Optimal investment to enable evolutionary rescue

被引:0
|
作者
Jaime Ashander
Lisa C. Thompson
James N. Sanchirico
Marissa L. Baskett
机构
[1] University of California—Davis,Center for Population Biology
[2] University of California—Davis,Department of Environmental Sciences and Policy
[3] Resources for the Future,Land Water and Nature Program
[4] University of California—Davis,Department of Wildlife, Fish, and Conservation Biology
[5] Sacramento Area Sewer District,Regional San (Sacramento Regional County Sanitation District)
来源
Theoretical Ecology | 2019年 / 12卷
关键词
Bioeconomics; Optimal control; Evolutionary rescue; Population enhancement; Climate change; Management intervention; Endangered species;
D O I
暂无
中图分类号
学科分类号
摘要
“Evolutionary rescue” is the potential for evolution to enable population persistence in a changing environment. Even with eventual rescue, evolutionary time lags can cause the population size to temporarily fall below a threshold susceptible to extinction. To reduce extinction risk given human-driven global change, conservation management can enhance populations through actions such as captive breeding. To quantify the optimal timing of, and indicators for engaging in, investment in temporary enhancement to enable evolutionary rescue, we construct a model of coupled demographic-genetic dynamics given a moving optimum. We assume “decelerating change”, as might be relevant to climate change, where the rate of environmental change initially exceeds a rate where evolutionary rescue is possible, but eventually slows. We analyze the optimal control path of an intervention to avoid the population size falling below a threshold susceptible to extinction, minimizing costs. We find that the optimal path of intervention initially increases as the population declines, then declines and ceases when the population growth rate becomes positive, which lags the stabilization in environmental change. In other words, the optimal strategy involves increasing investment even in the face of a declining population, and positive population growth could serve as a signal to end the intervention. In addition, a greater carrying capacity relative to the initial population size decreases the optimal intervention. Therefore, a one-time action to increase carrying capacity, such as habitat restoration, can reduce the amount and duration of longer term investment in population enhancement, even if the population is initially lower than and declining away from the new carrying capacity.
引用
下载
收藏
页码:165 / 177
页数:12
相关论文
共 50 条
  • [21] Effects of Clonal Reproduction on Evolutionary Lag and Evolutionary Rescue
    Orive, Maria E.
    Barfield, Michael
    Fernandez, Carlos
    Holt, Robert D.
    AMERICAN NATURALIST, 2017, 190 (04): : 469 - 490
  • [22] On the Optimal Investment
    Corcuera, Jose Manuel
    Fajardo, Jose
    Pamen, Olivier Menouken
    ADVANCED MODELLING IN MATHEMATICAL FINANCE: IN HONOUR OF ERNST EBERLEIN, 2016, : 313 - 330
  • [23] Houston Facility Will Enable Critical Water Rescue Training
    Landers, Jay
    CIVIL ENGINEERING, 2022, 92 (06): : 11 - 11
  • [24] PLASMIDS AND EVOLUTIONARY RESCUE BY DRUG RESISTANCE
    Tazzyman, Samuel J.
    Bonhoeffer, Sebastian
    EVOLUTION, 2014, 68 (07) : 2066 - 2078
  • [25] Soft Selective Sweeps in Evolutionary Rescue
    Wilson, Benjamin A.
    Pennings, Pleuni S.
    Petrov, Dmitri A.
    GENETICS, 2017, 205 (04) : 1573 - 1586
  • [26] Optimal investment of distribution energy resources via energy performance contracts: An evolutionary game approach
    Zhang, Lizhong
    Xiang, Yue
    RENEWABLE ENERGY, 2024, 234
  • [27] Evolutionary rescue on genotypic fitness landscapes
    Wahl, L. M.
    Campos, Paulo R. A.
    JOURNAL OF THE ROYAL SOCIETY INTERFACE, 2023, 20 (208)
  • [28] Phenotypic plasticity in evolutionary rescue experiments
    Chevin, Luis-Miguel
    Gallet, Romain
    Gomulkiewicz, Richard
    Holt, Robert D.
    Fellous, Simon
    PHILOSOPHICAL TRANSACTIONS OF THE ROYAL SOCIETY B-BIOLOGICAL SCIENCES, 2013, 368 (1610)
  • [29] Limits to evolutionary rescue by conjugative plasmids
    Geoffroy, Felix
    Uecker, Hildegard
    THEORETICAL POPULATION BIOLOGY, 2023, 154 : 102 - 117
  • [30] A branching process model of evolutionary rescue
    Azevedo, Ricardo B. R.
    Olofsson, Peter
    MATHEMATICAL BIOSCIENCES, 2021, 341