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本文引用的文献

1
How moles destroy your lawn: the forelimb kinematics of eastern moles in loose and compact substrates.如何让鼹鼠破坏你的草坪:疏松和紧实基质中东方鼹鼠前肢运动学。
J Exp Biol. 2019 Feb 18;222(Pt 4):jeb182436. doi: 10.1242/jeb.182436.
2
The functional anatomy of the shoulder of the savannah monitor lizard (Varanus exanthematicus).草原巨蜥(草原巨蜥)肩部的功能解剖学。
J Morphol. 1983 Feb;175(2):195-216. doi: 10.1002/jmor.1051750207.
3
DINOSAUR PHYSIOLOGY AND THE ORIGIN OF MAMMALS.恐龙生理学与哺乳动物的起源
Evolution. 1971 Dec;25(4):636-658. doi: 10.1111/j.1558-5646.1971.tb01922.x.
4
Foot pressure distributions during walking in African elephants ().非洲象行走时的足部压力分布()。
R Soc Open Sci. 2016 Oct 5;3(10):160203. doi: 10.1098/rsos.160203. eCollection 2016 Oct.
5
Validation of XMALab software for marker-based XROMM.用于基于标记的XROMM的XMALab软件验证
J Exp Biol. 2016 Dec 1;219(Pt 23):3701-3711. doi: 10.1242/jeb.145383. Epub 2016 Sep 21.
6
Forelimb Kinematics of Rats Using XROMM, with Implications for Small Eutherians and Their Fossil Relatives.使用XROMM技术对大鼠前肢运动学的研究,及其对小型真兽类及其化石亲属的启示
PLoS One. 2016 Mar 2;11(3):e0149377. doi: 10.1371/journal.pone.0149377. eCollection 2016.
7
Three-dimensional kinematics of the pelvis and hind limbs in chimpanzee (Pan troglodytes) and human bipedal walking.黑猩猩(Pan troglodytes)骨盆和后肢的三维运动学与人类双足行走
J Hum Evol. 2015 Sep;86:32-42. doi: 10.1016/j.jhevol.2015.05.012. Epub 2015 Jul 17.
8
Three-dimensional skeletal kinematics of the shoulder girdle and forelimb in walking Alligator.行走扬子鳄肩带和前肢的三维骨骼运动学。
J Anat. 2013 Nov;223(5):462-73. doi: 10.1111/joa.12102. Epub 2013 Sep 15.
9
Vertebral architecture in the earliest stem tetrapods.最早的四足脊椎动物的椎体结构。
Nature. 2013 Feb 14;494(7436):226-9. doi: 10.1038/nature11825. Epub 2013 Jan 13.
10
Three-dimensional limb joint mobility in the early tetrapod Ichthyostega.早期四足鱼石螈的三维肢体关节活动性。
Nature. 2012 Jun 28;486(7404):523-6. doi: 10.1038/nature11124.

鼹鼠如何行走;全靠拇指。

How moles walk; it's all thumbs.

机构信息

Graduate Program in Organismic and Evolutionary Biology, University of Massachusetts Amherst, Amherst, MA 01003, USA.

Department of Biological Sciences, University of Massachusetts Lowell, Lowell, MA 01852, USA.

出版信息

Biol Lett. 2019 Oct 31;15(10):20190503. doi: 10.1098/rsbl.2019.0503. Epub 2019 Oct 30.

DOI:10.1098/rsbl.2019.0503
PMID:31662063
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC6832175/
Abstract

A recurring theme in the evolution of tetrapods is the shift from sprawling posture with laterally orientated limbs to erect posture with the limbs extending below the body. However, in order to invade particular locomotor niches, some tetrapods secondarily evolved a sprawled posture. This includes moles, some of the most specialized digging tetrapods. Although their forelimb anatomy and posture facilitates burrowing, moles also walk long distances to forage for and transport food. Here, we use X-ray Reconstruction Of Moving Morphology (XROMM) to determine if the mole humerus rotates around its long axis during walking, as it does when moles burrow and echidnas walk, or alternatively protracts and retracts at the shoulder in the horizontal plane as seen in sprawling reptiles. Our results reject both hypotheses and demonstrate that forelimb kinematics during mole walking are unusual among those described for tetrapods. The humerus is retracted and protracted in the parasagittal plane above, rather than below the shoulder joint and the 'false thumb', a sesamoid bone (os falciforme), supports body weight during the stance phase, which is relatively short. Our findings broaden our understanding of the diversity of tetrapod limb posture and locomotor evolution, demonstrate the importance of X-ray-based techniques for revealing hidden kinematics and highlight the importance of examining locomotor function at the level of individual joint mobility.

摘要

四足动物进化的一个反复出现的主题是从四肢侧向伸展的匍匐姿势向四肢位于身体下方的直立姿势的转变。然而,为了侵入特定的运动生态位,一些四足动物的姿势会再次进化为匍匐姿势。这包括鼹鼠,它们是最具专业化的挖掘四足动物之一。尽管它们的前肢解剖结构和姿势有利于挖掘,但鼹鼠也会走很远的路去寻找和运输食物。在这里,我们使用 X 射线重建运动形态学(XROMM)来确定鼹鼠的肱骨在行走时是否绕其长轴旋转,就像它们在挖掘和针鼹行走时那样,或者像在匍匐爬行动物中那样在水平面上在肩部伸展和缩回。我们的结果否定了这两种假设,并表明鼹鼠行走时的前肢运动学在四足动物中是不寻常的。肱骨在肩关节上方的矢状面缩回和伸展,而不是在下方,“假拇指”,一个籽骨(os falciforme),在相对较短的支撑身体重量在站立阶段。我们的发现拓宽了我们对四足动物肢体姿势和运动进化多样性的理解,证明了基于 X 射线的技术对于揭示隐藏运动学的重要性,并强调了在单个关节运动水平上检查运动功能的重要性。