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Assessing Burrowing, Nest Construction, and Hoarding in Mice
Published on: January 5, 2012
Analysis of bone structure in PEROMYSCUS: Effects of burrowing behavior
Lindsey A Young1,2, Emma Munro1,2, Priya Somanchi3
1Department of Bioengineering, Northeastern University, Boston, Massachusetts, USA.
Deer mice that burrow have stronger limb bones than those that do not. Burrowing behavior in Peromyscus polionotus leads to adaptations in bone structure, indicating mechanoadaptation to digging stresses.
Area of Science:
- Comparative anatomy
- Functional morphology
- Biomechanics
Background:
- Burrowing is a complex behavior involving significant physical exertion.
- Bone structure is known to adapt to mechanical loads (mechanoadaptation).
- Peromyscus polionotus are known burrowers, while Peromyscus eremicus are not.
Purpose of the Study:
- To investigate the effects of burrowing behavior on appendicular bone structure in two Peromyscus species.
- To compare bone adaptations between a burrowing species (P. polionotus) and a non-burrowing species (P. eremicus).
- To examine developmental plasticity by comparing wild and lab-reared P. polionotus.
Main Methods:
- Micro-computed tomography (micro-CT) scanning of appendicular bones from museum specimens and lab-reared mice.
- Quantification of cortical bone properties (e.g., moment of area).
- Quantification of trabecular bone properties (e.g., thickness, spacing).
Main Results:
- Wild P. polionotus exhibited greater ulnar and tibial cortical bone resistance to bending compared to lab-reared individuals.
- Wild P. polionotus showed enhanced tibial structural properties (normalized second moment of area, cross-sectional area) relative to P. eremicus.
- Tibial and femoral trabecular bone in wild P. polionotus displayed reduced thickness and spacing, indicative of adaptation to high digging loads.
Conclusions:
- Burrowing behavior in Peromyscus induces significant adaptations in appendicular bone structure.
- These findings support the concept of mechanoadaptation in response to behavioral demands.
- The study provides a foundation for exploring the evolutionary and developmental basis of bone adaptation in rodents.
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