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行为是基于性状的蝴蝶运动模型预测能力的基础。

Behavior underpins the predictive power of a trait-based model of butterfly movement.

作者信息

Evans Luke C, Sibly Richard M, Thorbek Pernille, Sims Ian, Oliver Tom H, Walters Richard J

机构信息

School of Biological Sciences University of Reading Reading UK.

Syngenta Jealott's Hill International Research Centre Bracknell UK.

出版信息

Ecol Evol. 2020 Mar 6;10(7):3200-3208. doi: 10.1002/ece3.5957. eCollection 2020 Apr.

Abstract

Dispersal ability is key to species persistence in times of environmental change. Assessing a species' vulnerability and response to anthropogenic changes is often performed using one of two methods: correlative approaches that infer dispersal potential based on traits, such as wingspan or an index of mobility derived from expert opinion, or a mechanistic modeling approach that extrapolates displacement rates from empirical data on short-term movements.Here, we compare and evaluate the success of the correlative and mechanistic approaches using a mechanistic random-walk model of butterfly movement that incorporates relationships between wingspan and sex-specific movement behaviors.The model was parameterized with new data collected on four species of butterfly in the south of England, and we observe how wingspan relates to , , , and .We show that and correlate with wingspan but that to achieve good prediction of displacement even over 10 min the model must also include details of sex- and species-specific movement behaviors.We discuss what factors are likely to differentially motivate the sexes and how these could be included in mechanistic models of dispersal to improve their use in ecological forecasting.

摘要

扩散能力是物种在环境变化时期得以存续的关键。评估一个物种对人为变化的脆弱性和响应通常采用两种方法之一:相关方法,即基于诸如翼展或源自专家意见的移动性指数等特征来推断扩散潜力;或者机械建模方法,即根据短期移动的经验数据推断位移速率。在此,我们使用一个结合了翼展与特定性别移动行为之间关系的蝴蝶移动机械随机游走模型,比较并评估相关方法和机械方法的成效。该模型用在英格兰南部采集的四种蝴蝶的新数据进行了参数化,我们观察翼展如何与[此处原文缺失相关内容]、[此处原文缺失相关内容]、[此处原文缺失相关内容]和[此处原文缺失相关内容]相关联。我们表明[此处原文缺失相关内容]和[此处原文缺失相关内容]与翼展相关,但即使要对超过10分钟的位移进行良好预测,该模型还必须纳入特定性别和物种的移动行为细节。我们讨论了哪些因素可能对不同性别产生不同的驱动作用,以及如何将这些因素纳入扩散机械模型以改善其在生态预测中的应用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5b6e/7141018/cd0eef1f0714/ECE3-10-3200-g001.jpg

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本文引用的文献

1
Data on the movement behaviour of four species of grassland butterfly.
Data Brief. 2019 Oct 4;27:104611. doi: 10.1016/j.dib.2019.104611. eCollection 2019 Dec.
2
Predicting population responses to environmental change from individual-level mechanisms: towards a standardized mechanistic approach.
Proc Biol Sci. 2019 Oct 23;286(1913):20191916. doi: 10.1098/rspb.2019.1916. Epub 2019 Oct 16.
3
Coupling movement and landscape ecology for animal conservation in production landscapes.
Proc Biol Sci. 2018 Jan 10;285(1870). doi: 10.1098/rspb.2017.2272.
4
Dispersal governs the reorganization of ecological networks under environmental change.
Nat Ecol Evol. 2017 May 8;1(6):162. doi: 10.1038/s41559-017-0162.
6
Thermal physiological ecology of Colias butterflies in flight.
Oecologia. 1986 May;69(2):161-170. doi: 10.1007/BF00377616.
7
Towards Process-based Range Modeling of Many Species.
Trends Ecol Evol. 2016 Nov;31(11):860-871. doi: 10.1016/j.tree.2016.08.005. Epub 2016 Sep 20.
8
Improving the forecast for biodiversity under climate change.
Science. 2016 Sep 9;353(6304). doi: 10.1126/science.aad8466.
9
Minimum area requirements for an at-risk butterfly based on movement and demography.
Conserv Biol. 2016 Feb;30(1):103-12. doi: 10.1111/cobi.12588. Epub 2015 Oct 21.
10
Higher mobility of butterflies than moths connected to habitat suitability and body size in a release experiment.
Ecol Evol. 2014 Oct;4(19):3800-11. doi: 10.1002/ece3.1187. Epub 2014 Sep 12.

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