TY - JOUR A1 - Arias Andrés, María de Jesús A1 - Kettner, Marie Therese A1 - Miki, Takeshi A1 - Grossart, Hans-Peter T1 - Microplastics: New substrates for heterotrophic activity contribute to altering organic matter cycles in aquatic ecosystems JF - The science of the total environment : an international journal for scientific research into the environment and its relationship with man N2 - Heterotrophic microbes with the capability to process considerable amounts of organic matter can colonize microplastic particles (MP) in aquatic ecosystems. Weather colonization of microorganisms on MP will alter ecological niche and functioning of microbial communities remains still unanswered. Therefore, we compared the functional diversity of biofilms on microplastics when incubated in three lakes in northeastern Germany differing in trophy and limnological features. For all lakes, we compared heterotrophic activities of MP biofilms with those of microorganisms in the surrounding water by using Biolog (R) EcoPlates and assessed their oxygen consumption in microcosm assays with and without MP. The present study found that the total biofilm biomass was higher in the oligo-mesotrophic and dystrophic lakes than in the eutrophic lake. In all lakes, functional diversity profiles of MP biofilms consistently differed from those in the surrounding water. However, solely in the oligo-mesotrophic lake MP biofilms had a higher functional richness compared to the ambient water. These results demonstrate that the functionality and hence the ecological role of MP-associated microbial communities are context-dependent, i.e. different environments lead to substantial changes in biomass build up and heterotrophic activities of MP biofilms. We propose that MP surfaces act as new niches for aquatic microorganisms and that the constantly increasing MP pollution has the potential to globally impact carbon dynamics of pelagic environments by altering heterotrophic activities. (C) 2018 Elsevier B.V. All rights reserved. KW - Microplastics KW - Microorganisms KW - Biofilms KW - Total biomass KW - Heterotrophic activity KW - Functional diversity KW - Multi-functionality index Y1 - 2018 U6 - https://doi.org/10.1016/j.scitotenv.2018.04.199 SN - 0048-9697 SN - 1879-1026 VL - 635 SP - 1152 EP - 1159 PB - Elsevier CY - Amsterdam ER - TY - JOUR A1 - Khozroughi, Amin Ghadiri A1 - Kroh, Lothar W. A1 - Schlueter, Oliver A1 - Rawel, Harshadrai Manilal T1 - Assessment of the bacterial impact on the post-mortem formation of zinc protoporphyrin IX in pork meat JF - Food chemistry N2 - The post-mortem accumulation of the heme biosynthesis metabolite zinc protoporphyrin IX (ZnPP) in porcine muscle is associated with both a meat-inherent and a bacterial enzymatic reaction during meat storage. To estimate the bacterial impact on ZnPP formation, meat and meat-like media were investigated by HPLC-FLD (and MALDI-TOF-MS) after inoculation with a representative microorganism (P. fluorescens). Results indicate the principal ability of meat-inherent bacteria to form ZnPP in meat extracts and meat-like media, but not on the meat muscle. Thus it was concluded that the ZnPP formation in meat is due to a meat-inherent enzymatic reaction induced by porcine ferrochelatase (FECH), while the bacterial (FECH) induced reaction seems to be not significant. KW - Meat storage KW - Pseudomonas KW - Post mortem chemistry KW - Microorganisms KW - Fluorescence Y1 - 2018 U6 - https://doi.org/10.1016/j.foodchem.2018.01.045 SN - 0308-8146 SN - 1873-7072 VL - 256 SP - 25 EP - 30 PB - Elsevier CY - Oxford ER - TY - THES A1 - Lerm, Stephanie T1 - Mikroorganismen in geothermischen Aquiferen : Einfluss mikrobieller Prozesse auf den Anlagenbetrieb T1 - Microorganisms in geothermal plants : influence of microbial processes on plant operation N2 - In Fluid-, Filter- und Sedimentproben von vier geothermischen Anlagen des Norddeutschen Beckens wurden mit molekulargenetischen Verfahren unterschiedliche mikrobielle Gemeinschaften nachgewiesen. Die mikrobielle Zusammensetzung in den Prozesswässern wurde dabei durch die Aquiferteufe, die Salinität, die Temperatur und den verfügbaren Elektronendonatoren und -akzeptoren beeinflusst. Die in den anoxischen Prozesswässern identifizierten Organismen zeichneten sich durch einen chemoheterotrophen oder chemoautotrophen Stoffwechsel aus, wobei Nitrat, Sulfat, Eisen (III) oder Bikarbonat als terminale Elektronenakzeptoren fungierten. Mikroorganismen beeinflussten den Betrieb von zwei Anlagen negativ. So reduzierten im Prozesswasser des Kältespeichers am Berliner Reichstag vorhandene Eisenoxidierer, nahe verwandt zu der Gattung Gallionella, die Injektivität der Bohrungen durch Eisenhydroxidausfällungen in den Filterschlitzen. Biofilme, die von schwefeloxidierenden Bakterien der Gattung Thiothrix in den Filtern der obertägigen Anlage gebildet wurden, führten ebenfalls zu Betriebsstörungen, indem sie die Injektion des Fluids in den Aquifer behinderten. Beim Wärmespeicher in Neubrandenburg waren Sulfatreduzierer vermutlich an der Bildung von Eisensulfidausfällungen in den obertägigen Filtern und im bohrlochnahen Bereich beteiligt und verstärkten Korrosionsprozesse an der Pumpe im Bohrloch der kalten Aquiferseite. Organische Säuren in den Fluiden sowie mineralische Ausfällungen in den Filtern der obertägigen Anlagen waren Belege für die Aktivität der in den verschiedenen Anlagen vorhandenen Mikroorganismen. Es wurde zudem deutlich, dass Mikroorganismen auf Grund der hohen Durchflussraten in den Anlagen chemische Veränderungen in den Prozesswässern deutlich sensitiver anzeigen als chemische Analyseverfahren. So deuteten Änderungen in der Zusammensetzung der mikrobiellen Biozönosen und speziell die Identifikation von Indikatororganismen wie Eisen- und Schwefeloxidierern, fermentativen Bakterien und Sulfatreduzierern auf eine erhöhte Verfügbarkeit von Elektronendonatoren oder akzeptoren in den Prozesswässern hin. Die Ursachen für die an den Geothermieanlagen auftretenden Betriebsstörungen konnten dadurch erkannt werden. N2 - Distinct microbial communities were found in fluid, filter, and sediment samples taken from four geothermal plants in the North German Basin by using molecular genetic techniques. The microbial composition in process fluids was influenced by aquifer depth, salinity, temperature, and available electron donors and acceptors. The organisms identified in the anoxic process fluids were closely related to chemoheterotrophs and chemoautotrophs that use nitrate, sulfate, ferric iron, and bicarbonate as the terminal electron acceptor. Microorganisms adversely affected operation of two geothermal plants. For example, Gallionella-related iron oxidizing bacteria, abundant in process fluids of the cold store at the Berliner Reichstag caused operation failures due to the formation of iron hydroxide scale that clogged the filter slots in the wells and led to a reduction of injectivity. In addition, biofilms formed by sulfur oxidizing Thiothrix sp. in filters of the topside facility drastically reduced injectivity. At the heat store in Neubrandenburg, sulfate reducing bacteria were probably involved in the formation of iron sulfides in filters of the topside facility and in the near wellbore area, and may have increased corrosion processes on the well pump at the cold side of the aquifer. Volatile fatty acids in process fluids and mineral scales in filters of the topside facility indicated the activity of microorganisms present in the different geothermal plants. In addition, it was shown that microorganisms react more sensitive than chemical analyses because of the high fluid flow in the plants, and thus indicate chemical changes in process fluids. Changes in the microbial community composition, and particularly the identification of indicator organisms, such as iron and sulfur oxidizer, fermentative, and sulfate reducing bacteria were suitable for the detection of increased availability of electron donors and acceptors. Thus, reasons for operation failures occurring at geothermal plants could be identified. KW - Mikroorganismen KW - Aquifer KW - Biofilme KW - Korrosion KW - genetisches Fingerprinting KW - Microorganisms KW - geothermal aquifer KW - biofilm KW - corrosion KW - genetic fingerprinting Y1 - 2012 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:kobv:517-opus-63705 ER -