Department of Marine Chemistry and Geochemistry, Woods Hole Oceanographic Institution, Woods Hole, MA, USA.
GEOMAR - Helmholtz Centre for Ocean Research Kiel, Kiel, Germany.
ISME J. 2021 Feb;15(2):520-533. doi: 10.1038/s41396-020-00793-x. Epub 2020 Oct 8.
Sunlight is the most important environmental control on diel fluctuations in phytoplankton activity, and understanding diel microbial processes is essential to the study of oceanic biogeochemical cycles. Yet, little is known about the in situ temporal dynamics of phytoplankton metabolic activities and their coordination across different populations. We investigated diel orchestration of phytoplankton activity in photosynthesis, photoacclimation, and photoprotection by analyzing pigment and quinone distributions in combination with metatranscriptomes in surface waters of the North Pacific Subtropical Gyre (NPSG). We found diel cycles in pigment abundances resulting from the balance of their synthesis and consumption. These dynamics suggest that night represents a metabolic recovery phase, refilling cellular pigment stores, while photosystems are remodeled towards photoprotection during daytime. Transcript levels of genes involved in photosynthesis and pigment metabolism had synchronized diel expression patterns among all taxa, reflecting the driving force light imparts upon photosynthetic organisms in the ocean, while other environmental factors drive niche differentiation. For instance, observed decoupling of diel oscillations in transcripts and related pigments indicates that pigment abundances are modulated by environmental factors extending beyond gene expression/regulation reinforcing the need to combine metatranscriptomics with proteomics and metabolomics to fully understand the timing of these critical processes in situ.
阳光是影响浮游植物活动昼夜波动的最重要的环境控制因素,了解昼夜微生物过程对于研究海洋生物地球化学循环至关重要。然而,对于浮游植物代谢活动的原位时间动态及其在不同种群中的协调作用,我们知之甚少。我们通过分析色素和醌的分布,并结合北太平洋亚热带环流(NPSG)表层水中的宏转录组,研究了浮游植物光合作用、光驯化和光保护的昼夜协调作用。我们发现,由于色素的合成和消耗之间的平衡,色素丰度存在昼夜循环。这些动态表明,夜间是一种代谢恢复阶段,重新填充细胞色素储存,而白天光合系统则向光保护方向重塑。参与光合作用和色素代谢的基因的转录水平在所有分类群中都具有同步的昼夜表达模式,反映了光在海洋中对光合生物的驱动力,而其他环境因素则驱动生态位分化。例如,观察到转录物和相关色素的昼夜波动解耦表明,色素丰度受到超出基因表达/调节的环境因素的调节,这加强了需要将宏转录组学与蛋白质组学和代谢组学相结合,以充分了解这些关键过程在原位的时间。