Characterizing Reef Net Metabolism Via the Diel Co-Variation of pH and Dissolved Oxygen From High Resolution in Situ Sensors

IF 5.4 2区 地球科学 Q1 ENVIRONMENTAL SCIENCES Global Biogeochemical Cycles Pub Date : 2023-08-29 DOI:10.1029/2022GB007577
Sarah E. Cryer, Claire Evans, Sara E. Fowell, Gilbert Andrews, Peter Brown, Filipa Carvalho, Diana Degallerie, Jake Ludgate, Samir Rosado, Richard Sanders, James A. Strong, Derrick Theophille, Arlene Young, Socratis Loucaides
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引用次数: 1

Abstract

Coral reefs are subject to degradation by multiple environmental stressors which are predicted to intensify. Stress can alter ecosystem composition, with shifts from hard coral to macroalgae dominated reefs often accompanied by an increase in soft corals and sponges. Such changes may alter net ecosystem metabolism and biogeochemistry by shifting the balance between photosynthesis, respiration, calcification and dissolution. We deployed high temporal resolution pH and dissolved oxygen (DO) sensors at four Caribbean reef sites with varying covers of hard and soft corals, sponges and macroalgae. The resultant data indicated that the strength of the “metabolic pulse”, specifically the co-variation in daily pH and DO oscillations, was driven by the net balance of light -dependent and -independent metabolism. pH and DO were positively correlated over the diel cycle at coral dominated sites, suggesting that photosynthesis and respiration were the major controlling processes, and further indicated by agreement with a simple production:respiration model. Whereas, at a site with high macroalgal cover, pH and DO decoupling was observed during daylight hours. This indicates that an unidentified light-driven process altered the expected pH:DO relationship. We hypothesize that this could be mediated by the higher levels of macroalgae, which either stimulated bacterial-mediated carbonate dissolution via the production and release of allelopathic compounds or retained oxygen, evolved during photosynthesis, in the gaseous form in seawater (ebullition). Our work demonstrates that high resolution monitoring of pH and DO provides insight into coral reef biogeochemical functioning and can be key for understanding long-term changes in coral reef metabolism.

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高分辨率原位传感器通过pH和溶解氧的双Co变化表征礁网代谢
珊瑚礁受到多种环境压力的影响,预计这些压力会加剧。压力可以改变生态系统的组成,从硬珊瑚到大型藻类主导的珊瑚礁的转变往往伴随着软珊瑚和海绵的增加。这些变化可能通过改变光合作用、呼吸作用、钙化作用和溶解作用之间的平衡而改变生态系统的净代谢和生物地球化学。我们在四个加勒比海珊瑚礁地点部署了高时间分辨率的pH值和溶解氧(DO)传感器,这些地点有不同的硬珊瑚和软珊瑚,海绵和大型藻类。由此得出的数据表明,“代谢脉冲”的强度,特别是每日pH和DO振荡的共变,是由光依赖性和非光依赖性代谢的净平衡驱动的。在珊瑚占主导地位的地点,pH和DO在死亡循环中呈正相关,表明光合作用和呼吸作用是主要的控制过程,并进一步表明与简单的生产:呼吸模型一致。而在大藻覆盖较多的地点,pH和DO在白天发生解耦。这表明未知的光驱动过程改变了预期的pH:DO关系。我们假设这可能是由较高水平的大型藻类介导的,它们通过产生和释放化感化合物来刺激细菌介导的碳酸盐溶解,或者在光合作用过程中以气态形式在海水中形成的氧气(沸腾)。我们的工作表明,pH和DO的高分辨率监测提供了对珊瑚礁生物地球化学功能的深入了解,并且可能是了解珊瑚礁代谢长期变化的关键。
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来源期刊
Global Biogeochemical Cycles
Global Biogeochemical Cycles 环境科学-地球科学综合
CiteScore
8.90
自引率
7.70%
发文量
141
审稿时长
8-16 weeks
期刊介绍: Global Biogeochemical Cycles (GBC) features research on regional to global biogeochemical interactions, as well as more local studies that demonstrate fundamental implications for biogeochemical processing at regional or global scales. Published papers draw on a wide array of methods and knowledge and extend in time from the deep geologic past to recent historical and potential future interactions. This broad scope includes studies that elucidate human activities as interactive components of biogeochemical cycles and physical Earth Systems including climate. Authors are required to make their work accessible to a broad interdisciplinary range of scientists.
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