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Published on: February 25, 2011
Intra- and Interspecific Effects on Spatio-Temporal Behavior of Common Commensal Rodent Species
Florian Huels1, Vincent Sluydts2, Dries Vermeiren2
1Julius Kühn-Institute (JKI), Federal Research Centre for Cultivated Plants, Institute for Epidemiology and Pathogen Diagnostics, Rodent Research, Muenster, Germany.
Abstract:
Commensal rodent species such as roof rats (Rattus rattus), brown rats (Rattus norvegicus), and house mice (Mus musculus) show various ecological and behavioral adaptations to the commensal environment. Where they live in close proximity to humans, they damage infrastructure, contaminate stored goods, and can transmit zoonotic pathogens. Identification of patterns and drivers of movements of these species helps to understand interactions among them as well as interaction with pathogens, humans, and livestock. Using a novel Bluetooth logger system, contact data and rodent movement patterns were recorded in the pig farm environment with unprecedented spatial resolution. There were interspecific differences between roof rat, brown rat, and house mouse in temporal activity, home range size, and movements between individual stable buildings. Rat species showed more nocturnal activity and occupied larger home range areas than co-occurring house mice, which, however, travelled significantly longer distances per hour. All investigated species almost never moved between the interiors of different buildings, but movements within and around buildings were frequent. Intraspecific effects such as sex and body weight were restricted to the effects of body weight on core home ranges (all species) and distance moved per hour (roof rats) as well as more movement between buildings in male versus female brown rats. Commensal rodent species reacted differently to the farm environment, probably to avoid resource competition and to support co-existence. Identifying movement patterns and contact points between rodents and livestock contributes to a better understanding of possible transmission routes of rodent-borne pathogens in livestock farming.
Insights
Rodent movement patterns in pig farms reveal species-specific behaviors and limited inter-building travel. Understanding these patterns is crucial for controlling pathogen transmission in livestock environments.
Area of Science:
- Ecology
- Veterinary Science
- Zoology
Background:
- Commensal rodents (roof rats, brown rats, house mice) adapt to human environments, causing infrastructure damage, contamination, and disease transmission.
- Understanding rodent movement and interactions is key to managing pathogen spread to humans and livestock.
Purpose of the Study:
- To investigate movement patterns and home range sizes of roof rats, brown rats, and house mice in a pig farm setting.
- To identify interspecific and intraspecific differences in rodent behavior and habitat use.
- To assess potential pathogen transmission routes between rodents and livestock.
Main Methods:
- Utilized a novel Bluetooth logger system to record rodent contact data and movement patterns with high spatial resolution.
- Monitored roof rats (Rattus rattus), brown rats (Rattus norvegicus), and house mice (Mus musculus) within a pig farm environment.
Main Results:
- Significant interspecific differences observed in temporal activity, home range size, and inter-building movements.
- Rat species exhibited more nocturnal activity and larger home ranges than house mice, which traveled longer distances per hour.
- Rodents primarily moved within or around buildings, rarely between interiors of different structures. Intraspecific effects included body weight influencing home ranges and movement, and sex influencing brown rat movement.
Conclusions:
- Commensal rodent species display distinct movement strategies, likely to minimize competition and coexist.
- Movement patterns and contact points highlight potential transmission routes for rodent-borne pathogens in livestock farming.
- Data provides insights for targeted rodent control and disease prevention strategies in agricultural settings.
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