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Published on: June 11, 2017
Evaluating The Precocial-altricial Axis of Motor Skill at Birth in A Preterm Pig Model
Jesse W Young1,2, Christopher J Mayerl3, Alekhya Mannava2
1School of Biomedical Sciences, Kent State University, Kent OH 44242, USA.
Insights
Preterm piglets exhibit impaired balance and altered locomotion, similar to altricial mammals. This study uses a novel within-species design to investigate motor development in pigs.
Area of Science:
- Evolutionary Biology
- Developmental Biology
- Biomechanics
Background:
- Locomotor development is key to evolutionary fitness, with species categorized as precocial (competent at birth) or altricial (limited early mobility).
- Comparative studies are limited by confounding variables between species, complicating the understanding of perinatal motor development.
- Investigating neuromotor and biomechanical traits requires experimental control to isolate factors influencing motor development.
Purpose of the Study:
- To investigate the biomechanical and neuromotor basis of locomotor development variation.
- To utilize a within-species design by experimentally manipulating gestation length in domestic pigs (Sus scrofa).
- To compare motor development in preterm (functionally altricial) pigs with full-term (precocial) littermates.
Main Methods:
- Standard biomechanical testing was employed to assess balance and locomotion.
- Static balance tests evaluated postural sway in preterm and full-term piglets.
- Locomotor analyses examined stride characteristics, duty factors, and gait patterns at varying speeds.
Main Results:
- Preterm pigs displayed increased postural sway, particularly in the anteroposterior direction.
- Preterm piglets exhibited shorter, more frequent strides and higher duty factors.
- Neuromuscular immaturity, rather than musculoskeletal immaturity, is suggested as the primary cause of motor deficits.
Conclusions:
- Experimentally manipulated gestation in pigs provides a model for studying functional altriciality within a species.
- Preterm piglet motor deficits mirror those observed in altricial mammals.
- This within-species approach offers a powerful tool for dissecting the biomechanical and neuromotor underpinnings of perinatal motor skill evolution.
Abstract:
The pace of locomotor development is a critical component of lifetime evolutionary fitness. Developmental researchers often divide species into two broad categories based on functional competence at birth: precocial infants who can independently stand and locomote soon after birth versus altricial infants who are either incapable of independent movement or can only do so in a rudimentary manner. However, investigating the lower level neuromotor and biomechanical traits that account for perinatal variation in motor development is complicated by the lack of experimental control inherent to all comparative analyses. Precocial and altricial animals often differ along a host of dimensions that can obfuscate the specific factors controlling motor development per se. Here, we propose an alternative approach of examining locomotor development in a nominally precocial species-the domestic pig (Sus scrofa)-in which gestation length has been experimentally manipulated, thereby creating "functionally altricial" cohorts for comparison. We have used standard biomechanical testing to evaluate balance and locomotor performance in preterm pigs born at 94% full-term gestation (N = 29 individuals) and compared these data to a similar dataset on age-matched full-term piglets (N = 15 individuals). Static balance tests showed that preterm pigs were characterized by increased postural sway, particularly in the fore-aft (anteroposterior) direction. Locomotor analyses showed that preterm piglets tended to take shorter, more frequent strides, use higher duty factors, and preferentially choose gait patterns that ensured they were supported by at least three limbs during most of the stride cycle, though differences between preterm and full-term animals were often modulated by variation in locomotor speed. Morphometric analysis showed no differences in relative extensor muscle mass between preterm and full-term animals, suggesting that neurological immaturity might be more determinant of preterm piglet motor dysfunctions than musculoskeletal immaturity per se (though much work remains to be done to fully document the neuromotor phenotype of the preterm infant pig model). In many ways, the postural and locomotor deficits shown by the preterm piglets paralleled the locomotor phenotype of altricial mammals. Overall, our study demonstrates the utility of a "within-species" design for studying the biomechanical correlates and neuromotor basis of evolutionary variation in motor skill at birth.

