Gespeichert in:
Bibliographische Detailangaben
Hauptverfasser: Natwora, Kaela E, Heathcote, Adam J, Edlund, Mark B, Bowe, Shane E, Kramer, Benjamin J, Callaghan, Jake D, Sheik, Cody S
Format: Artículo científico
Sprache:en
Veröffentlicht: Harmful algae 2025
Schlagworte:
Online-Zugang:https://pubmed.ncbi.nlm.nih.gov/41241526/
Tags: Tag hinzufügen
Keine Tags, Fügen Sie den ersten Tag hinzu!
_version_ 1868266127707078656
author Natwora, Kaela E
Heathcote, Adam J
Edlund, Mark B
Bowe, Shane E
Kramer, Benjamin J
Callaghan, Jake D
Sheik, Cody S
author_facet Natwora, Kaela E
Heathcote, Adam J
Edlund, Mark B
Bowe, Shane E
Kramer, Benjamin J
Callaghan, Jake D
Sheik, Cody S
Natwora, Kaela E
Heathcote, Adam J
Edlund, Mark B
Bowe, Shane E
Kramer, Benjamin J
Callaghan, Jake D
Sheik, Cody S
collection PubMed - marine biology
contents Rare cyanobacteria drive nitrogen-fixation and cyanotoxin production in an Aphanizomenon-dominated bloom. Natwora, Kaela E Heathcote, Adam J Edlund, Mark B Bowe, Shane E Kramer, Benjamin J Callaghan, Jake D Sheik, Cody S Nitrogen Fixation Aphanizomenon Harmful Algal Bloom Cyanobacteria Bacterial Toxins Microcystins Lakes Nitrogen Seasons Eutrophication Late summer, recurring cyanobacterial blooms in Lake of the Woods (LOW) are polycyanobacterial and typically dominated by Aphanizomenon flos-aquae. LOW waters are typically nitrogen limited, relative to phosphorus. As such, the dominance of Aphanizomenon flos-aquae, a putative nitrogen-fixing cyanobacterium, suggests that its ability to fix nitrogen may be advantageous and aid in its ability to bloom. This study sought to quantify nitrogen fixation rates and identify cyanotoxin-producing species during the blooms. Throughout the 2021 season, we quantified nutrients, N-fixation rates, microbial community composition, and gene expression to determine who is responsible for cyanotoxin synthesis and nitrogen fixation. We found nitrogen fixation rates increased throughout the season, coincided with the bloom, but likely cannot fully support the bloom's nitrogen demand. However, the transcription of nitrogenase genes was solely done by less abundant Dolichospermum spp. and not by A. flos-aquae. Genome analysis suggests this population of A. flos-aquae cannot create a functioning nitrogenase, but they do still express the genes to initiate heterocyst differentiation. Microcystin gene transcripts were primarily from Microcystis spp. and Planktothrix spp. and coincided with microcystin concentrations. Interestingly, Planktothrix highly expressed anabaenopeptin genes, suggesting the presence of additional bioactive compounds in LOW. This work suggests that rare cyanobacterial members drive nitrogen fixation, and may be necessary for the seasonal bloom's function, toxicity, and longevity.
format Artículo científico
id pubmed_41241526
institution PubMed
language en
publishDate 2025
publisher Harmful algae
record_format pubmed
spellingShingle Rare cyanobacteria drive nitrogen-fixation and cyanotoxin production in an Aphanizomenon-dominated bloom.
Natwora, Kaela E
Heathcote, Adam J
Edlund, Mark B
Bowe, Shane E
Kramer, Benjamin J
Callaghan, Jake D
Sheik, Cody S
Nitrogen Fixation
Aphanizomenon
Harmful Algal Bloom
Cyanobacteria
Bacterial Toxins
Microcystins
Lakes
Nitrogen
Seasons
Eutrophication
Rare cyanobacteria drive nitrogen-fixation and cyanotoxin production in an Aphanizomenon-dominated bloom. Natwora, Kaela E Heathcote, Adam J Edlund, Mark B Bowe, Shane E Kramer, Benjamin J Callaghan, Jake D Sheik, Cody S Nitrogen Fixation Aphanizomenon Harmful Algal Bloom Cyanobacteria Bacterial Toxins Microcystins Lakes Nitrogen Seasons Eutrophication Late summer, recurring cyanobacterial blooms in Lake of the Woods (LOW) are polycyanobacterial and typically dominated by Aphanizomenon flos-aquae. LOW waters are typically nitrogen limited, relative to phosphorus. As such, the dominance of Aphanizomenon flos-aquae, a putative nitrogen-fixing cyanobacterium, suggests that its ability to fix nitrogen may be advantageous and aid in its ability to bloom. This study sought to quantify nitrogen fixation rates and identify cyanotoxin-producing species during the blooms. Throughout the 2021 season, we quantified nutrients, N-fixation rates, microbial community composition, and gene expression to determine who is responsible for cyanotoxin synthesis and nitrogen fixation. We found nitrogen fixation rates increased throughout the season, coincided with the bloom, but likely cannot fully support the bloom's nitrogen demand. However, the transcription of nitrogenase genes was solely done by less abundant Dolichospermum spp. and not by A. flos-aquae. Genome analysis suggests this population of A. flos-aquae cannot create a functioning nitrogenase, but they do still express the genes to initiate heterocyst differentiation. Microcystin gene transcripts were primarily from Microcystis spp. and Planktothrix spp. and coincided with microcystin concentrations. Interestingly, Planktothrix highly expressed anabaenopeptin genes, suggesting the presence of additional bioactive compounds in LOW. This work suggests that rare cyanobacterial members drive nitrogen fixation, and may be necessary for the seasonal bloom's function, toxicity, and longevity.
title Rare cyanobacteria drive nitrogen-fixation and cyanotoxin production in an Aphanizomenon-dominated bloom.
topic Nitrogen Fixation
Aphanizomenon
Harmful Algal Bloom
Cyanobacteria
Bacterial Toxins
Microcystins
Lakes
Nitrogen
Seasons
Eutrophication
url https://pubmed.ncbi.nlm.nih.gov/41241526/