Details zur Publikation

Kategorie Textpublikation
Referenztyp Zeitschriften
DOI 10.1038/ismej.2017.146
Titel (primär) Microbial megacities fueled by methane oxidation in a mineral spring cave
Autor Karwautz, C.; Kus, G.; Stöckl, M.; Neu, T.R.; Lueders, T.
Quelle ISME Journal
Erscheinungsjahr 2018
Department FLOEK
Band/Volume 12
Heft 1
Seite von 87
Seite bis 100
Sprache englisch
Supplements https://media.nature.com/original/nature-assets/ismej/journal/v12/n1/extref/ismej2017146x1.pdf
UFZ Querschnittsthemen RU2;
Abstract Massive biofilms have been discovered in the cave of an iodine-rich former medicinal spring in southern Germany. The biofilms completely cover the walls and ceilings of the cave, giving rise to speculations about their metabolism. Here we report on first insights into the structure and function of the biofilm microbiota, combining geochemical, imaging and molecular analytics. Stable isotope analysis indicated that thermogenic methane emerging into the cave served as an important driver of biofilm formation. The undisturbed cavern atmosphere contained up to 3000p.p.m. methane and was microoxic. A high abundance and diversity of aerobic methanotrophs primarily within the Methylococcales (Gammaproteobacteria) and methylotrophic Methylophilaceae (Betaproteobacteria) were found in the biofilms, along with a surprising diversity of associated heterotrophic bacteria. The highest methane oxidation potentials were measured for submerged biofilms on the cavern wall. Highly organized globular structures of the biofilm matrix were revealed by fluorescent lectin staining. We propose that the extracellular matrix served not only as an electron sink for nutrient-limited biofilm methylotrophs but potentially also as a diffusive barrier against volatilized iodine species. Possible links between carbon and iodine cycling in this peculiar habitat are discussed.
dauerhafte UFZ-Verlinkung https://www.ufz.de/index.php?en=20939&ufzPublicationIdentifier=19336
Karwautz, C., Kus, G., Stöckl, M., Neu, T.R., Lueders, T. (2018):
Microbial megacities fueled by methane oxidation in a mineral spring cave
ISME J. 12 (1), 87 - 100 10.1038/ismej.2017.146