寄生虫介导的捕食决定了复杂的捕食者-猎物-寄生虫系统中的感染
Ana C Hijar Islas1, Amy Milne2,3, Christophe Eizaguirre1
1School of Biological and Behavioural Sciences, Queen Mary University of London, London, UK.
Proceedings. Biological sciences
|April 24, 2024
概括
通过捕食者与猎物的相互作用传播的寄生虫可以灭绝,如果感染的可能性很低. 成功感染最终宿主对于寄生虫的生存至关重要,随着随机性影响共存和灭绝动态.
科学领域:
- 生态生态学 生态生态学
- 人口动态 人口动态
- 寄生虫学的寄生虫学
背景情况:
- 主体-寄生虫和捕食者-猎物的相互作用是关键的生态动态.
- 捕食者和寄生虫都能调节生态社区.
- 寄生虫通过食用相互作用传播引入了复杂性.
研究的目的:
- 为了建模和分析捕食者-猎物-寄生虫系统与猎物-捕食者寄生虫传播.
- 调查寄生虫毒性和感染概率对物种共存和种群组成的影响.
- 了解感染宿主的流行程度,考虑到随机的人口变化.
主要方法:
- 开发一个复杂的捕食者-猎物-寄生虫模型.
- 包括寄生虫从猎物传播给捕食者的情况.
- 寄生虫毒性和感染概率的变化.
- 随机模拟用于分析人口动态和共存.
主要成果:
- 寄生虫灭绝发生在任何宿主感染概率较低时.
- 成功感染最终宿主 (掠食者) 对寄生虫的生存至关重要.
- 随机性显著影响宿主寄生虫共存和灭绝之间的边界.
- 感染个体的比例与感染概率相关.
- 受感染和未受感染个体的相对丰度在猎物和捕食者种群之间可能有所不同.
结论:
- 寄生虫传播的成功,特别是在最终宿主中,对于维持寄生虫种群至关重要.
- 随机效应对于确定近共存值的捕食者-猎物-寄生虫系统的稳定性至关重要.
- 直接和间接的寄生虫影响的相互作用推动了感染的流行,导致了潜在的反直觉的人口结构.
相关概念视频
Predator-Prey Interactions
16.2K
Predators consume prey for energy. Predators that acquire prey and prey that avoid predation both increase their chances of survival and reproduction (i.e., fitness). Routine predator-prey interactions elicit mutual adaptations that improve predator offenses, such as claws, teeth, and speed, as well as prey defenses, including crypsis, aposematism, and mimicry. Thus, predator-prey interactions resemble an evolutionary arms race.
16.2K
Symbiosis
27.9K
Symbiotic relationships are long-term, close interactions between individuals of different species that affect the distribution and abundance of those species. When a relationship is beneficial to both species, this is called mutualism. When the relationship is beneficial to one species but neither beneficial nor harmful to the other species, this is called commensalism. When one organism is harmed to benefit another, the relationship is known as parasitism. These types of relationships often...
27.9K
Epiphytes, Parasites, and Carnivores
13.0K
Plants often form mutualistic relationships with soil-dwelling fungi or bacteria to enhance their roots’ nutrient uptake ability. Root-colonizing fungi (e.g., mycorrhizae) increase a plant’s root surface area, which promotes nutrient absorption. While root-colonizing, nitrogen-fixing bacteria (e.g., rhizobia) convert atmospheric nitrogen (N2) into ammonia (NH3), making nitrogen available to plants for various biological functions. For example, nitrogen is essential for the...
13.0K
Frequency-dependent Selection
22.0K
When the fitness of a trait is influenced by how common it is (i.e., its frequency) relative to different traits within a population, this is referred to as frequency-dependent selection. Frequency-dependent selection may occur between species or within a single species. This type of selection can either be positive—with more common phenotypes having higher fitness—or negative, with rarer phenotypes conferring increased fitness.
22.0K
Types of Selection
40.4K
Natural selection influences the frequencies of particular alleles and phenotypes within populations in several different ways. Primarily, natural selection can be directional, stabilizing, or disruptive. Directional selection favors one extreme trait and shifts the population towards that phenotype while selecting against individuals displaying alternate traits. Stabilizing selection favors an intermediate trait with a narrow range of variation. Deviation from the optimal phenotype towards an...
40.4K
Trophic Levels
30.7K
All organisms in an ecosystem occupy a trophic level in the food chain. The lowest level consists of primary producers, which synthesize their food from either solar or chemical energy. Each subsequent level obtains energy from the levels below. Detritivores can occupy any of the levels above primary producers.
30.7K


