Biology Letters· 2026Q1
Diatom–lipid–copepod nexus under threat by global change
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Short summary
Global change threatens the lipid-based food webs of high-latitude seas, as a 2°C warming and a shift from diatoms to flagellates reduced lipid accumulation in the copepod *Calanus finmarchicus* by up to 21-fold.
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Key points
- Lipid accumulation in *Calanus finmarchicus* is threefold higher on diatom diets compared to flagellate diets.
- A 2°C warming reduced copepod lipid content by up to sevenfold, depending on diet type.
- The combined effects of diet change and warming can reduce lipid accumulation by up to 21-fold.
- Compromised lipid storage threatens copepod overwintering and their role in carbon sequestration.
AI-generated from the title and abstract; the full text is not read.
Abstract
The central role of lipids in the ecology of high-latitude and temperate seas is under threat by global change. This hinges on the tight ecological links between diatoms and copepods of the genus Calanus and similar (e.g. Neocalanus, Calanoides) that produce and accumulate energy-rich lipids. Strongly coupled through seasonal water-column stability, nutrient supply, spring-bloom succession, and overwintering life strategies, this nexus is foundational to the highly productive food webs of these regions. We experimentally tested how a change in phytoplankton type from diatoms to flagellates, along with 2°C warming, affects lipid accumulation of the subarctic copepod Calanus finmarchicus. We report that the ability of C. finmarchicus to accumulate lipids is seriously impaired by a changing diet, being threefold higher on diatoms than flagellate-based diets, whereas within diet types, up to a sevenfold reduction in lipids is associated with a 2°C temperature rise. This, together with higher specific respiration rates, smaller size, and reduced diatom productivity, suggests the ability of Calanus to overwinter may be compromised, threatening their contribution to regional productivity and to sequestered carbon via the lipid pump. Similar lipid-mediated couplings are prevalent throughout seasonal environments, casting uncertainty on their future provision of ecosystem services.
The authors' abstract, as published at the source. Biology Letters, 2026 · DOI ↗
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Field: Biomaterials
BiomaterialsMaterials Science