Extreme25 Expedition Report
DOI:
https://doi.org/10.7557/7.8619Keywords:
Cold seeps, Gas, Hydrothermal vent, Methane, Fram Strait, Gas hydrate, Mud volcano, Carbonate, Craters, Biogeochemical processes, Deep-Sea Biology, DNA, Seafloor imaging, Education, Outreach, co-creation and participation, Microbiology, Meiofauna, Macrofauna, Arctic marine macrofauna, BiomarkersAbstract
The Extreme25 expedition is conducted as a continuation of Extreme24 and within the umbrella of EXTREMES UArctic project (UA 06/2024), a collaboration between UiT-The Arctic University of Norway (Department of Geosciences), the University of Copenhagen (Department of Arts and Cultural Studies), and the University of Iceland Research Centre in Þingeyjarsveit. The Extreme25 expedition brought together scientists, students, media experts, and artists from around the world to explore extreme environments. The international team included geologists, geophysicists, geochemists, methane specialists, and marine ecologists, and for the first time, the EXTREME expedition also hosted an active delegation from the National Research Council of Italy (CNR), representing multiple institutes and disciplines. The various groups included a team of chemists and engineers from Woods Hole Oceanographic Institution; researchers from EXTREMES, scientists from the University of Bergen contributing expertise in deep-sea chemosynthesis-based ecosystems; scientists from University Milano Bicocca supporting the high-resolution mapping effort; microbiologists from University of Naples Federico II; micropalaeontologists from University of Vienna; anthropologists and artists studying human–polar interactions and new modes of science communication.
The overarching goal of the expedition was to explore deep-sea habitats of cold seeps and hydrothermal vents within Norwegian waters, from the Fram Strait to the Barents Sea, and collect samples that can tell us about the geodynamics and biology of these extreme environments. The expedition has been developed by leveraging the extensive knowledge gained from two significant projects funded by the Norwegian Research Council: CAGE (Centre for Arctic Gas Hydrate, Environment and Climate) and AKMA (Advancing Knowledge of Methane in the Arctic), hosted at the Department of Geosciences at UiT.
Downloads
References
Andreassen, K., Hubbard, A., Winsborrow, M., Patton, H., Vadakkepuliyambatta, S., Plaza-Faverola, A., Gudlaugsson, E., Serov, P., Deryabin, A., Mattingsdal, R., Mienert, J., & Bünz, S. (2017). Massive blow-out craters formed by hydrate-controlled methane expulsion from the Arctic seafloor. Science, 356(6341), 948–953. https://doi.org/10.1126/science.aal4500
Argentino, C., Mattingsdal, R., Eidvin, T., Ohm, S. E., & Panieri, G. (2025). A constellation of mud volcanoes originated from a buried Arctic mega-slide, Southwestern Barents Sea. Scientific Reports, 15(1). https://doi.org/10.1038/s41598-025-99578-5
Bernard, B. B. (1979). Methane in marine sediments. Deep Sea Research Part A. Oceanographic Research Papers, 26(4), 429–443. https://doi.org/10.1016/0198-0149(79)90056-6
Chand, S., Knies, J., Geissler, W. H., Plaza-Faverola, A., & Thorsnes, T. (2024). Acoustic evidence of hydrocarbon release associated with the Spitsbergen Transform Fault, north of the Molloy Ridge, Fram Strait. Frontiers in Earth Science, 12. https://doi.org/10.3389/feart.2024.1347252
