal deposition in the temperate coral, Plesiastrea versipora (Lamarck)Journal of Experimental Marine Biology and Ecology, 275
Fischer Fischer (1965)
Fossils, early life and atmospheric historyProceedings of the National Academy of Sciences of the USA, 53
(1991)
Iyengariella endolithica sp. nov., a carbonate boring stigonematalean cyanobacterium from a warm spring-fed lake; nature to culture
S. Awramik (1971)
Precambrian Columnar Stromatolite Diversity: Reflection of Metazoan AppearanceScience, 174
(1995)
Cuatro Ciénegas : Mexico ’ s desert aquarium
Kim Jensen, N. Revsbech, L. Nielsen (1993)
Microscale Distribution of Nitrification Activity in Sediment Determined with a Shielded Microsensor for NitrateApplied and Environmental Microbiology, 59
Revsbech Revsbech (1998)
An oxygen microelectrode with a guard cathodeLimnological Oceanography, 34
D. Beer, M. Kühl, N. Stambler, Lior Vaki (2000)
A microsensor study of light enhanced Ca2+ uptake and photosynthesis in the reef-building hermatypic coral Favia sp.Marine Ecology Progress Series, 194
D. Beer, A. Schramm, C. Santegoeds, M. Kühl (1997)
A nitrite microsensor for profiling environmental biofilmsApplied and Environmental Microbiology, 63
H. Hofmann, K. Grey, A. Hickman, R. Thorpe (1999)
Origin of 3.45 Ga coniform stromatolites in Warrawoona Group, Western AustraliaGeological Society of America Bulletin, 111
R. Reid, P. Visscher, A. Decho, John Stolz, B. Bebout, C. Dupraz, Ian Macintyre, H. Paerl, J. Pinckney, L. Prufert-Bebout, T. Steppe, D. desmarais (2000)
The role of microbes in accretion, lamination and early lithification of modern marine stromatolitesNature, 406
Vogel Vogel, Gektidis Gektidis, Golubic Golubic, Kiene Kiene, Radtke Radtke (2000)
Experimental studies on microbial bioerosion at Lee Stocking Island, Bahamas, Great Barrier Reef, Australia; implications for paleoecological reconstructionsLethaia, 33
E. Friedmann, R. Weed (1987)
Microbial trace-fossil formation, biogenous, and abiotic weathering in the Antarctic cold desert.Science, 236 4802
R. Burne, L. Moore (1987)
Microbialites; organosedimentary deposits of benthic microbial communitiesPALAIOS, 2
M. Walter, G. Heys (1985)
Links between the rise of the metazoa and the decline of stromatolitesPrecambrian Research, 29
Proterozoic stromatolites
M. Shachak, Clive Jones, Y. Granot (1987)
Herbivory in Rocks and the Weathering of a DesertScience, 236
E. Epping, B. Jørgensen (1996)
Light-enhanced oxygen respiration in benthic phototrophic communitiesMarine Ecology Progress Series, 139
J. Schneider, H. Torunski (1983)
Biokarst on Limestone Coasts, Morphogenesis and Sediment ProductionMarine Ecology, 4
(1991)
Iyengariella endolithica sp. nov., a carbonate boring stigonematalean cyanobacterium from a warm spring-fed lake; nature to culture. Archives of Hydrobiology
B. Pratt (1982)
Stromatolite decline—A reconsiderationGeology, 10
Y. Lith, R. Warthmann, C. Vasconcelos, J. Mckenzie (2003)
Sulphate‐reducing bacteria induce low‐temperature Ca‐dolomite and high Mg‐calcite formationGeobiology, 1
(1997)
1997b) A nitrite
(1992)
Grazing and bioturbation in modern microbial mats
A. Fischer (1965)
FOSSILS, EARLY LIFE, AND ATMOSPHERIC HISTORY.Proceedings of the National Academy of Sciences of the United States of America, 53
P. Liss, A. Nygren, N. Revsbech, H. Ulfendahl (1997)
Measurements of oxygen tension in the rat kidney after contrast media using an oxygen microelectrode with a guard cathode.Advances in experimental medicine and biology, 411
(1992)
Proterozoic stromatolites. In The Proterozoic Biosphere: a Multidisciplinary Study (eds Schopf JW, Klein, C)
P. Jeroschewski, C. Steuckart, M. Kühl (1996)
An amperometric microsensor for the determination of H2S in aquatic environmentsAnalytical Chemistry, 68
B. Jørgensen, N. Revsbech (1985)
Diffusive boundary layers and the oxygen uptake of sediments and detritus1Limnology and Oceanography, 30
