Photosynthate partitioning and fermentation in hot spring microbial mat communities
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D. M. Ward | S. Nold | D M Ward | S C Nold
[1] A. Konopka,et al. BIOCHEMICAL COMPOSITION AND PHOTOSYNTHETIC CARBON METABOLISM OF NUTRIENT LIMITED CULTURES OF MERISMOPEDIA TENUISSIMA (CYANOPHYCEAE) 1 , 1981 .
[2] D. M. Ward,et al. Diverse Thermus species inhabit a single hot spring microbial mat. , 1995, Systematic and applied microbiology.
[3] D. M. Ward,et al. Methods for extracting DNA from microbial mats and cultivated micro-organisms: high molecular weight DNA from French press lysis , 1995 .
[4] B. Jørgensen,et al. Microelectrodes: Their Use in Microbial Ecology , 1986 .
[5] O. Maaløe,et al. Regulation of the Protein-Synthesizing Machinery—Ribosomes, tRNA, Factors, and So On , 1979 .
[6] B. Jørgensen,et al. Optical properties of microbial mats: Light measurements with fiber-optic microprobes , 1994 .
[7] R. Castenholz. Isolation and Cultivation of Thermophilic Cyanobacteria , 1981 .
[8] C. Sweeley,et al. Analysis of trimethylsilyl derivatives of carbohydrates by gas chromatography and mass spectrometry , 1969 .
[9] U. K. Laemmli,et al. Maturation of the head of bacteriophage T4. I. DNA packaging events. , 1973, Journal of molecular biology.
[10] D. Werner. Symbiosis of Plants and Microbes , 1992 .
[11] I. Morris,et al. Products of photosynthesis in phytoplankton off the Orinoco River and in the Caribbean Sea1 , 1981 .
[12] J. C. Goldman,et al. Growth rate influence on the chemical composition of phytoplankton in oceanic waters , 1979, Nature.
[13] A. Konopka. THE EFFECT OF NUTRIENT LIMITATION AND ITS INTERACTION WITH LIGHT UPON THE PRODUCTS OF PHOTOSYNTHESIS IN MERISMOPEDIA TENUISSIMA (CYANOPHYCEAE) 1 , 1983 .
[14] J. Priscu,et al. Photosynthate partitioning by phytoplankton in a New Zealand coastal upwelling system , 1984 .
[15] D. Lean,et al. Night synthesis of protein by algae1 , 1984 .
[16] Peter D. Nichols,et al. Phospholipid, ester-linked fatty acid profiles as reproducible assays for changes in prokaryotic community structure of estuarine sediments , 1985 .
[17] C. Yentsch,et al. Products of photosynthesis by marine phytoplankton: the effect of environmental factors on the relative rates of protein synthesis , 1974 .
[18] David M. Ward,et al. Formation and Fate of Fermentation Products in Hot Spring Cyanobacterial Mats , 1987, Applied and environmental microbiology.
[19] R. Steneck,et al. A functional group approach to the structure of algal-dominated communities , 1994 .
[20] David M. Ward,et al. Photoexcretion and Fate of Glycolate in a Hot Spring Cyanobacterial Mat , 1988, Applied and environmental microbiology.
[21] I. Reche,et al. Direct and indirect effects of grazing on the phytoplankton seasonal succession in an oligotrophic lake , 1995 .
[22] L. Stal. Physiological ecology of cyanobacteria in microbial mats and other communities. , 1995, The New phytologist.
[23] A. Smith,et al. Diel patterns of carbon incorporation into biochemical constituents of Synechococcus spp. and larger algae in the Northwest Atlantic Ocean , 1988 .
[24] D. M. Ward,et al. Terminal Processes in the Anaerobic Degradation of an Algal-Bacterial Mat in a High-Sulfate Hot Spring , 1980, Applied and environmental microbiology.
[25] D. M. Ward,et al. Ribosomal RNA Analysis of Microorganisms as They Occur in Nature , 1992 .
