Mixotrophic growth of a ubiquitous marine diatom.
basic_science · Level V
Where this comes from
- Record sourced from PubMed, PMID 39018398.
- Also identified by DOI 10.1126/sciadv.ado2623 and PMC identifier 466952.
- Licence recorded as CC BY-NC.
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Abstract
Diatoms are major players in the global carbon cycle, and their metabolism is affected by ocean conditions. Understanding the impact of changing inorganic nutrients in the oceans on diatoms is crucial, given the changes in global carbon dioxide levels. Here, we present a genome-scale metabolic model (<i>i</i>MK1961) for <i>Cylindrotheca closterium</i>, an in silico resource to understand uncharacterized metabolic functions in this ubiquitous diatom. <i>i</i>MK1961 represents the largest diatom metabolic model to date, comprising 1961 open reading frames and 6718 reactions. With <i>i</i>MK1961, we identified the metabolic response signature to cope with drastic changes in growth conditions. Comparing model predictions with <i>Tara</i> Oceans transcriptomics data unraveled <i>C. closterium</i>'s metabolism in situ. Unexpectedly, the diatom only grows photoautotrophically in 21% of the sunlit ocean samples, while the majority of the samples indicate a mixotrophic (71%) or, in some cases, even a heterotrophic (8%) lifestyle in the light. Our findings highlight <i>C. closterium'</i>s metabolic flexibility and its potential role in global carbon cycling.
Medical subject headings
- Diatoms