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壁虎体内运动的体内测量:在张口展示、进食和咬噬过程中颅骨运动的作用。

In Vivo Measurement of Mesokinesis in Gekko gecko: The Role of Cranial Kinesis during Gape Display, Feeding and Biting.

作者信息

Montuelle Stéphane J, Williams Susan H

机构信息

Ohio University Heritage College of Osteopathic Medicine, Department of Biomedical Sciences, Irvine Hall 228, Athens, OH, 45701, United States of America.

出版信息

PLoS One. 2015 Jul 31;10(7):e0134710. doi: 10.1371/journal.pone.0134710. eCollection 2015.

Abstract

Cranial kinesis refers to movements of skeletal sub-units relative to one another at mobile sutures within the skull. The presence and functional significance of cranial kinesis has been investigated in various vertebrates, with much of our understanding coming from comparative studies and manipulation of ligamentous specimens. Drawing on these studies, cranial kinesis in lizards has been modeled as a four-bar linkage system involving streptostyly (rotation of the quadrate), hypokinesis (dorsoventral flexion and extension of the palato-maxillary sub-unit), mesokinesis (dorsoventral flexion and extension of the snout at the fronto-parietal suture) and metakinesis (sliding movements between parietal and supraocciptal bones). In vivo studies, although limited, suggest that cranial kinesis serves an important role during routine behaviors such as feeding. Here, we use X-ray Reconstruction Of Moving Morphology to further quantify mesokinesis in vivo in Gekko gecko during three routine behaviors: gape display, biting and post-ingestion feeding. During gape display, the snout rotates dorsally above rest position, with mesokinesis accounting for a 10% increase in maximum gape over that achieved solely by the depression of the lower jaw. During defensive biting, the snout rotates ventrally below rest position to participate in gape closure. Finally, ventroflexion of the snout also occurs during post-ingestion feeding, accounting for 42% of gape closure during intra-oral transport, 86% during puncture-crushing, and 61% during pharyngeal packing. Mesokinesis thus appears to facilitate prey puncturing by allowing the snout to rotate ventrally so that the upper teeth pierce the prey item, thus limiting the need for large movements of the lower jaw. This is suggested to maintain a firm grip on the prey and reduce the possibility of prey escape. More generally, this study demonstrates that mesokinesis is a key component of defensive biting and gape display behaviors, as well as post-ingestion feeding, all of which are linked to organismal fitness.

摘要

颅骨运动是指颅骨内可移动缝处骨骼亚单位之间的相对运动。颅骨运动的存在及其功能意义已在各种脊椎动物中得到研究,我们的大部分认识来自比较研究和对韧带标本的操作。基于这些研究,蜥蜴的颅骨运动被建模为一个四杆联动系统,包括链状关节(方骨旋转)、低运动(腭-上颌亚单位的背腹屈伸)、中运动(额顶缝处吻部的背腹屈伸)和后运动(顶骨和枕上骨之间的滑动运动)。体内研究虽然有限,但表明颅骨运动在进食等日常行为中起着重要作用。在此,我们使用运动形态的X射线重建技术,进一步量化豹纹守宫在三种日常行为(张口展示、咬食和摄食后进食)过程中的中运动。在张口展示过程中,吻部在静止位置上方背向旋转,中运动使最大张口度比仅通过下颌下压实现的张口度增加了10%。在防御性咬食时,吻部在静止位置下方腹向旋转以参与闭口。最后,在摄食后进食过程中吻部也会腹向弯曲,在口腔内运输过程中占闭口的42%,穿刺挤压时占86%,咽部填塞时占61%。因此,中运动似乎通过允许吻部腹向旋转,使上牙刺穿猎物,从而促进猎物穿刺,进而减少下颌大幅运动的需求。这被认为是为了保持对猎物的牢固抓握并降低猎物逃脱的可能性。更普遍地说,这项研究表明中运动是防御性咬食、张口展示行为以及摄食后进食的关键组成部分,所有这些都与机体适应性相关。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ad4c/4521707/610dcc90ac2c/pone.0134710.g001.jpg

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