Calculation and Interpretation of Substrate Assimilation Rates in Microbial Cells Based on Isotopic Composition Data Obtained by nanoSIMS
暂无分享,去创建一个
[1] P. Girguis,et al. Multiple carbon incorporation strategies support microbial survival in cold subseafloor crustal fluids , 2021, Science Advances.
[2] S. Rabouille,et al. Temporal Patterns and Intra- and Inter-Cellular Variability in Carbon and Nitrogen Assimilation by the Unicellular Cyanobacterium Cyanothece sp. ATCC 51142 , 2021, Frontiers in Microbiology.
[3] J. Middelburg,et al. Cell Cycle, Filament Growth and Synchronized Cell Division in Multicellular Cable Bacteria , 2021, Frontiers in Microbiology.
[4] H. Ploug. SIMS and NanoSIMS Techniques Applied to Studies of Plankton Productivity , 2020, Research Methods of Environmental Physiology in Aquatic Sciences.
[5] Q. Jeangros,et al. Correlation of fluorescence microscopy, electron microscopy, and NanoSIMS stable isotope imaging on a single tissue section , 2020, Communications Biology.
[6] Samuel T. Wilson,et al. Unusual marine cyanobacteria/haptophyte symbiosis relies on N2 fixation even in N-rich environments , 2020, The ISME Journal.
[7] J. Middelburg,et al. Division of labor and growth during electrical cooperation in multicellular cable bacteria , 2020, Proceedings of the National Academy of Sciences.
[8] X. Mayali. NanoSIMS: Microscale Quantification of Biogeochemical Activity with Large-Scale Impacts. , 2020, Annual review of marine science.
[9] S. Müller,et al. Quantitation and Comparison of Phenotypic Heterogeneity Among Single Cells of Monoclonal Microbial Populations , 2019, Front. Microbiol..
[10] J. Fuhrman,et al. Characterizing Chemoautotrophy and Heterotrophy in Marine Archaea and Bacteria With Single-Cell Multi-isotope NanoSIP , 2019, Front. Microbiol..
[11] T. Ferdelman,et al. Phosphate availability affects fixed nitrogen transfer from diazotrophs to their epibionts , 2019, The ISME Journal.
[12] M. Könneke,et al. Direct Cell Mass Measurements Expand the Role of Small Microorganisms in Nature , 2019, Applied and Environmental Microbiology.
[13] L. Edler,et al. Nitrate and ammonium fluxes to diatoms and dinoflagellates at a single cell level in mixed field communities in the sea , 2019, Scientific Reports.
[14] A. Godhe,et al. High single‐cell diversity in carbon and nitrogen assimilations by a chain‐forming diatom across a century , 2018, Environmental microbiology.
[15] M. Mills,et al. Symbiotic unicellular cyanobacteria fix nitrogen in the Arctic Ocean , 2018, Proceedings of the National Academy of Sciences.
[16] T. Ferdelman,et al. Single-cell imaging of phosphorus uptake shows that key harmful algae rely on different phosphorus sources for growth , 2018, Scientific Reports.
[17] I. Cetinić,et al. NanoSIMS single cell analyses reveal the contrasting nitrogen sources for small phytoplankton , 2018, The ISME Journal.
[18] H. Richnow,et al. Calculation of Single Cell Assimilation Rates From SIP-NanoSIMS-Derived Isotope Ratios: A Comprehensive Approach , 2018, Front. Microbiol..
[19] Jamie Nuñez,et al. NanoSIMS for biological applications: Current practices and analyses. , 2018, Biointerphases.
[20] C. Westfall,et al. Bacterial Cell Size: Multifactorial and Multifaceted. , 2017, Annual review of microbiology.
[21] Samuel T. Wilson,et al. Chemical microenvironments and single-cell carbon and nitrogen uptake in field-collected colonies of Trichodesmium under different pCO2 , 2017, The ISME Journal.
[22] P. Weber,et al. Elevated temperature increases carbon and nitrogen fluxes between phytoplankton and heterotrophic bacteria through physical attachment , 2016, The ISME Journal.
[23] S. Littmann,et al. Cell-specific nitrogen- and carbon-fixation of cyanobacteria in a temperate marine system (Baltic Sea). , 2016, Environmental microbiology.
[24] N. Jehmlich,et al. Protein-SIP in environmental studies. , 2016, Current opinion in biotechnology.
