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Found 9989 publications. Showing page 21 of 400:

Publication  
Year  
Category

The Role of DNA repair in aging and neurodegeneration

SenGupta, Tanima; Nilsen, Hilde Loge; Rundén-Pran, Elise

2024

Transboundary particulate matter, photo-oxidants, acidifying and eutrophying components

Fagerli, Hilde; Benedictow, Anna Maria Katarina; Blake, Lewis R.; Caspel, Willem Elias van; Denby, Bruce; Gauss, Michael; Jonson, Jan Eiof; Klein, Heiko; Lange, Gunnar Felix; Mousing, Erik Askov; Nyiri, Agnes; Oliviè, Dirk Jan Leo; Segers, Arjo; Simpson, David; Tsyro, Svetlana; Bustamante, Alvaro Moises Valdebenito; Wind, Peter Ariaan; Aas, Wenche; Fiebig, Markus; Hjellbrekke, Anne-Gunn; Solberg, Sverre; Tørseth, Kjetil; Yttri, Karl Espen; Redeyoff, Oscar; Matthews, Bradley; Schindlbacher, Sabine; Ullrich, Bernhard; Wankmüller, Robert; Scheuschner, Thomas; Kuenen, Jeroen J.P.; Guevara, Marc; Jaffrezo, Jean-Luc; Dominutti, Pamela; Uzu, Gaelle; Conil, Sébastien; Favez, Olivier; Močnik, Griša

Norwegian Meteorological Institute

2024

Development of PFAS-free coatings in a safe and sustainable by design (SSbD) approach- the PROPLANET project

Longhin, Eleonora Marta; Varsou, Dimitra Danai; McFadden, Erin; Honza, Tatiana; SenGupta, Tanima; Murugadoss, Sivakumar; Brochmann, Solveig; Afantitis, Antreas; Dusinska, Maria; Rundén-Pran, Elise

2024

Anthropogenic carbon monoxide emissions during 2014-2020 in China constrained by in-situ observations

Jia, Mengwei; Jiang, Fei; Evangeliou, Nikolaos; Eckhardt, Sabine; Stohl, Andreas; Ding, Aijun; Huang, Xin; Feng, Shuzhuang; He, Wei; Wang, Jun; Wang, Hengmao; Wu, Mousong; Ju, Weimin

2024

Recent European F-gas Emissions from Multiple Inverse Modelling Systems

Longueville, Helene De; Melo, Daniela Brito; Ramsden, Alice; Redington, Alison; Danjou, Alexandre; Andrews, Peter; Pitt, Joseph R.; Murphy, Brendan; Saboya, Eric; Stanley, Kieran M.; O'Doherty, Simon; Wenger, Angelina; Young, Dickon; Engel, Andreas; Vollmer, Martin K.; Reimann, Stefan; Maione, Michela; Arduini, Jgor; Lunder, Chris Rene; Wagenhaeuser, Thomas; Schmidbauer, Norbert; Frumau, Arnoud; Haszpra, László; Molnar, Mihaly; Tunnicliffe, Rachel; Western, Luke M.; Rigby, Matthew; Henne, Stephan; Manning, Alistair J.; Ganesan, Anita L.

2024

Preclinical validation of human recombinant glutamate-oxaloacetate transaminase for the treatment of acute ischemic stroke

Pérez-Mato, María; Dopico-López, Antonio; Akkoc, Yunus; López-Amoedo, Sonia; Correa-Paz, Clara; Candamo-Lourido, María; Iglesias-Rey, Ramón; López-Arias, Esteban; Bugallo-Casal, Ana; Silva-Candal, Andrés da; Bravo, Susana B.; Chantada-Vázquez, María del Pilar; Arias, Susana; Santamaría-Cadavid, María; Estany-Gestal, Ana; Zaghmi, Ahlem; Gauthier, Marc A.; Gutiérrez-Fernández, María; Martin, Abraham; Llop, Jordi; Rodríguez, Cristina; Almeida, Ángeles; Migliavacca, Martina; Polo, Ester; Pelaz, Beatriz; Gozuacik, Devrim; Yamani, Naouale El; Sengupta, Tanima; Rundén-Pran, Elise; Vivancos, José; Castellanos, Mar; Díez-Tejedor, Exuperio; Sobrino, Tomás; Rabinkov, Aharon; Mirelman, David; Castillo, José; Campos, Francisco

The blood enzyme glutamate-oxaloacetate transaminase (GOT) has been postulated as an effective therapeutic to protect the brain during stroke. To demonstrate its potential clinical utility, a new human recombinant form of GOT (rGOT) was produced for medical use.

