Literature DB >> 22940061

Evaluating use of cattle winter feeding areas by elk and white-tailed deer: implications for managing bovine tuberculosis transmission risk from the ground up.

Ryan K Brook1, Eric Vander Wal, Floris M van Beest, Stéphane M McLachlan.   

Abstract

Transmission of bovine tuberculosis (Mycobacterium bovis) among wildlife and livestock has created important risks for conservation and agriculture. Management strategies aimed at controlling TB have typically been top-down, regionally focused, and government-led programs that were at best only partially successful. The purpose of this study was to quantify co-mingling of elk and white-tailed deer (WTD) with cattle at multiple spatial scales (i.e., the regional farm scale and winter cattle feeding area patch) in southwestern Manitoba, Canada, to assess the potential for bovine tuberculosis transmission and identify alternative management strategies. For each spatial scale we quantified use of cattle farms by elk and white-tailed deer. We mailed questionnaires to rural households and then conducted personal interviews with 86 cattle farmers to map the spatial distribution of their cattle winter feeding areas at a fine scale. We deployed Global Positioning System (GPS) collars on 48 wild elk and 16 wild white-tailed deer from 2003 to 2011. Elk were observed on farms by 66% of cattle producers, including 5% and 20% who observed direct and indirect contact, respectively, between elk and cattle. Cattle producers consistently (≈100%) observed white-tailed deer on their farms, including 11% and 47% whom observed direct and indirect contact, respectively, between white-tailed deer and cattle. A higher probability of white-tailed deer-cattle contact at the regional scale occurs on farms that (1) left crop residues specifically for wildlife, (2) had larger cattle herds, (3) used round bale feeders, and (4) were farther away from protected areas. None of the GPS-collared elk locations overlapped with cattle winter feeding areas. In contrast, 21% of GPS-collared white-tailed deer locations overlapped with winter cattle winter feeding areas (22% of these were from male WTD and 78% were from female WTD). White-tailed deer selected cattle winter feeding areas with higher (1) forage crop, (2) grassland/rangeland, and (3) forest cover around the cattle feeding area. Farmers overall expressed strongly negative attitudes toward eradicating the elk population or fencing the park to eradicate TB, but were generally supportive of less invasive and farm-based approaches. Our results suggested that management efforts to prevent TB transmission at the wildlife-agriculture interface can be effectively implemented using a 'bottom-up' approach that focuses on practical, farm-based mitigation strategies. This approach can be implemented by individual farm operators, is relatively low cost, and is generally well supported by farmers relative to other more extreme and controversial measures like wildlife eradication.
Copyright © 2012. Published by Elsevier B.V.

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Year:  2012        PMID: 22940061     DOI: 10.1016/j.prevetmed.2012.07.017

Source DB:  PubMed          Journal:  Prev Vet Med        ISSN: 0167-5877            Impact factor:   2.670


  13 in total

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Authors:  S R Clegg; K G Mansfield; K Newbrook; L E Sullivan; R W Blowey; S D Carter; N J Evans
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3.  Applying evolutionary concepts to wildlife disease ecology and management.

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Review 4.  Bovine Viral Diarrhea Virus (BVDV) in White-Tailed Deer (Odocoileus virginianus).

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Journal:  Front Vet Sci       Date:  2017-01-16

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7.  Distribution of enteropathogenic Yersinia spp. and Salmonella spp. in the Swedish wild boar population, and assessment of risk factors that may affect their prevalence.

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9.  Juxtaposition between host population structures: implications for disease transmission in a sympatric cervid community.

Authors:  Eric Vander Wal; Iain Edye; Paul C Paquet; David W Coltman; Erin Bayne; Ryan K Brook; José A Andrés
Journal:  Evol Appl       Date:  2013-10-09       Impact factor: 5.183

10.  Targeting hunter distribution based on host resource selection and kill sites to manage disease risk.

Authors:  Cherie J Dugal; Floris M van Beest; Eric Vander Wal; Ryan K Brook
Journal:  Ecol Evol       Date:  2013-10-01       Impact factor: 2.912

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