Mechanisms Underpinning the Net Removal Rates of Dissolved Organic Carbon in the Global Ocean

IF 5.4 2区 地球科学 Q1 ENVIRONMENTAL SCIENCES
Sinikka T. Lennartz, David P. Keller, Andreas Oschlies, Bernd Blasius, Thorsten Dittmar
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Abstract

With almost 700 Pg of carbon, marine dissolved organic carbon (DOC) stores more carbon than all living biomass on Earth combined. However, the controls behind the persistence and the spatial patterns of DOC concentrations on the basin scale remain largely unknown, precluding quantitative assessments of the fate of this large carbon pool in a changing climate. Net removal rates of DOC along the overturning circulation suggest lifetimes of millennia. These net removal rates are in stark contrast to the turnover times of days to weeks of heterotrophic microorganisms, which are the main consumers of organic carbon in the ocean. Here, we present a dynamic “MICrobial DOC” model (MICDOC) with an explicit representation of picoheterotrophs to test whether ecological mechanisms may lead to observed decadal to millennial net removal rates. MICDOC is in line with >40,000 DOC observations. Contrary to other global models, the reactivity of DOC fractions is not prescribed, but emerges from a dynamic feedback between microbes and DOC governed by carbon and macronutrient availability. A colimitation of macronutrients and organic carbon on microbial DOC uptake explains >70% of the global variation of DOC concentrations, and governs characteristic features of its distribution. Here, decadal to millennial net removal rates emerge from microbial processes acting on time scales of days to weeks, suggesting that the temporal variability of the marine DOC inventory may be larger than previously thought. With MICDOC, we provide a foundation for assessing global effects on DOC related to changes in heterotrophic microbial communities in a future ocean.

Abstract Image

全球海洋中溶解有机碳净去除率的基本机制
海洋溶解有机碳(DOC)储存了近 700 Pg 的碳,比地球上所有生物质储存的碳总和还要多。然而,海盆尺度上溶解有机碳浓度的持久性和空间模式背后的控制因素在很大程度上仍不为人所知,因此无法对这一大型碳库在不断变化的气候中的命运进行定量评估。沿翻转环流的 DOC 净去除率表明,DOC 的寿命长达数千年。这些净去除率与异养微生物几天到几周的周转时间形成了鲜明对比,而异养微生物是海洋中有机碳的主要消费者。在此,我们提出了一个动态的 "微生物 DOC "模型(MICDOC),其中明确表示了微微异养生物,以检验生态机制是否可能导致观测到的十年至千年净去除率。MICDOC 与 40,000 次 DOC 观测结果一致。与其他全球模型相反,DOC组分的反应性并不是规定的,而是来自微生物与DOC之间受碳和宏量营养元素可用性制约的动态反馈。宏量营养元素和有机碳对微生物吸收 DOC 的影响解释了全球 DOC 浓度变化的 70%,并决定了其分布的特征。在这里,以天到周为时间尺度的微生物过程产生了十年到千年的净去除率,这表明海洋 DOC 库存的时间变异性可能比以前想象的要大。通过 MICDOC,我们为评估未来海洋中异养微生物群落变化对 DOC 的全球影响奠定了基础。
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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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