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One of the most prominent manifestations of climate change is the changing Arctic sea-ice regime with a reduction in the summer sea-ice extent and a shift from thicker, perennial multiyear ice towards thinner, first-year ice. These changes in the physical environment are likely to impact microbial communities, a key component of Arctic marine food webs and biogeochemical cycles. During the Norwegian young sea ICE expedition (N-ICE2015) north of Svalbard, seawater samples were collected at the surface (5 m), subsurface (20 or 50 m), and mesopelagic (250 m) depths on 9 March, 27 April, and 16 June 2015. In addition, several physical and biogeochemical data were recorded to contextualize the collected microbial communities. Through the massively parallel sequencing of the small subunit ribosomal RNA amplicon and metagenomic data, this work allows studying the Arctic's microbial community structure during the late winter to early summer transition. Results showed that, at compositional level, Alpha- (30.7%) and Gammaproteobacteria (28.6%) are the most frequent taxa across the prokaryotic N-ICE2015 collection, and also the most phylogenetically diverse. Winter to early summer trends were quite evident since there was a high relative abundance of thaumarchaeotes in the under-ice water column in late winter while this group was nearly absent during early summer. Moreover, the emergence of Flavobacteria and the SAR92 clade in early summer might be associated with the degradation of a spring bloom of Phaeocystis. High relative abundance of hydrocarbonoclastic bacteria, particularly Alcanivorax (54.3%) and Marinobacter (6.3%), was also found. Richness showed different patterns along the depth gradient for prokaryotic (highest at mesopelagic depth) and protistan communities (higher at subsurface depths). The microbial N-ICE2015 collection analyzed in the present study provides comprehensive new knowledge about the pelagic microbiota below drifting Arctic sea-ice. The higher microbial diversity found in late winter/early spring communities reinforces the need to continue with further studies to properly characterize the winter microbial communities under the pack-ice.
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http://dx.doi.org/10.1007/s00248-018-01314-2 | DOI Listing |
Appl Environ Microbiol
September 2025
Department of Microbiology, Faculty of Science, University of Manitoba, Winnipeg, Manitoba, Canada.
Unlabelled: Although wastewater treatment plants harbor many pathogens, traditional methods that monitor the microbial quality of surface water and wastewater have not changed since the early 1900s and often disregard the presence of other types of significant waterborne pathogens such as viruses. We used metagenomics and quantitative PCR to assess the taxonomy, functional profiling, and seasonal patterns of DNA and RNA viruses, including the virome distribution in aquatic environments receiving wastewater discharges. Environmental water samples were collected at 11 locations in Winnipeg, Manitoba, along the Red and Assiniboine rivers during the Spring, Summer, and Fall 2021.
View Article and Find Full Text PDFNew Phytol
September 2025
Environment and Natural Resources Institute, University of Alaska Anchorage, Anchorage, AK, 99508, USA.
Snow is an important insulator of Arctic soils during winter and may be a source of soil moisture in summer. Changes in snow depth are likely to affect fine root growth and mortality via changes in soil temperature, moisture, and/or nutrient availability, which could alter aboveground growth and reproduction of Arctic vegetation. We explored fine root dynamics at three contrasting treelines in northwest Alaska.
View Article and Find Full Text PDFEnviron Technol
September 2025
School of Architecture and Urban Planning, Chongqing Jiaotong University, Chongqing, People's Republic of China.
As urbanization accelerates, the issue of pollutant discharge from building materials has become the focus of public attention. Conducted in a ventilated environmental chamber, the experiments investigated the emission characteristics of VOCs from dry and wet building materials, focusing on the influencing factors, such as temperature, relative humidity (RH), ventilation, and seasonality. The impact of influencing factors was quantified using a one-factor-at-a-time control method.
View Article and Find Full Text PDFPoult Sci
August 2025
Graduate Institute of Biomedical Sciences, China Medical University, Taichung 404, Taiwan. Electronic address:
Chicken Leucocytozoonosis is a protozoan disease that affects the blood and tissues of chickens. High summer temperatures create optimal conditions for reproducing biting midges, the primary vectors for transmitting Leucocytozoon to chickens. In Taiwan, a subtropical region, the disease remains prevalent throughout the year, except in winter, leading to significant economic losses due to increased mortality and reduced egg production.
View Article and Find Full Text PDFEnviron Int
September 2025
Centre for Molecular Biosciences and Non-communicable Diseases Research, Xi'an University of Science and Technology, Xi'an 710054, China. Electronic address:
Background: Nutritional supplements and environments have been linked with food allergy (FA), but little research has explored their interactions on children's FA.
Objectives: To explore the associations between early-life nutritional supplements, household environmental factors (HEFs), and outdoor air pollutant (OAP) exposures, and their interactions on children's FAs.
Methods: We collected 20,730 surveyed questionnaires from five Chinese cities, covering data on individual characteristics, health outcomes, and HEFs.