We tested the pharmacokinetics and evaluated the protective efficacy of rGOT in rodent and non-human primate models that reflected clinical stroke conditions.

We found that continuous intravenous administration of rGOT within the first 8 h after ischemic onset significantly reduced the infarct size in both severe (30%) and mild lesions (48%). Cerebrospinal fluid and proteomics analysis, in combination with positron emission tomography imaging, indicated that rGOT can reach the brain and induce cytoprotective autophagy and induce local protection by alleviating neuronal apoptosis.

Our results suggest that rGOT can be safely used immediately in patients suspected of having a stroke. This study requires further validation in clinical stroke populations.

2024

Microplastics in the Arctic and Mainland Norway; Occurence, Composition and Sources

Evangeliou, Nikolaos; Herzke, Dorte; Schmidt, Natascha; Schulze, Dorothea; Eckhardt, Sabine

2024

Leveraging digital product passports for automated environmental impact assessment using an information system

Mintjes, Berend A.; Li, Chen; Hischier, Roland; Merciai, Stefano; Bouman, Evert Alwin; Booto, Gaylord Kabongo; Booto, Stephanie

2024

OS01-12 A computational toolbox supporting the development of Safe and Sustainable by Design chemicals and materials

Sarigiannis, D.; Nikiforou, F.; Karakoltzidis, Achilleas; Agalliadou, Anna; Rydberg, Tomas; Halling, Maja; Battistelli, Chiara L.; Benfenati, Emilio; Bossa, C.; Bouman, Evert Alwin; Bourgé, Émilien; Brouwer-Milovanovic, Milena; Hill, A.; Iacovidou, E.; Kanerva, T.; Kärnman, Therese; Leso, V.; Linden, J; Lofstedt, M.; Karakitsios, Spyros

2024

State of the Climate in 2023 : Global Climate

Dunn, Robert J.H.; Blannin, Josh; Gobron, Nadine; Miller, John B.; Willett, Kate M.; Ades, Melanie; Adler, Robert; Alexe, Mihai; Allan, Richard P.; Anderson, John; Anneville, Orlane; Aono, Yasuyuki; Arguez, Anthony; Pasqual, Dolors Armenteras; Arosio, Carlo; Asher, Elizabeth; Augustine, John A.; Azorin-Molina, Cesar; Baez-Villanueva, Oscar M.; Barichivich, J.; Beck, Hylke E.; Bellouin, Nicolas; Benedetti, Angela; Blenkinsop, Stephen; Bock, Olivier; Bodin, Xavier; Bonte, Olivier; Bosilovich, Michael G.; Boucher, Olivier; Buehler, Stefan A.; Byrne, Michael P.; Campos, Diego; Cappucci, Fabrizio; Carrea, Laura; Chang, Kai-Lan; Christiansen, Hanne H; Christy, John R.; Chung, Eui-Seok; Ciasto, Laura M.; Clingan, Scott; Coldewey-Egbers, Melanie; Cooper, Owen R.; Cornes, Richard C.; Covey, Curt; Crétaux, Jean-Francois; Crimmins, Theresa; Crotwell, Molly; Culpepper, Joshua; Cusicanqui, Diego; Isaksen, Ketil; Kääb, Andreas; Kaiser, Johannes

2024

Permafrost Region Greenhouse Gas Budgets Suggest a Weak CO2 Sink and CH4 and N2O Sources, But Magnitudes Differ Between Top-Down and Bottom-Up Methods

