竞争性生态网络中密度调节与稳定性之间的相互联系。

IF 1.2 4区 生物学 Q4 ECOLOGY Theoretical Population Biology Pub Date : 2024-03-21 DOI:10.1016/j.tpb.2024.03.003
Amit Samadder , Arnab Chattopadhyay , Anurag Sau , Sabyasachi Bhattacharya
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引用次数: 0

摘要

在自然生态系统中,物种的特点是其生长曲线的非线性密度依赖性自我调节。许多类群的物种在种群规模较小的情况下会出现依赖密度的大幅减少。然而,也有许多物种表现出相反的趋势;在种群规模较小的情况下,密度调节作用微乎其微,而当种群规模接近承载能力时,密度调节作用则会显著增强。θ-逻辑生长方程可以描述生长曲线中的种内密度调节,θ是密度调节参数。在本研究中,我们借助竞争性物种相互作用的数学模型,研究了这些不同的生长曲线对竞争性生态群落稳定性的影响。本手稿采用随机矩阵理论来理解竞争性相互作用的经典θ-逻辑模型的稳定性。我们的研究结果表明,具有较强密度依赖性的物种越多,在低密度时的自我调节能力越强,群落就越稳定。因此,稳定性还取决于生态网络的复杂性。物种网络连接度(链接密度)显示出稳定性增加的一致趋势,而群落规模(物种丰富度)则显示出与环境相关的影响。我们还从两种不同的生活史策略方面解释了我们的结果:R选择和K选择。我们的结果表明,竞争网络的稳定性会随着群落中 r 选择物种比例的增加而增加。无论网络结构如何,我们的结果都是稳健的。
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Interconnection between density-regulation and stability in competitive ecological network

In natural ecosystems, species can be characterized by the nonlinear density-dependent self-regulation of their growth profile. Species of many taxa show a substantial density-dependent reduction for low population size. Nevertheless, many show the opposite trend; density regulation is minimal for small populations and increases significantly when the population size is near the carrying capacity. The theta-logistic growth equation can portray the intraspecific density regulation in the growth profile, theta being the density regulation parameter. In this study, we examine the role of these different growth profiles on the stability of a competitive ecological community with the help of a mathematical model of competitive species interactions. This manuscript deals with the random matrix theory to understand the stability of the classical theta-logistic models of competitive interactions. Our results suggest that having more species with strong density dependence, which self-regulate at low densities, leads to more stable communities. With this, stability also depends on the complexity of the ecological network. Species network connectance (link density) shows a consistent trend of increasing stability, whereas community size (species richness) shows a context-dependent effect. We also interpret our results from the aspect of two different life history strategies: r and K-selection. Our results show that the stability of a competitive network increases with the fraction of r-selected species in the community. Our result is robust, irrespective of different network architectures.

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来源期刊
Theoretical Population Biology
Theoretical Population Biology 生物-进化生物学
CiteScore
2.50
自引率
14.30%
发文量
43
审稿时长
6-12 weeks
期刊介绍: An interdisciplinary journal, Theoretical Population Biology presents articles on theoretical aspects of the biology of populations, particularly in the areas of demography, ecology, epidemiology, evolution, and genetics. Emphasis is on the development of mathematical theory and models that enhance the understanding of biological phenomena. Articles highlight the motivation and significance of the work for advancing progress in biology, relying on a substantial mathematical effort to obtain biological insight. The journal also presents empirical results and computational and statistical methods directly impinging on theoretical problems in population biology.
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