K. Vogel, M. Gektidis, S. Golubić, W. Kiene, Gudrun Radtke (2000)
Experimental studies on microbial bioerosion at Lee Stocking Island, Bahamas and One Tree Island, Great Barrier Reef, Australia: implications for paleoecological reconstructionsLethaia, 33
T. McConnaughey, J. Whelan (1997)
Calcification generates protons for nutrient and bicarbonate uptakeEarth-Science Reviews, 42
D. Ammann, T. Bührer, U. Schefer, M. Müller, W. Simon (1987)
Intracellular neutral carrier-based Ca2+ microelectrode with subnanomolar detection limitPflügers Archiv, 409
E. Robbins, K. Porter, K. Haberyan (1985)
Pellet microfossils: Possible evidence for metazoan life in Early Proterozoic time.Proceedings of the National Academy of Sciences of the United States of America, 82 17
(1997)
1997a) A microsensor study
(1996)
Aquatic Chemistry, 3rd edn
A. Fischer (1965)
N.A.S. Symposium on the Evolution of the Earth's Atmosphere: FOSSILS, EARLY LIFE, AND ATMOSPHERIC HISTORYProceedings of the National Academy of Sciences of the United States of America, 53
N. Revsbech (1989)
An oxygen microsensor with a guard cathodeLimnology and Oceanography, 34
Reid Reid, Visscher Visscher, Decho Decho, Stolz Stolz, Bebout Bebout, Dupraz Dupraz, Macintyre Macintyre, Paerl Paerl, Pincknev Pincknev, Bebout Bebout, Steppe Steppe, Des Marais Des Marais (2000)
The role of microbes in accretion and early lithification of mordern marine stromatolitesNature, 406
ABSTRACT Stromatolites date back some 3.5 billion years and constitute the most common and conspicuous fossils through the Proterozoic. These organosedimentary structures decreased dramatically in diversity and abundance by the late Neoproterozoic, a phenomenon often ascribed to destructive grazing by newly evolved metazoans. We investigated the concurrent processes of microbial calcification and metazoan bioerosion in one of the few locations (Rio Mesquites, Cuatro Ciénegas, Coahuila, Mexico) where living freshwater stromatolites, formed by cyanobacteria and diatoms, coexist with significant populations of metazoan grazers. We used microsensor chemical profiling and monitoring of bulk water Ca2+ concentrations to determine calcification rates and their dependence on microbial metabolism. The bioerosive impact resulting from grazing by endemic hydrobiid gastropods was assessed by gravimetric quantification of carbonaceous faecal pellet production. Calcification was clearly light‐dependent, reaching maximal rates (saturation) at low incident light intensity, and was surprisingly efficient, with O2/Ca2+ exchange ratios well above unity, and with absolute rates similar to those found in corals. However, the erosive action of grazing snails removed most of these carbonate inputs from the oncolites. Thus, a precarious balance between constructive and destructive geobiological processes was at play in the system. The fact that accretion barely exceeded bioerosion in an environment highly conducive to calcification supports the potential impact of faunal grazing as causal agent in the demise of stromatolites in the late Proterozoic. Our findings indicate that a search for fossil evidence of bioerosive grazing in the form of carbonaceous faecal pellets associated with fossil stromatolites may provide a means to test that hypothesis directly.
Geobiology – Wiley
Published: Jan 1, 2004
Read and print from thousands of top scholarly journals.
Already have an account? Log in
Bookmark this article. You can see your Bookmarks on your DeepDyve Library.
To save an article, log in first, or sign up for a DeepDyve account if you don’t already have one.
Copy and paste the desired citation format or use the link below to download a file formatted for EndNote
Access the full text.
Sign up today, get DeepDyve free for 14 days.
All DeepDyve websites use cookies to improve your online experience. They were placed on your computer when you launched this website. You can change your cookie settings through your browser.