Hugelius, G.; Ramage, J.; Burke, E.; Chatterjee, A.; Smallman, T.L.; Aalto, T.; Bastos, A.; Biasi, C.; Canadell, J.G.; Chandra, N.; Chevallier, F.; Ciais, P.; Chang, J.; Feng, L.; Jones, M.W.; Kleinen, T.; Kuhn, M.; Lauerwald, R.; Liu, J.; López-Blanco, E.; Luijkx, I.T.; Marushchak, M.E.; Natali, S.M.; Niwa, Y.; Olefeldt, D.; Palmer, P.I.; Patra, P.K.; Peters, W.; Potter, S.; Poulter, B.; Rogers, B.M.; Riley, W.J.; Saunois, M.; Schuur, E.A.G.; Thompson, Rona Louise; Treat, C.; Tsuruta, A.; Turetsky, M.R.; Virkkala, A.-M.; Voigt, C.; Watts, J.; Zhu, Q.; Zheng, B.

Large stocks of soil carbon (C) and nitrogen (N) in northern permafrost soils are vulnerable to remobilization under climate change. However, there are large uncertainties in present-day greenhouse gas (GHG) budgets. We compare bottom-up (data-driven upscaling and process-based models) and top-down (atmospheric inversion models) budgets of carbon dioxide (CO2), methane (CH4) and nitrous oxide (N2O) as well as lateral fluxes of C and N across the region over 2000–2020. Bottom-up approaches estimate higher land-to-atmosphere fluxes for all GHGs. Both bottom-up and top-down approaches show a sink of CO2 in natural ecosystems (bottom-up: −29 (−709, 455), top-down: −587 (−862, −312) Tg CO2-C yr−1) and sources of CH4 (bottom-up: 38 (22, 53), top-down: 15 (11, 18) Tg CH4-C yr−1) and N2O (bottom-up: 0.7 (0.1, 1.3), top-down: 0.09 (−0.19, 0.37) Tg N2O-N yr−1). The combined global warming potential of all three gases (GWP-100) cannot be distinguished from neutral. Over shorter timescales (GWP-20), the region is a net GHG source because CH4 dominates the total forcing. The net CO2 sink in Boreal forests and wetlands is largely offset by fires and inland water CO2 emissions as well as CH4 emissions from wetlands and inland waters, with a smaller contribution from N2O emissions. Priorities for future research include the representation of inland waters in process-based models and the compilation of process-model ensembles for CH4 and N2O. Discrepancies between bottom-up and top-down methods call for analyses of how prior flux ensembles impact inversion budgets, more and well-distributed in situ GHG measurements and improved resolution in upscaling techniques.

2024

Environmental Contaminants in an Urban Fjord, 2023

Ruus, Anders; Grung, Merete; Bæk, Kine; Rundberget, Thomas; Vogelsang, Christian; Beylich, Bjørnar; Lund, Espen; Allan, Ian; Ribeiro, Anne Luise; Hanssen, Linda; Enge, Ellen Katrin

This report presents data from the third year of a new 5-year period of the Urban Fjord programme. The programme started in 2013 and has since been altered/advanced. In 2023 the programme covers sampling and analyses of sediment, blue mussels and cod from the Inner Oslofjord, as well as water and trout from Alna River. In addition, samples of stormwater, and waste water from Bekkelaget wastewater treatment plant, are analysed. A total of ∼230 single compounds/isomers were analysed, and frequent detection was found of specific PFAS compounds in aqueous phases, other specific PFAS compounds in fish liver, certain QACs in particulate phases, certain benzothiazoles in aqueous phases, chlorinated paraffins (MCCP in particular) in sediment and biota, certain siloxanes in biota and particulate phases, metals in all matrices, and PCBs in sediment and biota.

Norsk institutt for vannforskning (NIVA)

2024

Per- and polyfluoroalkyl substances (PFAS) in surface sediments from Norwegian marine areas

Boitsov, Stepan; Bruvold, Are Sæle; Hanssen, Linda; Jensen, Henning; Ali, Aasim M.