Chand, S., Thorsnes, T., Rise, L., Brunstad, H., Stoddart, D., Bøe, R., Lågstad, P., & Svolsbru, T. (2012). Multiple episodes of fluid flow in the SW Barents Sea (Loppa High) evidenced by gas flares, pockmarks and gas hydrate accumulation. Earth and Planetary Science Letters, 331-332, 305–314. https://doi.org/10.1016/j.epsl.2012.03.021
Czuba, W., Ritzmann, O., Nishimura, Y., Grad, M., Mjelde, R., Guterch, A., & Jokat, W. (2005). Crustal structure of northern Spitsbergen along the deep seismic transect between the Molloy Deep and Nordaustlandet. Geophysical Journal International, 161(2), 347–364. https://doi.org/10.1111/j.1365-246x.2005.02593.x
Dumais, M. A., Gernigon, L., Olesen, O., Johansen, S. E., & Brönner, M. (2021). New interpretation of the spreading evolution of the Knipovich Ridge derived from aeromagnetic data. Geophysical Journal International, 224(2), 1422–1428. https://doi.org/10.1093/gji/ggaa527
Klenke, M., & Schenke, H. W. (2002). A new bathymetric model for the central Fram Strait. Marine Geophysical Researches, 23(4), 367–378. https://doi.org/10.1023/a:1025764206736
Lein, A., Vogt, P., Crane, K., Egorov, A., & Ivanov, M. (1999). Chemical and isotopic evidence for the nature of the fluid in CH 4 -containing sediments of the Håkon Mosby Mud Volcano. Geo-Marine Letters, 19(1-2), 76–83. https://doi.org/10.1007/s003670050095
Ligi, M., Cuffaro, M., Muccini, F., & Bonatti, E. (2022). Generation and evolution of the oceanic lithosphere in the North Atlantic. La Rivista Del Nuovo Cimento, 45(9), 587–659. https://doi.org/10.1007/s40766-022-00035-0
MacLeod, C. J., Carlut, J., Escartín, J., Horen, H., & Morris, A. (2011). Quantitative constraint on footwall rotations at the 15°45′N oceanic core complex, Mid-Atlantic Ridge: Implications for oceanic detachment fault processes. Geochemistry, Geophysics, Geosystems, 12(5), n/a-n/a. https://doi.org/10.1029/2011gc003503
Milkov, A. V., & Etiope, G. (2018). Revised genetic diagrams for natural gases based on a global dataset of >20,000 samples. Organic Geochemistry, 125, 109–120. https://doi.org/10.1016/j.orggeochem.2018.09.002
Panieri, G., Argentino, C., Ramalho, S. P., Vulcano, F., Savini, A., Fallati, L., Brekke, T., Galimberti, G., Riva, F., Balsa, J., Eilertsen, M. H., Stokke, R., Steen, I. H., Sahy, D., Kalenitchenko, D., Büenz, S., & Mattingsdal, R. (2024). An Arctic natural oil seep investigated from space to the seafloor. Science of the Total Environment, 907, 167788–167788. https://doi.org/10.1016/j.scitotenv.2023.167788
Panieri, G., Argentino, C., Savini, A., Ferré, B., Hemmateenejad, F., Eilertsen, M. H., Mattingsdal, R., Ramalho, S. P., Eidvin, T., Youngs, S., Colson, B. C., Pauline, A., Kapit, J. A., Swanborn, D., Rogers, A. D., Angeles, I. B., Polteau, S., Kalenitchenko, D., Buenz, S., & Mazzini, A. (2025). Sanctuary for vulnerable Arctic species at the Borealis Mud Volcano. Nature Communications, 16(1). https://doi.org/10.1038/s41467-024-55712-x
Panieri, G., Bünz, S., Fornari, D. J., Escartín, J., Serov, P., Jansson, P., Torres, M. E., Johnson, J. T., Hong, W.-L., Sauer, S., Garcia, R. G., & Gracias, N. (2017). An integrated view of the methane system in the pockmarks at Vestnesa Ridge, 79°N. Marine Geology, 390, 282–300. https://doi.org/10.1016/j.margeo.2017.06.006
