Integrating climate change and management scenarios in population models to guide the conservation of marine turtles

被引:9
作者
Jensen, Michael P. [1 ,2 ]
Eguchi, Tomoharu [3 ]
FitzSimmons, Nancy N. [2 ]
McCarthy, Michael A. [4 ]
Fuentes, Mariana M. P. B. [5 ]
Hamann, Mark [6 ]
Limpus, Colin J. [7 ]
Bell, Ian P. [8 ]
Read, Mark A. [9 ]
机构
[1] Aalborg Univ, Dept Chem & Biosci, Fredrik Bajers Vej 7H, DK-9220 Aalborg, Denmark
[2] Griffith Univ, Australian Rivers Inst, Nathan, Qld 4111, Australia
[3] NOAA, Natl Marine Fisheries Serv, Southwest Fisheries Sci Ctr, 8901 La Jolla Shores Dr, La Jolla, CA 92037 USA
[4] Univ Melbourne, Sch Bot, Australian Res Ctr Urban Ecol, Parkville, Vic 3010, Australia
[5] Florida State Univ, Dept Earth Ocean & Atmospher Sci, Marine Turtle Res Ecol & Conservat Grp, Tallahassee, FL 32306 USA
[6] James Cook Univ, Sch Earth & Environm Sci, Townsville, Qld 4811, Australia
[7] Dept Environm & Sci, POB 2454, Brisbane, Qld 4001, Australia
[8] Dept Environm & Sci, POB 375, Garbutt East, Qld 4814, Australia
[9] Great Barrier Reef Marine Pk Author, POB 1379, Townsville, Qld 4810, Australia
关键词
DEPENDENT SEX DETERMINATION; PROMISCUOUS GREEN TURTLE; CHELONIA-MYDAS; GROWTH-RATES; RESEARCH PRIORITIES; OCEANIC DISPERSAL; CARRYING-CAPACITY; LEVEL RISE; TEMPERATURE; MITOCHONDRIAL;
D O I
10.5343/bms.2021.0033
中图分类号
Q17 [水生生物学];
学科分类号
071004 ;
摘要
The globally significant green turtle (Chelonia mydas) population in the northern Great Barrier Reef is threatened by anthropogenic pressures, including climate change, habitat degradation, and indigenous harvest. Evidence suggesting the population is producing an extreme proportion of females due to increasing temperatures, coupled with temperature-dependent sex determination, is concerning. In response, and to explore management options, we developed two density-independent, stochastic stage structured metapopulation models: a "Moderate Climate Model" and an "Extreme Climate Model". The models differ based on climate change projections by incorporating increased female hatchling sex ratios due to global warming and loss of nesting habitat due to sea level rise. The models were based on demographic data from field studies at major rookeries and regional foraging grounds and allowed for variation in operational sex ratios, management actions, and levels of indigenous harvest. Under the Moderate Climate Model, population size increased but could be vulnerable to overharvest of adult females. If overharvest was indicated, the harvest of a proportion of subadults rather than only adult females reduced population declines. Under the Extreme Climate Model, there was a steep population decline even without any harvest and harvesting subadults accelerated population decline due to the inclusion of subadult males. In the Extreme Climate Model, reversal of population decline depended on male turtles mating with an increased number of females, or management actions to substantially increase the number of male hatchlings produced.
引用
收藏
页码:131 / 154
页数:24
相关论文
共 109 条
[1]   Is this what a climate change-resilient population of marine turtles looks like? [J].
Abella Perez, E. ;
Marco, A. ;
Martins, S. ;
Hawkes, L. A. .
BIOLOGICAL CONSERVATION, 2016, 193 :124-132
[2]  
Akcakaya H., 2005, RAMAS metapop: Viability analysis for stagestructured metapopulations (version 5)
[3]  
Alexios G, 2015, RSOLNP GEN NONL OPT
[4]   Modeling climate change impacts on phenology and population dynamics of migratory marine species [J].
Anderson, James J. ;
Gurarie, Eliezer ;
Bracis, Chloe ;
Burke, Brian J. ;
Laidre, Kristin L. .
