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Van Mooy, B.

Publications and source records attributed to Van Mooy, B..

2 recordsLinked to original sources

Viral infection induces oxylipin chemical signaling at the end of a summer upwelling bloom: implications for carbon cycling.

Abstract/SummaryDiatoms are large phytoplankton that form the base of the marine food web and often bloom first when nutrients are injected into the surface ocean through upwelling or deep ocean mixing1,2. Diatoms contribute 20% of global photosynthesis3 while disproportionately representing 40% of carbon export4, with most export occurring along the continental margins5. Oxylipin chemical signaling by diatoms has been extensively studied in the Mediterranean Sea where oxylipins are linked to grazing with subsequent insidious effects on copepod reproduction6-13. Culture studies with diatoms have shown that stress, growth phase, and viral infection also impact oxylipin production14-16. This study provides insight into the role of oxylipins as biomarkers and chemical signals during viral infection of diatoms in natural communities. Biomarkers for lysis and senescence were identified in laboratory experiments and observed at elevated concentrations in meta-lipidomes collected in the California Coastal Ecosystem (CCE) where diatoms had recently been lysed by viruses17. Deck-board incubations with natural communities show that oxylipins stimulate sinking particle-attached and surface-ocean microbes in a dose and community-dependent manner, while inhibiting microzooplankton grazing and phytoplankton growth rates. Carbon export was two times higher at the Post-lytic site than elsewhere along the transect consistent with the viral shuttle, whereby viruses facilitate carbon export. We previously reported enhanced enzymatic activity at the Post-lytic site17, suggestive of the viral shunt, whereby carbon is remineralized or attenuated into non-sinking dissolved organic matter. Here we layer geochemical evidence to show that lysis of oxylipin producing diatoms amplified the vertical flux of carbon from the surface ocean even in the presence of viral shunt processes. The remineralization length scale and community composition have been hypothesized as controls on shunt vs. shuttle18-20; our analysis provides another example of how community interactions may toggle a system between favoring shunt or shuttle.

ecology↗

Unravelling Plankton Adaptation in Global Oceans through the Analysis of Lipidomes

A recent global survey of planktonic lipids showed a fundamental temperature-mediated regulation of lipid unsaturation in the global oceans [Holm H, et al. (2022) Science 376:1487-1491]. We expand the analysis of this dataset, both spatially and methodologically, to examine diverse environmental stressors across the ocean. Utilizing weighted correlation network analysis, we analyzed 3,164 lipid features in the dataset comprising 930 samples of suspended particulate matter, taken across a broad range of oceanographic conditions and water depths up to 600 meters. A total of 16 lipid clusters being co-expressed across diverse environments were identified. This analysis reveals universal relationships between environmental factors and the lipidome of the planktonic community. The largest lipid cluster, comprising 481 lipid features, including glycerolipids with polyunsaturated fatty acids, exhibited a significant enrichment in polar oceans, suggesting the highest lipid diversity in these ocean regions. Remarkably, marine plankton in these regions employ both desaturation and chain shortening for cold acclimation. Additionally, one lipid cluster strongly linked to the plankton residing in the surface of tropical and subtropical oceans was enriched with non-phosphorus lipids. We suggest this adaptive response enables the plankton to cope with phosphorous scarcity and heat stress. Notably, in the subsurface of these regions, a co-expressed cluster of highly unsaturated lipids is consistent with an enhanced production of polyunsaturated fatty acids by phytoplankton, possibly for low light adaptation. This adaptation is important as it may represent a source of essential fatty acids below the warm sea surface where such vital compounds may be diminished in the warmer future. SignificanceMarine plankton is vital for marine ecosystems and climate regulation. We analyzed a large lipidomics dataset of 930 samples collected from global oceans. This allowed us to explore how plankton adapt their lipidomes across different environments. Our findings show distinct lipid clusters correlating with specific environmental conditions, revealing mechanisms like chain shortening to cope with cold stress, enrichment of non-phosphorus lipids in tropical surface waters, and increased polyunsaturated fatty acids in low-light tropical subsurface areas. These adaptations are crucial for understanding how climate change will impact marine ecosystems.

microbiology↗