相关实验视频
Updated: Jan 17, 2026

07:26
Visualizing Methane-Cycling Microbial Dynamics in Coastal Wetlands
Published on: January 31, 2025
800
活跃的深海微生物群落结构和代谢的季节性变化
Yinghui He1, Federico Baltar2,3, Yong Wang1,4
1Institute for Ocean Engineering, Shenzhen International Graduate School, Tsinghua University, Shenzhen, Guangdong, 518055, P.R. of China.
The ISME journal
|September 23, 2025
概括
深海的微生物 深海的微生物
科学领域:
- 海洋微生物学 海洋微生物学
- 深海生态系统 深海生态系统
- 大基因组学和大转录组学.
背景情况:
- 由于样本采集问题,研究深海微生物很困难.
- 需要实地方法来保护微生物RNA和社区结构.
研究的目的:
- 研究深海微生物代谢和适应的季节性变化.
- 了解不同微生物群体在元素循环中的作用.
主要方法:
- 在现场DNA/RNA联合提取装置用于在南中国海采样.
- 在冬季和夏季进行时间序列采样.
- 转基因组和转基因组分析分析.
主要成果:
- Prokaryotic 社区的组成因季节性变化而变化,但主导的活跃种群保持稳定.
- 冬季表现出增加的自性活动 (CO2固定,氨氧化) 和CO氧化.
- 夏季揭示了利用脂肪酸,酸和H2的异构代谢.
- 欧核细胞类活跃,而反类丰富但不活跃.
结论:
- 在现场的元转录学揭示了深海微生物中独特的季节性代谢策略.
- 微生物的代谢活动适应季节性营养的可用性,并影响元素循环.
相关概念视频
Metabolism of Chemolithotrophs
790
Chemolithotrophs are microorganisms that obtain energy by oxidizing inorganic molecules such as hydrogen gas (H₂), ammonia (NH₃), reduced sulfur compounds (H₂S, S²⁻), and ferrous iron (Fe²⁺). Unlike heterotrophic organisms that rely on organic carbon, chemolithotrophs transfer electrons from these inorganic donors to the electron transport chain (ETC), generating a proton motive force (PMF) that drives ATP synthesis through oxidative phosphorylation.
790
Microbial Nutrition
1.1K
Organisms exhibit remarkable metabolic diversity, categorized based on how they acquire energy and carbon. These strategies enable survival in various ecological niches and are essential for maintaining energy flow and nutrient cycling within ecosystems.Energy and Carbon SourcesOrganisms are classified as phototrophs or chemotrophs based on energy acquisition. Phototrophs use light as their energy source, while chemotrophs rely on oxidizing chemical compounds. Further differentiation arises...
1.1K
Carbon-dioxide Fixation
648
Carbon dioxide fixation in prokaryotes enables the assimilation of inorganic carbon into organic molecules, supporting biosynthetic pathways, sustaining ecosystems, and contributing to the global carbon cycle. It also has industrial applications in carbon capture and bioproduct synthesis. Autotrophic organisms rely on this process to utilize CO₂ as a carbon source in diverse environments.The Calvin CycleThe Calvin cycle is the most widespread carbon fixation mechanism, primarily used by...
648
Diversity of Archaea I
545
Archaea, a domain of single-celled microorganisms, are classified into five major phyla based on genetic and biochemical characteristics: Euryarchaeota, Crenarchaeota, Thaumarchaeota, Korarchaeota, and Nanoarchaeota. Among these, the phylum Euryarchaeota is notable for its remarkable diversity in morphology, metabolism, and ecological adaptations.Morphological and Metabolic DiversityMembers of Euryarchaeota exhibit a variety of cellular shapes, including rods and cocci. Their metabolic pathways...
545
Factors Influencing Microbial Growth: Temperature
1.1K
Microorganisms display remarkable adaptations, enabling them to thrive in diverse ecological niches across a wide range of temperatures. Temperature profoundly influences microbial growth by affecting enzymatic activity, membrane fluidity, and other cellular processes.Each microorganism operates within a specific temperature range defined by three cardinal points: minimum, optimum, and maximum. Below the minimum temperature, membranes lose fluidity, halting transport processes. Above the...
1.1K
Diversity of Archaea III
325
Crenarchaeota, a prominent phylum of Archaea, is remarkable for its ability to thrive in extreme environments characterized by high temperatures and acidity. These microorganisms inhabit sulfuric hot springs, volcanic systems, and submarine hydrothermal vents, where temperatures often exceed 100°C. The unique adaptations of Crenarchaeota not only allow survival under such extreme conditions but also provide insights into the mechanisms of life in primordial Earth-like...
325