ECOLOGICAL MODELLING, 2013, 264 :83-97
[5]  
[Anonymous], 2010, Assessment of Sea-Turtle Status and Trends: Integrating Demography and Abundance, DOI DOI 10.17226/12889
[6]  
[Anonymous], 1993, Risk assessment in conservation biology
[7]  
Bjorndal KA, 2000, ECOL APPL, V10, P269, DOI 10.1890/1051-0761(2000)010[0269:GTSGME]2.0.CO
[8]  
2
[9]   Ecological regime shift drives declining growth rates of sea turtles throughout the West Atlantic [J].
Bjorndal, Karen A. ;
Bolten, Alan B. ;
Chaloupka, Milani ;
Saba, Vincent S. ;
Bellini, Claudio ;
Marcovaldi, Maria A. G. ;
Santos, Armando J. B. ;
Wurdig Bortolon, Luis Felipe ;
Meylan, Anne B. ;
Meylan, Peter A. ;
Gray, Jennifer ;
Hardy, Robert ;
Brost, Beth ;
Bresette, Michael ;
Gorham, Jonathan C. ;
Connett, Stephen ;
Crouchley, Barbara Van Sciver ;
Dawson, Mike ;
Hayes, Deborah ;
Diez, Carlos E. ;
van Dam, Robert P. ;
Willis, Sue ;
Nava, Mabel ;
Hart, Kristen M. ;
Cherkiss, Michael S. ;
Crowder, Andrew G. ;
Pollock, Clayton ;
Hillis-Starr, Zandy ;
Munoz Teneria, Fernando A. ;
Herrera-Pavon, Roberto ;
Labrada-Martagon, Vanessa ;
Lorences, Armando ;
Negrete-Philippe, Ana ;
Lamont, Margaret M. ;
Foley, Allen M. ;
Bailey, Rhonda ;
Carthy, Raymond R. ;
Scarpino, Russell ;
McMichael, Erin ;
Provancha, Jane A. ;
Brooks, Annabelle ;
Jardim, Adriana ;
Lopez-Mendilaharsu, Milagros ;
Gonzalez-Paredes, Daniel ;
Estrades, Andres ;
Fallabrino, Alejandro ;
Martinez-Souza, Gustavo ;
Velez-Rubio, Gabriela M. ;
Boulon, Ralf H. ;
Collazo, Jaime A. .
GLOBAL CHANGE BIOLOGY, 2017, 23 (11) :4556-4568
[10]   Somatic growth dynamics of West Atlantic hawksbill sea turtles: a spatio-temporal perspective [J].
Bjorndal, Karen A. ;
Chaloupka, Milani ;
Saba, Vincent S. ;
Diez, Carlos E. ;
van Dam, Robert P. ;
Krueger, Barry H. ;
Horrocks, Julia A. ;
Santos, Armando J. B. ;
Bellini, Claudio ;
Marcovaldi, Maria A. G. ;
Nava, Mabel ;
Willis, Sue ;
Godley, Brendan J. ;
Gore, Shannon ;
Hawkes, Lucy A. ;
McGowan, Andrew ;
Witt, Matthew J. ;
Stringell, Thomas B. ;
Sanghera, Amdeep ;
Richardson, Peter B. ;
Broderick, Annette C. ;
Phillips, Quinton ;
Calosso, Marta C. ;
Claydon, John A. B. ;
Blumenthal, Janice ;
Moncada, Felix ;
Nodarse, Gonzalo ;
Medina, Yosvani ;
Dunbar, Stephen G. ;
Wood, Lawrence D. ;
Lagueux, Cynthia J. ;
Campbell, Cathi L. ;
Meylan, Anne B. ;
Meylan, Peter A. ;
Perez, Virginia R. Burns ;
Coleman, Robin A. ;
Strindberg, Samantha ;
Guzman-H, Vicente ;
Hart, Kristen M. ;
Cherkiss, Michael S. ;
Hillis-Starr, Zandy ;
Lundgren, Ian F. ;
Boulon, Ralf H., Jr. ;
Connett, Stephen ;
Outerbridge, Mark E. ;
Bolten, Alan B. .
ECOSPHERE, 2016, 7 (05)