Formation and diagenesis of modern marine calcified cyanobacteria

被引:67
作者
Planavsky, N. [1 ,2 ]
Reid, R. P. [1 ]
Lyons, T. W. [2 ]
Myshrall, K. L. [3 ]
Visscher, P. T. [3 ]
机构
[1] Univ Miami, Rosenstiel Sch Marine & Atmospher Sci, Miami, FL 33149 USA
[2] Univ Calif Riverside, Dept Earth Sci, Riverside, CA 92521 USA
[3] Univ Connecticut, Dept Marine Sci, Groton, CT 06340 USA
关键词
LITHIFIED MICRITIC LAMINAE; EXOPOLYMERIC SUBSTANCES; STROMATOLITES BAHAMAS; MICROBIAL CARBONATES; SEAWATER CHEMISTRY; SECULAR VARIATION; CALCIUM; MATS; RECRYSTALLIZATION; CALCIFICATION;
D O I
10.1111/j.1472-4669.2009.00216.x
中图分类号
Q [生物科学];
学科分类号
07 ; 0710 ; 09 ;
摘要
Calcified cyanobacterial microfossils are common in carbonate environments through most of the Phanerozoic, but are absent from the marine rock record over the past 65 Myr. There has been long-standing debate on the factors controlling the formation and temporal distribution of these fossils, fostered by the lack of a suitable modern analog. We describe calcified cyanobacteria filaments in a modern marine reef setting at Highborne Cay, Bahamas. Our observations and stable isotope data suggest that initial calcification occurs in living cyanobacteria and is photosynthetically induced. A single variety of cyanobacteria, Dichothrix sp., produces calcified filaments. Adjacent cyanobacterial mats form well-laminated stromatolites, rather than calcified filaments, indicating there can be a strong taxonomic control over the mechanism of microbial calcification. Petrographic analyses indicate that the calcified filaments are degraded during early diagenesis and are not present in well-lithified microbialites. The early diagenetic destruction of calcified filaments at Highborne Cay indicates that the absence of calcified cyanobacteria from periods of the Phanerozoic is likely to be caused by low preservation potential as well as inhibited formation.
引用
收藏
页码:566 / 576
页数:11
相关论文
共 53 条
[1]   Isotopic fingerprints of microbial respiration in aragonite from Bahamian stromatolites [J].
Andres, Miriam S. ;
Sumner, Dawn Y. ;
Reid, R. Pamela ;
Swart, Peter K. .
GEOLOGY, 2006, 34 (11) :973-976
[2]   Growth morphologies of modem marine stromatolites: A case study from Highborne Cay, Bahamas [J].
Andres, MS ;
Reid, RP .
SEDIMENTARY GEOLOGY, 2006, 185 (3-4) :319-328
[3]   Microbialite formation in seawater of increased alkalinity, Satonda crater lake, Indonesia [J].
Arp, G ;
Reimer, A ;
Reitner, J .
JOURNAL OF SEDIMENTARY RESEARCH, 2003, 73 (01) :105-127
[4]   Photosynthesis-induced biofilm calcification and calcium concentrations in phanerozoic oceans [J].
Arp, G ;
Reimer, A ;
Reitner, J .
SCIENCE, 2001, 292 (5522) :1701-1704
[5]   PLANKTOGENIC EUSTATIC CONTROL ON CRATONIC OCEANIC CARBONATE ACCUMULATION [J].
BOSS, SK ;
WILKINSON, BH .
JOURNAL OF GEOLOGY, 1991, 99 (04) :497-513
[6]   Exopolymeric substances of sulfate-reducing bacteria: Interactions with calcium at alkaline pH and implication for formation of carbonate minerals [J].
Braissant, O. ;
Decho, A. W. ;
Dupraz, C. ;
Glunk, C. ;
Przekop, K. M. ;
Visscher, P. T. .
GEOBIOLOGY, 2007, 5 (04) :401-411
[7]   Characteristics and turnover of exopolymeric substances in a hypersaline microbial mat [J].
Braissant, Olivier ;
Decho, Alan W. ;
Przekop, Kristen M. ;
Gallagher, Kimberley L. ;
Glunk, Christina ;
Dupraz, Christophe ;
Visscher, Pieter T. .
FEMS MICROBIOLOGY ECOLOGY, 2009, 67 (02) :293-307
[8]  
Decho AW, 2000, MICROBIAL SEDIMENTS, P9
[9]   Microbial lithification in marine stromatolites and hypersaline mats [J].
Dupraz, C ;
Visscher, PT .
TRENDS IN MICROBIOLOGY, 2005, 13 (09) :429-438
[10]  
DUPRAZ CD, EARTH SCI R IN PRESS