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Range of Movement in Ray I of Manus and Pes and the Prehensility of the Autopodia in the Early Permian to Late Cretaceous Non-Anomodont Synapsida

机译:Mans和Pes射线I的活动范围和早二叠世至晚白垩世非Anomodont突触的自足性

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摘要

The mobility of ray I was analysed in seventy-eight Early Permian to Late Cretaceous specimens of non-mammalian Synapsida and one extant mammal. In all non-mammaliamorph Synapsida investigated, ray I formed a digital arcade. The first phalanx was maximally extendable to the zero position in the metapodiophalangeal joint I. Metapodiale I was the functional equivalent to a basal phalanx of digits II–V. In contrast, there was no digital arcade in ray I in Mesozoic Mammaliamorpha. Phalanx 1 I was dorsally extendable and metapodiale I was functionally part of the metapodium. During the propulsion phase, autopodial rotation occurred in the majority of Synapsida with abducted limb posture. Regarding ray I, the reduction of autopodial rotation can be estimated, e.g., from the decrease of lateral rotation and medial abduction of the first phalanx in the metapodiophalangeal joint I. Autopodial rotation was high in Titanophoneus and reduced in derived Cynodontia. In Mammaliamorpha the mobility of the first ray suggests autopodial rolling in an approximately anterior direction. Most non-mammaliamorph Therapsida and probably some Mesozoic Mammaliamorpha had prehensile autopodia with an opposable ray I. In forms with a pronounced relief of the respective joints, ray I could be opposed to 90° against ray III. A strong transverse arch in the row of distalia supported the opposition movement of ray I and resulted in a convergence of the claws of digits II–V just by flexing those digits. A tight articular coherence in the digital joints of digits II–V during strong flexion supported a firm grip capacity. Usually the grip capacity was more pronounced in the manus than in the pes. Prehensile autopodia of carnivorous Therapsida may have been utilized to hold prey while biting, thus helping to avoid fractures of the laterally compressed fangs.
机译:在非哺乳动物突触和一种现存哺乳动物的78个早二叠纪至晚白垩纪标本中分析了射线I的迁移率。在所有非哺乳动物的突触研究中,雷一世都形成了数字拱廊。第一个指骨最大程度地延伸到dio趾关节I的零位置。Meta趾I在功能上等同于第II–V字根的趾骨。相反,中生代哺乳动物的射线I中没有数字游戏厅。趾骨1我是可背伸展的,后足I在功能上是后足的一部分。在推进阶段,大多数突触中发生自足旋转,肢体外展。关于射线I,可以例如通过后po指关节I的第一个指骨的外侧旋转的减少和内侧外展的减少来估计自足旋转的减少。自足旋转在Titanophoneus中很高,而在衍生的犬齿畸形中则减少了。在哺乳动物中,第一射线的流动性表明自足体在大约向前的方向滚动。大多数非哺乳动物形态的Therapsida以及一些中生的哺乳动物形态均具有能抵抗射线I的阵挛性自足神经。在各关节明显缓解的形态下,射线I可能与射线III相对于90°。远端的一排坚硬的横弓支撑了射线I的反向运动,仅通过弯曲这些数字就使数字II-V的爪融合在一起。在强屈期间,II-V字数字关节的紧密关节连贯性支持了牢固的抓地力。通常,抓地力在手掌中比在人猿中更为明显。食肉食欲动物的有力的自足足可以咬住猎物,从而有助于避免侧向压缩的犬齿破裂。

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