珊瑚的耐热性在暴露于新环境一年后保持不变
Christine D Roper1, David J Suggett1,2, Kittikun Songsomboon1
1Climate Change Cluster, University of Technology Sydney, Sydney, NSW 2007, Australia.
Science advances
|August 8, 2025
概括
来自红树林湖的耐热珊瑚在迁移到珊瑚礁环境后保持其优越的热阻力. 这一发现支持将这些弹性珊瑚用于珊瑚礁恢复和气候变化适应战略.
科学领域:
- 海洋生物学 海洋生物学
- 珊瑚礁生态 珊瑚礁生态
- 适应气候变化 适应气候变化
背景情况:
- 珊瑚礁面临着气候变化带来的重大威胁,特别是海水温度上升.
- 正在探索积极的恢复策略,以提高珊瑚礁的弹性.
- 在极端环境中的珊瑚,如红树林湖,可能具有更高的耐热性.
研究的目的:
- 为了评估来自红树林湖的耐热性较高的珊瑚是否在被转移到不那么极端的珊瑚礁息地时保持耐受性.
- 评估这些珊瑚体内的耐热性背后的遗传机制.
- 为了确定使用耐热珊瑚用于珊瑚礁恢复的潜力.
主要方法:
- 红树林湖珊瑚的转移到相邻的珊瑚礁.
- 在转移1年之前和之后评估珊瑚的热门值.
- 基因表达分析以确定涉及减轻热应激的途径.
主要成果:
- 红树林珊瑚与相邻的珊瑚礁珊瑚相比,具有更高的耐热性.
- 转移的红树林珊瑚在珊瑚礁息地一年后保持了它们的高热耐受性.
- 在红树林珊瑚中观察到与DNA修复,新陈代谢和平衡相关的基因的升级.
结论:
- 来自红树林湖等极端环境的珊瑚,当被转移到典型的珊瑚礁条件时,可以保持它们的耐热性.
- 这些发现支持使用耐热珊瑚作为增强珊瑚礁对气候变化抵抗力的可行策略.
- 了解耐热性的遗传基础可以为未来的恢复工作提供信息.
更多相关视频
09:31Author Spotlight: Advancing Coral Research by Exploring Climate Change Resistance, Ex Situ Aquaculture, and Reproduction Strategies
Published on: June 23, 2023
1.5K
10:39Multimodal Optical Microscopy Methods Reveal Polyp Tissue Morphology and Structure in Caribbean Reef Building Corals
Published on: September 5, 2014
12.4K
相关概念视频
Responses to Heat and Cold Stress
13.8K
Every organism has an optimum temperature range within which healthy growth and physiological functioning can occur. At the ends of this range, there will be a minimum and maximum temperature that interrupt biological processes.
13.8K
Thermoregulation
1.3K
The human body has a sophisticated thermoregulation system that employs negative feedback mechanisms to maintain an optimal core temperature. When the core temperature drops, peripheral and central thermoreceptors send signals to the hypothalamus, activating the heat-promoting center. This center triggers several responses aimed at increasing the core temperature. First, vasoconstriction reduces the flow of warm blood from internal organs to the skin so that the heat is not lost from the skin,...
1.3K
Diversity of Archaea IV
105
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...
105
Hyperthermophilic Bacteria
99
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...
99
Thermosensation
31.8K
Peripheral thermosensation is the perception of external temperature. A change in temperature (on the surface of the skin and other tissues) is detected by a family of temperature-sensitive ion channels called Transient Receptor Potential, or TRP, receptors. These receptors are located on free nerve endings. Those detecting cold temperatures are closer to the surface of the skin than the nerve endings detecting warmth. These thermoTRP channels, while temperature selective, have relatively...
31.8K
Responses to Salt Stress
13.4K
Salt stress—which can be triggered by high salt concentrations in a plant’s environment—can significantly affect plant growth and crop production by influencing photosynthesis and the absorption of water and nutrients.
13.4K
