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自由活动的 callitrichine 灵长类动物对基质直径和方向变化的非对称步态运动学。

Asymmetrical gait kinematics of free-ranging callitrichine primates in response to changes in substrate diameter and orientation.

机构信息

Division of Conservation and Science, Cleveland Metroparks Zoo, 4200 Wildlife Way, Cleveland, OH 44109, USA

Department of Biology, Case Western Reserve University, 2080 Adelbert Road, Cleveland, OH 44106, USA.

出版信息

J Exp Biol. 2020 Jun 15;223(Pt 12):jeb217562. doi: 10.1242/jeb.217562.

Abstract

Arboreal environments present considerable biomechanical challenges for animals moving and foraging among substrates varying in diameter, orientation and compliance. Most studies of quadrupedal gait kinematics in primates and other arboreal mammals have focused on symmetrical walking gaits and the significance of diagonal sequence gaits. Considerably less research has examined asymmetrical gaits, despite their prevalence in small-bodied arboreal taxa. Here, we examined whether and how free-ranging callitrichine primates adjust asymmetrical gait kinematics to changes in substrate diameter and orientation, as well as how variation in gait kinematics affects substrate displacement. We used high-speed video to film free-ranging and inhabiting the Tiputini Biodiversity Station, Ecuador. We found that used bounding and half-bounding gaits on larger substrates versus gallops and symmetrical gaits on smaller substrates, and also shifted several kinematic parameters consistent with attenuating forces transferred from the animal to the substrate. Similarly, shifted from high-impact bounding gaits on larger substrates to using more half-bounding gaits on smaller substrates; however, kinematic adjustments to substrate diameter were not as profound as in Both species adjusted gait kinematics to changes in substrate orientation; however, gait kinematics did not significantly affect empirical measures of substrate displacement in either species. Because of their small body size, claw-like nails and reduced grasping capabilities, callitrichines arguably represent extant biomechanical analogs for an early stage in primate evolution. As such, greater attention should be placed on understanding asymmetrical gait dynamics for insight into hypotheses concerning early primate locomotor evolution. .

摘要

树栖环境对在直径、方向和顺应性各异的基质中移动和觅食的动物提出了相当大的生物力学挑战。大多数关于灵长类动物和其他树栖哺乳动物四肢行走运动学的研究都集中在对称行走步态和对角序列步态的意义上。尽管在体型较小的树栖分类群中不对称步态很常见,但对其进行的研究要少得多。在这里,我们研究了自由生活的卷尾猴是否以及如何根据基质直径和方向的变化调整不对称步态的运动学,以及步态运动学的变化如何影响基质位移。我们使用高速摄像机拍摄了栖息在厄瓜多尔 Tiputini 生物多样性站的自由生活的和。我们发现,在较大的基质上使用了跳跃和对称步态,而在较小的基质上使用了奔跑和半奔跑步态,并且还改变了几个运动学参数,这些参数与从动物传递到基质的力的衰减一致。同样,从较大的基质上的高冲击力奔跑步态转变为在较小的基质上使用更多的半奔跑步态;然而,对基质直径的运动学调整不如在 中那么明显。两种物种都根据基质方向的变化调整了步态运动学;然而,在这两个物种中,步态运动学都没有显著影响基质位移的经验测量值。由于体型较小、爪子状的指甲和抓握能力降低,卷尾猴可以说是灵长类动物进化早期现存的生物力学模拟物。因此,应该更加关注理解不对称步态动力学,以深入了解关于早期灵长类动物运动进化的假说。

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