相关实验视频
Updated: Mar 9, 2026

07:16
Thermal Limits Determination for Zooplankton Using a Heat Block
Published on: November 18, 2022
1.8K
强烈的高温威胁到海底的生命
Samuel Starko1, Shinae Montie2, Thomas Wernberg3
1School of Molecular and Life Sciences, Curtin University, Bentley, WA, Australia; UWA Oceans Institute, University of Western Australia, Crawley, WA, Australia; School of Biological Sciences, University of Western Australia, Crawley, WA, Australia.
Trends in ecology & evolution
|March 7, 2026
概括
海洋热浪威胁着海洋生物. 新的研究表明,到2100年,海底热浪可能会影响大多数地中海物种,这挑战了深水避难所的假设.
科学领域:
- 海洋生物学 海洋生物学
- 气候科学 气候科学
- 海洋学 海洋学 海洋学
背景情况:
- 在全球范围内,海洋热浪 (MHW) 的频率和强度正在增加.
- 地下MHW的理解比表面事件要少.
- 地生态系统可能特别容易受到极端温度的影响.
研究的目的:
- 调查底部海洋热浪对地中海盆地物种的潜在影响.
- 评估近乎连续的极端热暴露对深海生物的未来风险.
主要方法:
- 利用特定于地中海盆地的高分辨率气候预测.
- 模拟了海底热浪的发生和强度.
- 评估盆地物种对极端热事件的预期暴露情况.
主要成果:
- 预计到本世纪末,大多数地中海盆地物种可能会面临近乎连续的极端热浪.
- 确定了显著的地下变暖趋势.
- 强调当前关于深水热避难所的假设不足.
结论:
- 海底热浪对地中海海洋生物多样性构成重大且被低估的威胁.
- 未来的气候变化可能会消除深水避难所,导致广泛的生态系统破坏.
- 迫切需要研究和保护策略来解决地下MHW影响.
相关概念视频
Diversity of Archaea IV
564
Hyperthermophilic archaea are a group of extremophiles thriving at temperatures above 80°C, often in hydrothermal vents and volcanic soils where conditions surpass the boiling point of water. At such temperatures, proteins, membranes, and DNA in most organisms degrade, but hyperthermophiles have evolved remarkable adaptations to maintain stability and function.Unique Cellular FeaturesHyperthermophilic membranes are composed of a monolayer of biphytanyl tetraether lipids, which resist...
564
Diversity of Archaea III
407
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...
407
Factors Influencing Microbial Growth: Temperature
1.7K
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...
1.7K
Diversity of Archaea I
785
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...
785
Hyperthermophilic Bacteria
661
Domain Bacteria includes some unique hyperthermophilic species. They exhibit remarkable adaptations that enable survival in extreme environments.Thermotoga species are rod-shaped, gram-negative, non-sporulating hyperthermophiles that form a sheath-like envelope called a toga. They ferment sugars or starch, producing lactate, acetate, CO₂, and H₂, and can also grow via anaerobic respiration using H₂ and ferric iron. Found in hot springs and hydrothermal vents, over 20% of their...
661
Primary Production
25.8K
The total amount of energy acquired by primary producers in an ecosystem is called gross primary production (GPP). However, of this energy, producers use some for metabolic processes, and some is lost as heat, decreasing the amount of energy available to the next trophic level. The remaining usable amount of energy is called the net primary productivity (NPP). In terrestrial ecosystems, NPP is driven by climate, while light penetration and nutrient availability drive NPP in aquatic ecosystems.
25.8K