2024

Status of the ICOS Norway atmosphere domain

Platt, Stephen Matthew; Aas, Wenche; Lunder, Chris Rene; Hermansen, Ove

2024

Exploring online public survey lifestyle datasets with statistical analysis, machine learning and semantic ontology

Chatterjee, Ayan; Riegler, Michael; Johnson, Miriam S.; Das, Jishnu; Pahari, Nibedita; Ramachandra, Raghavendra; Ghosh, Bikramaditya; Saha, Arpan; Bajpai, Ram

Lifestyle diseases significantly contribute to the global health burden, with lifestyle factors playing a crucial role in the development of depression. The COVID-19 pandemic has intensified many determinants of depression. This study aimed to identify lifestyle and demographic factors associated with depression symptoms among Indians during the pandemic, focusing on a sample from Kolkata, India. An online public survey was conducted, gathering data from 1,834 participants (with 1,767 retained post-cleaning) over three months via social media and email. The survey consisted of 44 questions and was distributed anonymously to ensure privacy. Data were analyzed using statistical methods and machine learning, with principal component analysis (PCA) and analysis of variance (ANOVA) employed for feature selection. K-means clustering divided the pre-processed dataset into five clusters, and a support vector machine (SVM) with a linear kernel achieved 96% accuracy in a multi-class classification problem. The Local Interpretable Model-agnostic Explanations (LIME) algorithm provided local explanations for the SVM model predictions. Additionally, an OWL (web ontology language) ontology facilitated the semantic representation and reasoning of the survey data. The study highlighted a pipeline for collecting, analyzing, and representing data from online public surveys during the pandemic. The identified factors were correlated with depressive symptoms, illustrating the significant influence of lifestyle and demographic variables on mental health. The online survey method proved advantageous for data collection, visualization, and cost-effectiveness while maintaining anonymity and reducing bias. Challenges included reaching the target population, addressing language barriers, ensuring digital literacy, and mitigating dishonest responses and sampling errors. In conclusion, lifestyle and demographic factors significantly impact depression during the COVID-19 pandemic. The study’s methodology offers valuable insights into addressing mental health challenges through scalable online surveys, aiding in the understanding and mitigation of depression risk factors.

2024

Global nitrous oxide budget (1980–2020)

Tian, Hanqin; Pan, Naiqing; Thompson, Rona Louise; Canadell, Josep G.; Suntharalingam, Parvadha; Regnier, Pierre; Davidson, Eric A.; Prather, Michael; Ciais, Philippe; Muntean, Marilena; Pan, Shufen; Winiwarter, Wilfried; Zaehle, Sonke; Zhou, Feng; Jackson, Robert B.; Bange, Hermann W.; Berthet, Sarah; Bian, Zihao; Bianchi, Daniele; Bouwman, Alexander F.; Buitenhuis, Erik T.; Dutton, Geoffrey; Hu, Minpeng; Ito, Akihiko; Jain, Atul K.; Jeltsch-Thömmes, Aurich; Joos, Fortunat; Kou-Giesbrecht, Sian; Krummel, Paul B.; Lan, Xin; Landolfi, Angela; Lauerwald, Ronny; Li, Ya; Lu, Chaoqun; Maavara, Taylor; Manizza, Manfredi; Millet, Dylan B.; Mühle, Jens; Patra, Prabir K.; Peters, Glen Philip; Qin, Xiaoyu; Raymond, Peter; Resplandy, Laure; Rosentreter, Judith A.; Shi, Hao; Sun, Qing; Tonina, Daniele; Tubiello, Francesco N.; Werf, Guido R. Van Der; Vuichard, Nicolas; Wang, Junjie; Wells, Kelley C.; Western, Luke M.; Wilson, Chris; Yang, Jia; Yao, Yuanzhi; You, Yongfa; Zhu, Qing

