Molecular Population Structure for Feral Swine in the United States

被引:20
作者
McCann, Blake E. [1 ]
Smyser, Timothy J. [2 ]
Schmit, Brandon S. [2 ]
Newman, Robert A. [3 ]
Piaggio, Antoinette J. [2 ]
Malek, Mathew J. [4 ]
Swafford, Seth R. [5 ]
Sweitzer, Richard A. [6 ]
Simmons, Rebecca B. [3 ]
机构
[1] Theodore Roosevelt Natl Pk, Wildlife, Resource Management, 315 2nd Ave,POB 7, Medora, ND 58645 USA
[2] Wildlife Serv, USDA, 4101 La Porte Ave, Ft Collins, CO 80521 USA
[3] Univ North Dakota, Dept Biol, 10 Cornell St,Stop 9019, Grand Forks, ND 58202 USA
[4] Univ South Dakota, Sanford Sch Med, Dept Gen Surg, 1400 West 22nd St, Sioux Falls, SD 57105 USA
[5] US Fish & Wildlife Serv, 12595 MS Highway 149, Yazoo City, MS 39194 USA
[6] Great Basin Inst, 16750 Mt Rose Highway, Reno, NV 89511 USA
关键词
DNA; feral; genetic; pig; population; swine; United States; wild boar; wild pig; MULTILOCUS GENOTYPE DATA; PROGRAM STRUCTURE; GENETIC-MARKERS; RANGE EXPANSION; WILD PIGS; R-PACKAGE; SOFTWARE; INDIVIDUALS; RELATEDNESS; CALIFORNIA;
D O I
10.1002/jwmg.21452
中图分类号
Q14 [生态学(生物生态学)];
学科分类号
071012 ; 0713 ;
摘要
Feral swine (Sus scrofa) have invaded most of the United States and continue to expand throughout North America. Given the ecological and economic threats posed by increasing feral swine abundance, it is imperative to develop an understanding of their patterns of natural range expansion and human-mediated introductions. Towards this goal, we used molecular markers to elucidate the genetic structure of feral swine populations throughout the United States and evaluated the association between historical introductions and contemporary patterns of genetic organization. We used STRUCTURE and discriminant analysis of principal components (DAPC) to delineate genetic clusters for 959 individuals genotyped at 88 single nucleotide polymorphism loci. We identified 10 and 12 genetic clusters for the 2 clustering approaches, respectively. We observed strong agreement in clusters across approaches, with both describing clusters having strong geographic association at regional levels reflecting past introduction and range expansion patterns. In addition, we evaluated patterns of isolation by distance to test for and estimate spatial scaling of population structure within western, central, and eastern regions of North America. We found contrasting spatial patterns of genetic relatedness among regions, suggesting differences in the invasion process, likely as a result of regional variation in landscape heterogeneity and the influence of human-mediated introductions. Our results indicate that molecular analyses of population genetic structure can provide reliable insights into the invasion processes of feral swine, thus providing a useful basis for management focused on minimizing continued range expansion by this problematic species. (C) 2018 The Wildlife Society.
引用
收藏
页码:821 / 832
页数:12
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