宏观生态规则预测生物质如何与自然中的物种丰富度相适应
Alex L Pigot1, Laura E Dee2, Anthony J Richardson3,4
1Centre for Biodiversity and Environment Research, Department of Genetics, Evolution and Environment, University College London, London, UK.
概括
生物多样性
科学领域:
- 生态学
- 宏观生态
- 社区生态
背景情况:
- 生物多样性与生态系统功能之间的关系是一个关键的生态问题.
- 现有的理论和实验对生物多样性对生态系统结构和功能的影响提供了不完整的解释.
研究的目的:
- 研究物种丰富对生态系统生物质的影响.
- 确定预测这种关系的强度和方向的宏观因素.
主要方法:
- 分析了来自84,695个植物,动物和原生群的数据.
- 将新的理论框架应用于宏观生态数据.
- 检查物种丰度与人体质量的比例.
主要成果:
- 当大型物种数量稀少时,物种丰富性会对立体生物量产生积极影响.
- 当物种大小和数量不相关时,物种丰富对生物质的影响是独立的.
- 一个基本的宏观生态量,即物种丰度与体质的比例,预测生物多样性对生物质的影响.
结论:
- 提出了一项新的生态社区结构的基本法.
- 变化的物种丰富性对生态系统生物质的影响是可以根据人体质量丰富性关系来预测的.
相关概念视频
Ecological Niches
23.4K
All organisms have a position within an ecosystem. The complete set of living and nonliving factors—including food resources, climate, and terrain—that define the position of a given organism are collectively referred to as the organism’s ecological niche.
23.4K
Limits to Natural Selection
30.9K
Organisms that are well-adapted to their environment are more likely to survive and reproduce. However, natural selection does not lead to perfectly adapted organisms. Several factors constrain natural selection.
30.9K
What is Biodiversity?
27.0K
Biodiversity describes the variety of living things at multiple organizational levels: genetic, species and ecosystem diversity. Species diversity includes all branches of the evolutionary tree from single-celled prokaryotic organisms, bacteria, and archaea, to the eukaryotic kingdoms: plants; animals; fungi; and protists. To date, there have been about 1.75 million species identified, and new species are discovered every week.
27.0K
Energy Budgets
9.1K
Organisms must balance energy intake with the energy required for growth, maintenance and reproduction. These trade-offs result in a variety of survivorship and reproductive strategies, including semelparity and iteroparity. Semelparous species, like annual plants, have only one reproductive episode in their lifetimes and consequently have short lifespans. Iteroparous species, by contrast, have many reproductive events during their lifetimes but have relatively few offspring. These two...
9.1K
Trophic Efficiency
20.2K
Trophic level transfer efficiency (TLTE) is a measure of the total energy transfer from one trophic level to the next. Due to extensive energy loss as metabolic heat, an average of only 10% of the original energy obtained is passed on to the next level. This pattern of energy loss severely limits the possible number of trophic levels in a food chain.
20.2K
Conservation of Small Populations
13.1K
Small population sizes put a species at extreme risk of extinction due to a lack of variation, and a consequent decrease in adaptability. This weakens the chances of survival under pressures such as climate change, competition from other species, or new diseases. Large populations are more likely to survive pressures such as these, as such populations are more likely to harbor individuals that have genetic variants that are adaptive under new stresses. Small populations are much less...
13.1K