Panieri, G., Bünz, S., Savini, A., Rogers, A. D., Colson, B., Argentino, C., Dausse, D., Swanborn, D., Goetz, E., Ernsten, E., Hemmateenejad, F., Barrenechea Angeles, I., Viola, I., Hayden-Nygren, J., Andersen, K., Rolley, L., Eilertsen, M. H., Cosserat, O., Vågenes, P., & Andersen, R. (2024). AKMA3 Cruise Report. Septentrio Reports, 1. https://doi.org/10.7557/7.7745
Sanfilippo, A., Stracke, A., Genske, F., Scarani, S., Cuffaro, M., Basch, V., Borghini, G., Brunelli, D., Ferrando, C., Peyve, A. A., & Ligi, M. (2024). Upwelling of melt-depleted mantle under Iceland. Nature Geoscience, 17(10), 1046–1052. https://doi.org/10.1038/s41561-024-01532-z
Serov, P., Vadakkepuliyambatta, S., Mienert, J., Patton, H., Portnov, A., Silyakova, A., Panieri, G., Carroll, M. L., Carroll, J., Andreassen, K., & Hubbard, A. (2017). Postglacial response of Arctic Ocean gas hydrates to climatic amelioration. Proceedings of the National Academy of Sciences, 114(24), 6215–6220. https://doi.org/10.1073/pnas.1619288114
Shah, A. (2017). Ethnography? Participant observation, a potentially revolutionary praxis. HAU: Journal of Ethnographic Theory, 7(1), 45–59. https://doi.org/10.14318/hau7.1.008
Smith, D. K., Escartín, J., Schouten, H., & Cann, J. R. (2008). Fault rotation and core complex formation: Significant processes in seafloor formation at slow-spreading mid-ocean ridges (Mid-Atlantic Ridge, 13°-15°N). Geochemistry, Geophysics, Geosystems, 9(3), n/a-n/a. https://doi.org/10.1029/2007gc001699
Talwani, M., & Eldholm, O. (1977). Evolution of the Norwegian-Greenland Sea. Geological Society of America Bulletin, 88(7), 969. https://doi.org/10.1130/0016-7606(1977)88%3C969:eotns%3E2.0.co;2
Tucholke, B. E., Lin, J., & Kleinrock, M. C. (1998). Megamullions and mullion structure defining oceanic metamorphic core complexes on the Mid-Atlantic Ridge. Journal of Geophysical Research: Solid Earth, 103(B5), 9857–9866. https://doi.org/10.1029/98jb00167
Vadakkepuliyambatta, S., Bünz, S., Mienert, J., & Chand, S. (2013). Distribution of subsurface fluid-flow systems in the SW Barents Sea. Marine and Petroleum Geology, 43, 208–221. https://doi.org/10.1016/j.marpetgeo.2013.02.007
Vogt, P. R., Cherkashev, G. A., Ginsburg, G. D., Ivanov, G. I., Milkov, A. V., Crane, K., Sundvor, A., Пименов, Н. В., & Егоров, А. А. (1997). Haakon Mosby Mud Volcano provides unusual example of venting. Eos, Transactions American Geophysical Union, 78(48), 549–557. https://doi.org/10.1029/97eo00326
Whiticar, M. J. (1999). Carbon and hydrogen isotope systematics of bacterial formation and oxidation of methane. Chemical Geology, 161(1-3), 291–314. https://doi.org/10.1016/s0009-2541(99)00092-3
Downloads
Published
Issue
Section
License
Copyright (c) 2026 Giuliana Panieri, Claudio Argentino, Giulia Amaglio, Gry Bagøien, Ines Barrenechea Angeles, Marco Basili, Mary Burkitt-Gray, Bjørn Cicerôn Lukas Pérez, Marco Cuffaro, Hekla Dögg Jonsdottir, Mari Heggernes Eilertsen, Kamila Faizeva, Luca Fallati, Marta Gentilucci, John Grzinich, Petra Heinz, Fereshteh Hemmateenejad, Michale Kjær, Valentina Lanci, Ann Eileen Lennert, Bjørn Lofqvist, Antonio Longo, Kai Roger Loven, Rune Mattingsdal, Anna Moles, Christian Ludvig Nilsson, Thorgerdur Olafsdottir, Violeta S. Radovich , Carlotta Redaelli, Alessandra Savini, Matteo Selci, John Skold, Francesco Smedile, Tommaso Tesi, Olaf Thiessen, Sarah Youngs, Jane Zimmerman

This work is licensed under a Creative Commons Attribution 4.0 International License.