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Decadal-scale reduction in net primary production in the western subarctic North Pacific

Impact of lateral transport of dissolved iron from the Sea of Okhotsk

Bibliographic Data

ID15549720
AuthorsTakuya Nakanowatari (0000-0002-5452-5895, Japan Fisheries Research and Education Agency, corresponding author), Tomohiro Nakamura (0000-0002-8349-2367, Hokkaido University), Humio Mitsudera (0000-0001-9481-6921, Hokkaido University), Jun Nishioka (0000-0003-1723-9344, Hokkaido University), Hatsumi Nishikawa (0000-0003-0945-6197, Japan Agency for Marine-Earth Science and Technology), Hiroshi Kuroda (0000-0002-9659-2551, Hokkaido University), Keisuke Uchimoto (0000-0001-5415-6607, Research Institute of Innovative Technology for the Earth)
Year2025
Volume20
Issue5
Pages054027-054027
Publication date2025-03-27
Peer ReviewedYes
Open AccessYes
TypeARTICLE
VenueEnvironmental Research Letters (JOURNAL)
Journal identifiersISSN: 1748-9326 • E-ISSN: 1748-9326
PublisherIOP Publishing (PUBLISHER • GB)
DOI10.1088/1748-9326/adc614
OpenAlexW4408902276
LanguageEN
References cited93

The subarctic North Pacific (SNP) is a high-nutrient low-chlorophyll region in which decoupling of dissolved iron (dFe) and macronutrient is an essential control of primary production. In this study, we evaluate the influence of decadal-scale climate change on the net primary production (NPP) in the SNP by performing a hindcast experiment for 1979–2016 using an ice–ocean coupled model with a simple biogeochemical model with iron cycle. Simulation results show a significant NPP decrease in the subtropical–subarctic gyre boundary (SGB) region since the 1990s; the trend is −48 mgC m −2 d −1 /37 years with a magnitude that is 14.3% of the climatological mean NPP. The NPP decrease in the SGB is prominent during the spring, indicating weakening of the spring bloom. Diagnostic analysis of simulation data reveals that the NPP decrease in the SGB can be explained by the decrease in both dFe and light availability. Sensitivity experiments indicate that wind-driven circulation change mainly explains both the reduction in dFe and the light availability through the northward expansion of oligotrophic subtropical water, but the thermohaline change in the Sea of Okhotsk also has a non-negligible effect on the dFe reduction. Results from our numerical model simulations suggest the importance of lateral and vertical advection of dFe on the decadal-scale changes of NPP in the SNP

Biology · Climatology · Ecosystem · Geography · Primary production · Production (economics · Reduction (mathematics · Scale (ratio · Subarctic climate · Environmental Science · Geological Studies and Exploration · Marine and environmental studies · Methane Hydrates and Related Phenomena · Ecology · Geology · Oceanography

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Citation velocityhistorical
Highly citedNo

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