Nitrous oxide (N2O) is a long-lived potent greenhouse gas and stratospheric ozone-depleting substance that has been accumulating in the atmosphere since the preindustrial period. The mole fraction of atmospheric N2O has increased by nearly 25 % from 270 ppb (parts per billion) in 1750 to 336 ppb in 2022, with the fastest annual growth rate since 1980 of more than 1.3 ppb yr−1 in both 2020 and 2021. According to the Sixth Assessment Report of the Intergovernmental Panel on Climate Change (IPCC AR6), the relative contribution of N2O to the total enhanced effective radiative forcing of greenhouse gases was 6.4 % for 1750–2022. As a core component of our global greenhouse gas assessments coordinated by the Global Carbon Project (GCP), our global N2O budget incorporates both natural and anthropogenic sources and sinks and accounts for the interactions between nitrogen additions and the biogeochemical processes that control N2O emissions. We use bottom-up (BU: inventory, statistical extrapolation of flux measurements, and process-based land and ocean modeling) and top-down (TD: atmospheric measurement-based inversion) approaches. We provide a comprehensive quantification of global N2O sources and sinks in 21 natural and anthropogenic categories in 18 regions between 1980 and 2020. We estimate that total annual anthropogenic N2O emissions have increased 40 % (or 1.9 Tg N yr−1) in the past 4 decades (1980–2020). Direct agricultural emissions in 2020 (3.9 Tg N yr−1, best estimate) represent the large majority of anthropogenic emissions, followed by other direct anthropogenic sources, including fossil fuel and industry, waste and wastewater, and biomass burning (2.1 Tg N yr−1), and indirect anthropogenic sources (1.3 Tg N yr−1) . For the year 2020, our best estimate of total BU emissions for natural and anthropogenic sources was 18.5 (lower–upper bounds: 10.6–27.0) Tg N yr−1, close to our TD estimate of 17.0 (16.6–17.4) Tg N yr−1. For the 2010–2019 period, the annual BU decadal-average emissions for both natural and anthropogenic sources were 18.2 (10.6–25.9) Tg N yr−1 and TD emissions were 17.4 (15.8–19.20) Tg N yr−1. The once top emitter Europe has reduced its emissions by 31 % since the 1980s, while those of emerging economies have grown, making China the top emitter since the 2010s. The observed atmospheric N2O concentrations in recent years have exceeded projected levels under all scenarios in the Coupled Model Intercomparison Project Phase 6 (CMIP6), underscoring the importance of reducing anthropogenic N2O emissions. To evaluate mitigation efforts and contribute to the Global Stocktake of the United Nations Framework Convention on Climate Change, we propose the establishment of a global network for monitoring and modeling N2O from the surface through to the stratosphere. The data presented in this work can be downloaded from https://doi.org/10.18160/RQ8P-2Z4R (Tian et al., 2023).

2024

Wide-scope Target and Nontarget Profiling of the Airborne Chemical Exposome using Polydimethylsiloxane (PDMS) Passive Samplers

Sunyer-Caldú, Adrià; Bonnefille, Bénilde; Fornaroli, Camille; Raptopoulou, Foteini; Pesquet, Edouard; Xie, Hongyu; Rian, May Britt; Lee, J. E.; Jeon, Y.; Kim, B.; Lee, S.-B.; Froment, Jean Francois; Papazian, Stefano; Martin, Jonathan W.

2024

Amplification in the Lower Thermosphere during the 2003 October-November Solar Storms

Zhang, J.; Orsolini, Yvan; Limpasuvan, Varavut; Liu, H.; Oberheide, Jens

2024

Hazard assessment methodologies applicable to the SSbD framework: where we are

Longhin, Eleonora Marta; Murugadoss, Sivakumar; Olsen, Ann-Karin Hardie; SenGupta, Tanima; Rundén-Pran, Elise; Dusinska, Maria

2024

Findings from Biomass Burning Field Campaigns Set Directions for 2 Future Research on Atmospheric Impacts

Barsanti, Kelley C.; Brown, Steven S.; Fischer, Emily V.; Kaiser, Johannes; Stockwell, Chelsea E.; Thompson, Chelsea; Warneke, Carsten; Yokelson, Robert

2024

Can we identify safe(r) substitutes for PFAS coatings?

Longhin, Eleonora Marta; Olsen, Ann-Karin Hardie; Varsou, Dimitra Danai; McFadden, Erin; Ma, Xiaoxiong; Honza, Tatiana; SenGupta, Tanima; Yamani, Naouale El; Murugadoss, Sivakumar; Brochmann, Solveig; Afantitis, Antreas; Dusinska, Maria; Rundén-Pran, Elise; Seif, Johannes P.; Torres, Alejandro Del Real

2024

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