上海的生物碳循环:微生物呼吸的影响
1Ocean Sciences Centre, Memorial University of Newfoundland, St. John's, Newfoundland A1C 5S7, Canada. rrivkin@mun.ca
概括
细菌生长效率随着海洋温度的下降而降低,影响碳循环. 这一发现表明,与温暖的热带地区相比,在寒冷的极地水域出口的碳更多.
科学领域:
- 海洋学 海洋学 海洋学
- 海洋微生物生态学
- 生物地质化学循环 生物地质化学循环
背景情况:
- 海洋的食物网控制碳流和二氧化碳的交换.
- 细菌生长效率和重矿化是关键参数.
研究的目的:
- 研究细菌生长效率与温度之间的关系.
- 量化细菌呼吸在社区呼吸中的作用.
- 评估碳出口的度差异.
主要方法:
- 实证分析细菌生长效率作为温度的函数.
- 基于温度和生产的细菌呼吸的计算.
- 极地与热带地区碳循环的比较.
主要成果:
- 细菌生长效率与温度相反.
- 细菌呼吸占社区呼吸的大部分.
- 由于温度影响,极地地区出口的产品比例更高.
结论:
- 温度显著影响细菌的呼吸和碳出口.
- 细菌呼吸可以从温度和产量来估计.
- 使用遥感计算大规模异质性呼吸的潜力.
相关概念视频
The Carbon Cycle
Carbon is the basis of all organic matter on Earth, and is recycled through the ecosystem in two primary processes: one in which carbon is exchanged among living organisms, and one in which carbon is cycled over long periods of time through fossilized organic remains, weathering of rocks, and volcanic activity. Human activities, including increased agricultural practices and the burning of fossil fuels, has greatly affected the balance of the natural carbon cycle.
Microbes and the Carbon Cycle
The carbon cycle is a fundamental Earth process involving the transfer of carbon among the biosphere, lithosphere, atmosphere, and hydrosphere. It plays a critical role in regulating the planet’s climate and supporting life by cycling carbon through various chemical forms and reservoirs. Carbon primarily circulates as carbon dioxide (CO₂), representing its oxidized form, while reduced forms such as methane (CH₄) and organic compounds also play essential roles.Microbial activity is central to...
Marine Microbial Ecology
Marine microbial ecosystems are shaped by distinct physicochemical limits, including high salinity, low nutrient availability, and fluctuating oxygen levels. These conditions favor smaller microbial cell sizes, which maximize their surface-to-volume ratio for efficient nutrient uptake.Microbial activity and community composition are closely linked to biogeochemical cycles, particularly in dynamic environments like estuaries, where halotolerant microbes thrive in response to variable salinity...
Deep Sea Microbial Ecology
The deep ocean and its underlying sediments represent vast, largely unexplored microbial habitats that extend far beyond the sunlit photic zone. The photic (euphotic) zone typically spans the upper ~100–200 meters of pelagic waters in the open ocean, but its depth varies geographically and seasonally, where sufficient light supports photosynthetic life. Below this lies the deep sea, spanning roughly 1000–6000 meters (bathypelagic to abyssal zones), with deeper hadal trenches extending beyond...
Freshwater Microbial Ecology
Freshwater systems such as streams, rivers, and lakes exhibit distinct physical and biological characteristics that influence their microbial communities. These environments are broadly categorized into lotic systems—those with flowing waters like streams and most rivers—and lentic systems, which include still or slow-moving waters such as lakes, ponds, and marshes.In lentic systems, phytoplankton drive primary production, generating autochthonous organic carbon. In contrast, lotic systems...
Microbes and Climate Change
Microorganisms are pivotal agents in Earth's biogeochemical cycles, significantly influencing climate dynamics through their metabolic activities. These microbes modulate the levels of key greenhouse gases by both contributing to and helping mitigate climate change.Microbial Contributions to Greenhouse Gas EmissionsRising global temperatures accelerate microbial metabolism, which, in turn, speeds up the decomposition of organic matter. This process releases carbon dioxide (CO₂) through...