[25] B. Fuchs,et al. The small unicellular diazotrophic symbiont, UCYN-A, is a key player in the marine nitrogen cycle , 2016, Nature Microbiology.
[26] I. Berman‐Frank,et al. Diazotroph derived nitrogen supports diatom growth in the South West Pacific: A quantitative study using nanoSIMS , 2016 .
[27] M. Voss,et al. Superposition of Individual Activities: Urea-Mediated Suppression of Nitrate Uptake in the Dinoflagellate Prorocentrum minimum Revealed at the Population and Single-Cell Levels , 2016, Front. Microbiol..
[28] Martin Ackermann,et al. Phenotypic heterogeneity driven by nutrient limitation promotes growth in fluctuating environments , 2016, Nature Microbiology.
[29] M. Kuypers,et al. High cell-specific rates of nitrogen and carbon fixation by the cyanobacterium Aphanizomenon sp. at low temperatures in the Baltic Sea. , 2015, FEMS microbiology ecology.
[30] J. Caporaso,et al. Quantitative Microbial Ecology through Stable Isotope Probing , 2015, Applied and Environmental Microbiology.
[31] Martin Ackermann,et al. A functional perspective on phenotypic heterogeneity in microorganisms , 2015, Nature Reviews Microbiology.
[32] R. Amann,et al. The effect of nutrients on carbon and nitrogen fixation by the UCYN-A–haptophyte symbiosis , 2014, The ISME Journal.
[33] T. Hübschmann,et al. Phenotypic heterogeneity in metabolic traits among single cells of a rare bacterial species in its natural environment quantified with a combination of flow cell sorting and NanoSIMS , 2015, Front. Microbiol..
[34] M. Kuypers,et al. Measuring carbon and N2 fixation in field populations of colonial and free‐living unicellular cyanobacteria using nanometer‐scale secondary ion mass spectrometry1 , 2013, Journal of phycology.
[35] P. Hoppe,et al. NanoSIMS: Technical Aspects and Applications in Cosmochemistry and Biological Geochemistry , 2013 .
[36] Markus Schmid,et al. Zero-valent sulphur is a key intermediate in marine methane oxidation , 2012, Nature.
[37] M. Kuypers,et al. Detecting metabolic activities in single cells, with emphasis on nanoSIMS. , 2012, FEMS microbiology reviews.
[38] P. Weber,et al. NanoSIP: NanoSIMS applications for microbial biology. , 2012, Methods in molecular biology.
[39] T. Coplen. Guidelines and recommended terms for expression of stable-isotope-ratio and gas-ratio measurement results. , 2011, Rapid communications in mass spectrometry : RCM.
[40] M. Kuypers,et al. Nitrogen fixation and transfer in open ocean diatom–cyanobacterial symbioses , 2011, The ISME Journal.
[41] R. Popa,et al. Fixation and fate of C and N in the cyanobacterium Trichodesmium using nanometer-scale secondary ion mass spectrometry , 2009, Proceedings of the National Academy of Sciences.
[42] Rudolf Amann,et al. A single-cell view on the ecophysiology of anaerobic phototrophic bacteria , 2008, Proceedings of the National Academy of Sciences.
[43] K. Nealson,et al. Carbon and nitrogen fixation and metabolite exchange in and between individual cells of Anabaena oscillarioides , 2007, The ISME Journal.
[44] J. Neufeld,et al. Methodological Considerations for the Use of Stable Isotope Probing in Microbial Ecology , 2007, Microbial Ecology.
[45] M. Dumont,et al. Stable isotope probing — linking microbial identity to function , 2005, Nature Reviews Microbiology.
[46] J. Middelburg,et al. Stable isotopes and biomarkers in microbial ecology. , 2002, FEMS microbiology ecology.
[47] Michael E. Sieracki,et al. Relationships between cell volume and the carbon and nitrogen content of marine photosynthetic nanoplankton , 1992 .
[48] A. L. Koch. Distribution of Cell Size in Growing Cultures of Bacteria and the Applicability of the Collins-Richmond Principle , 1966 .
[49] A. L. Koch,et al. A model for statistics of the cell division process. , 1962, Journal of general microbiology.
[50] M. Richmond,et al. Rate of growth of Bacillus cereus between divisions. , 1962, Journal of general microbiology.