Potential Futures for Coastal Wolves and Their Ecosystem Services in Alaska, With Implications for Management of a Social-Ecological System

被引:4
作者
Gilbert, Sophie L. [1 ]
Haynes, Trevor
Lindberg, Mark S.
Albert, David M. [2 ]
Kissling, Michelle [3 ]
Lynch, Laurel [4 ]
Person, Dave
机构
[1] Univ Idaho, Dept Fish & Wildlife Sci, Moscow, ID USA
[2] Univ Alaska Fairbanks, Inst Arctic Biol, Dept Biol & Wildlife, Fairbanks, AK USA
[3] Nature Conservancy, Juneau, AK USA
[4] Univ Montana, Dept Fish & Wildlife Biol, Missoula, MT USA
关键词
Tongass National Forest; Alaska (United States); ecosystem service (ES) values; predator-prey interactions; social-ecological systems (SES); Endangered Species Act; hunting; Canis lupus ligoni; BLACK-TAILED DEER; TEMPERATE RAIN-FORESTS; SOUTHEAST ALASKA; NORTH-AMERICAN; CANIS-LUPUS; DIVERSITY; ABUNDANCE; RESPONSES; AVAILABILITY; RESTORATION;
D O I
10.3389/fevo.2022.809371
中图分类号
Q14 [生态学(生物生态学)];
学科分类号
071012 ; 0713 ;
摘要
Carnivores across much of the world are declining, leading to loss of biodiversity as well as the ecosystem services carnivores provide. In 2020, the Alexander Archipelago (AA) wolf was petitioned for protection under the U.S. Endangered Species Act (ESA) for the third time in 30 years. Concerns included habitat alteration from industrial timber harvest and subsequent declines in prey (deer), human-caused mortality, climate change, and genetic inbreeding. However, the underlying biogeography and ecology of these wolves continues to suggest resiliency across the subspecies' range, even though local populations may go extinct. If local wolf populations go extinct, it will result in loss of their ecosystem services (e.g., interactions of wolves with their prey, which prevents over-browsing and protects carbon sequestration in soils and trees), which will likely have major consequences for the local social-ecological system. Here, we updated a model we constructed for the last ESA listing process (2015) to examine the dynamics of wolf and deer populations on Prince of Wales Island (the primary geographic focus of all three petitions) in response to future environmental and management scenarios developed with stakeholders. Further, we considered how changes in deer abundance impact predation services (prevention of over-browsing by deer). We found that wolf populations generally persisted over 30 years, but dropped below an effective population size of 50 wolves in 10-98% of years simulated. Low wolf abundance resulted in higher deer abundance, which increased hunting opportunity, but also browsing damages (e.g., 19% of areas would be over-browsed if wolf harvest caps are removed, and >30% of areas would be over-browsed if wolves go extinct). Human harvest of wildlife was a key regulator of abundance and ecosystem services within the coastal rainforest social-ecological system; wolf abundance was most affected by wolf harvest regulations; and deer harvest restrictions increased wolf and deer abundances, but also greatly increased browsing impacts (>70% of areas heavily browsed if hunting ceased). Our findings support an integrated approach to management of this social-ecological system, such that social and ecological sciences are both used to monitor important components of the system (e.g., measuring public sentiment and likelihood of poaching, alongside wolf and deer numbers). Integration and adaptive approaches are needed to ensure that the many ecosystem services humans depend on are valued, conserved, and restored, including the cryptic predation services wolves have historically provided to the timber industry via reduced browsing pressure by deer.
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页数:15
相关论文
共 106 条
[11]  
[Anonymous], 1990, Effects of forest fragmentation on deer in southeast Alaska
[12]  
[Anonymous], 2008, Tongass Land and Resource Management Plan, Final Environmental Impact Statement, Plan Amendment
[13]  
Anthony L., 2019, DEER WARS FOREST AWA
[14]   Genetic diversity, population structure, effective population size and demographic history of the Finnish wolf population [J].
Aspi, J ;
Roininen, E ;
Ruokonen, M ;
Kojola, I ;
Vilà, C .
MOLECULAR ECOLOGY, 2006, 15 (06) :1561-1576
[15]   Species indicators of ecosystem recovery after reducing large herbivore density: Comparing taxa and testing species combinations [J].
Bachand, Marianne ;
Pellerin, Stephanie ;
Cote, Steeve D. ;
Moretti, Marco ;
De Caceres, Miguel ;
Brousseau, Pierre-Marc ;
Cloutier, Conrad ;
Hebert, Christian ;
Cardinal, Etienne ;
Martin, Jean-Louis ;
Poulin, Monique .
ECOLOGICAL INDICATORS, 2014, 38 :12-19
[16]  
Ballard WB, 2001, WILDLIFE SOC B, V29, P99
[17]   Herbivore-mediated linkages between aboveground and belowground communities [J].
Bardgett, RD ;
Wardle, DA .
ECOLOGY, 2003, 84 (09) :2258-2268
[18]   Linking above-ground and below-ground interactions: How plant responses to foliar herbivory influence soil organisms [J].
Bardgett, RD ;
Wardle, DA ;
Yeates, GW .
SOIL BIOLOGY & BIOCHEMISTRY, 1998, 30 (14) :1867-1878
[19]  
Benner J, 2021, J ETHNOBIOL, V41, P209, DOI 10.2993/0278-0771-41.2.209
[20]  
Bowyer R.T., 2005, DETECTING TOP DOWN V