[26] D. M. Ward,et al. Denaturing gradient gel electrophoresis used to monitor the enrichment culture of aerobic chemoorganotrophic bacteria from a hot spring cyanobacterial mat , 1996, Applied and environmental microbiology.
[27] D. M. Ward,et al. Denaturing Gradient Gel Electrophoresis Profiles of 16 S rRNA-Defined Populations Inhabiting a Hot Spring Microbial Mat Community , 1996 .
[28] F. Singleton,et al. Measurement of rRNA Variations in Natural Communities of Microorganisms on the Southeastern U.S. Continental Shelf , 1993, Applied and environmental microbiology.
[29] R. Philippis,et al. Glycogen and poly-β-hydroxybutyrate synthesis in Spirulina maxima , 1992 .
[30] D. M. Ward,et al. Species diversity in hot spring microbial mats as revealed by both molecular and enrichment culture approaches — relationship between biodiversity and community structure , 1994 .
[31] M. P. Starr,et al. The Prokaryotes : a handbook on habitats, isolation, and identification of bacteria , 1981 .
[32] J. Sambrook,et al. Molecular Cloning: A Laboratory Manual , 2001 .
[33] L. Richardson,et al. Enhanced Survival of the Cyanobacterium Oscillatoria terebriformis in Darkness under Anaerobic Conditions , 1987, Applied and environmental microbiology.
[34] Carolyn A. Miller,et al. The impact of trophic interactions on rates of nitrogen regeneration and grazing in Chesapeake Bay , 1995 .
[35] K. Gausing. Regulation of ribosome production in Escherichia coli: synthesis and stability of ribosomal RNA and of ribosomal protein messenger RNA at different growth rates. , 1977, Journal of molecular biology.
[36] J. G. Kuenen,et al. Distribution of cultivated and uncultivated cyanobacteria and Chloroflexus-like bacteria in hot spring microbial mats , 1994, Applied and environmental microbiology.
[37] P. J. Phipps,et al. Chapter III Chemical Analysis of Microbial Cells , 1971 .
[38] D. M. Ward,et al. Microelectrode Studies of Interstitial Water Chemistry and Photosynthetic Activity in a Hot Spring Microbial Mat , 1984, Applied and environmental microbiology.
[39] D C White,et al. Lipid analysis in microbial ecology: quantitative approaches to the study of microbial communities. , 1989, Bioscience.
[40] D. M. Ward,et al. Cultivation of aerobic chemoorganotrophic proteobacteria and gram-positive bacteria from a hot spring microbial mat , 1996, Applied and environmental microbiology.
[41] Allan Konopka,et al. Accumulation and utilization of polysaccharide by hot-spring phototrophs during a light-dark transition , 1992 .
[42] D. M. Ward,et al. Enrichment culture and microscopy conceal diverse thermophilic Synechococcus populations in a single hot spring microbial mat habitat , 1996, Applied and environmental microbiology.
[43] M. Kates,et al. Lipid composition of halotolerant algae, Dunaliella parva lerche and Dunaliella tertiolecta , 1982 .
[44] N. Mann,et al. Control of macromolecular composition and cell division in the blue-green algae Anacystis nidulans. , 1974, Journal of general microbiology.
[45] T. D. Brock,et al. Structure, Growth, and Decomposition of Laminated Algal-Bacterial Mats in Alkaline Hot Springs , 1977, Applied and environmental microbiology.
[46] T. D. Brock. Thermophilic Microorganisms and Life at High Temperatures , 1978, Springer Series in Microbiology.
[47] David M. Ward,et al. Fate of Immediate Methane Precursors in Low-Sulfate, Hot-Spring Algal-Bacterial Mats , 1981, Applied and environmental microbiology.
[48] E. Laws,et al. Estimates of phytoplankton N uptake based on 14CO2 incorporation into protein , 1983 .
[49] E. Jeppesen,et al. Impact of submerged macrophytes on fish-zooplankton-phytoplankton interactions : large-scale enclosure experiments in a shallow eutrophic lake , 1995 .
[50] H. Gross,et al. Improved silver staining of plant proteins, RNA and DNA in polyacrylamide gels , 1987 .