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3. Metabolic Capacity of the Antarctic Cyanobacterium Phormidium pseudopriestleyi That Sustains Oxygenic Photosynthesis in the Presence of Hydrogen Sulfide.

5. Microbiome processing of organic nitrogen input supports growth and cyanotoxin production of Microcystis aeruginosa cultures

6. Metatranscriptomic Analyses of Diel Metabolic Functions During a Microcystis Bloom in Western Lake Erie (United States)

11. Meeting report: Ocean ’omics science, technology and cyberinfrastructure: current challenges and future requirements (August 20–23, 2013)

12. THE DUAL ROLE OF THEMICROCYSTIS AERUGINOSAMICROBIOME ON CYANOTOXIN PRODUCTION: COMPETITION FOR AND REMINERALIZATION OF ORGANIC NITROGEN

13. Leadership for the next generation of Great Lakes stewardship

17. Community-wide analysis of microbial genome sequence signatures

21. The Western Lake Erie Culture Collection: A promising resource for evaluating the physiological and genetic diversity of Microcystis and its associated microbiome

26. The Western Lake Erie Culture Collection: A promising resource for evaluating the physiological and genetic diversity ofMicrocystisand its associated microbiome

28. Lake Erie field trials to advance autonomous monitoring of cyanobacterial harmful algal blooms

34. The sulfur cycle connects microbiomes and biogeochemistry in deep-sea hydrothermal plumes

36. Metagenomic and Metatranscriptomic Insights into Population Diversity of Microcystis Blooms: Spatial and Temporal Dynamics of mcy Genotypes, Including a Partial Operon That Can Be Abundant and Expressed

41. Enigmatic, ultrasmall, uncultivated Archaea

47. The Lake Erie HABs Grab: A binational collaboration to characterize the western basin cyanobacterial harmful algal blooms at an unprecedented high-resolution spatial scale

50. Sedimentary pyrite sulfur isotope compositions preserve signatures of the surface microbial mat environment in sediments underlying low‐oxygen cyanobacterial mats

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