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Cranial joint histology in the mallard duck (Anas platyrhynchos): new insights on avian cranial kinesis

机译:野鸭(Anas platyrhynchos)的颅关节组织学:禽颅运动的新见解。

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摘要

The evolution of avian cranial kinesis is a phenomenon in part responsible for the remarkable diversity of avian feeding adaptations observable today. Although osteological, developmental and behavioral features of the feeding system are frequently studied, comparatively little is known about cranial joint skeletal tissue composition and morphology from a microscopic perspective. These data are key to understanding the developmental, biomechanical and evolutionary underpinnings of kinesis. Therefore, here we investigated joint microstructure in juvenile and adult mallard ducks (Anas platyrhynchos; Anseriformes). Ducks belong to a diverse clade of galloanseriform birds, have derived adaptations for herbivory and kinesis, and are model organisms in developmental biology. Thus, new insights into their cranial functional morphology will refine our understanding of avian cranial evolution. A total of five specimens (two ducklings and three adults) were histologically sampled, and two additional specimens (a duckling and an adult) were subjected to micro‐computed tomographic scanning. Five intracranial joints were sampled: the jaw joint (quadrate‐articular); otic joint (quadrate‐squamosal); palatobasal joint (parasphenoid‐pterygoid); the mandibular symphysis (dentary‐dentary); and the craniofacial hinge (a complex flexion zone involving four different pairs of skeletal elements). In both the ducklings and adults, the jaw, otic and palatobasal joints are all synovial, with a synovial cavity and articular cartilage on each surface (i.e. bichondral joints) ensheathed in a fibrous capsule. The craniofacial hinge begins as an ensemble of patent sutures in the duckling, but in the adult it becomes more complex: laterally it is synovial; whereas medially, it is synostosed by a bridge of chondroid bone. We hypothesize that it is chondroid bone that provides some of the flexible properties of this joint. The heavily innervated mandibular symphysis is already fused in the ducklings and remains as such in the adult. The results of this study will serve as reference for documenting avian cranial kinesis from a microanatomical perspective. The formation of: (i) secondary articular cartilage on the membrane bones of extant birds; and (ii) their unique ability to form movable synovial joints within two or more membrane bones (i.e. within their dermatocranium) might have played a role in the origin and evolution of modern avian cranial kinesis during dinosaur evolution.
机译:禽颅运动的演变是一种现象,部分原因是当今可观察到的禽食适应的显着多样性。尽管经常研究饲喂系统的骨学,发育和行为特征,但从微观角度对颅关节骨骼组织组成和形态知之甚少。这些数据是理解运动学发展,生物力学和进化基础的关键。因此,在这里我们研究了幼鸭和成年野鸭(Anas platyrhynchos; Anseriformes)的关节显微结构。鸭子属于不同种类的鸡形鸟类,对食草和运动有适应性,是发育生物学中的模型生物。因此,对它们的颅功能形态学的新见解将完善我们对禽颅进化的理解。从组织学上总共采样了五个标本(两个小鸭和三个大人),并对另外两个标本(一个小鸭和一个大人)进行了显微计算机断层扫描。抽取了五个颅内关节:下颌关节(方形关节);耳突(方形鳞状); pal基底关节(副蝶骨-翼状id肉);下颌骨(牙齿-牙齿);和颅面铰链(复杂的屈曲区域,涉及四对不同的骨骼元素)。在小鸭和成年鸭中,颚,耳和基底关节都是滑膜,滑膜腔和在每个表面上的关节软骨(即软骨软骨关节)都被包裹在纤维囊中。颅面铰链始于小鸭的专利缝合线,但在成年后则变得更加复杂:侧向为滑膜;小关节为滑膜。而在内侧,它是由软骨骨桥桥接的。我们假设是软骨骨提供了该关节的一些柔性特性。重度神经支配的下颌骨联合已经融合在小鸭中,并且在成年动物中仍然如此。这项研究的结果将为从微观解剖学角度记录禽颅的运动学提供参考。 (i)在现存鸟类的膜骨上形成继发性软骨; (ii)在恐龙进化过程中,其在两个或多个膜状骨骼内(即在其皮骨颅内)形成活动滑膜关节的独特能力可能在现代禽颅运动的起源和进化中发挥了作用。

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