Form, function and development of the amniote skull: a case study using lepidosaurs
Form, function and development of the amniote skull: a case study using lepidosaurs
批准号:
BB/W00867X/1
负责人:
Emily Rayfield
金额:
$61.86万
依托单位:
依托单位国家:
英国
项目类别:
Research Grant
财政年份:
2022
资助国家:
英国
项目状态:
未结题
起止时间:
2022 至 --
中文摘要
我们眼睛后面的头骨的每一侧都有一个大的开口,容纳了下巴闭合的肌肉。虽然我们物种和其他哺乳动物的头骨只有一个开口,或颞窗,但3亿多年前所有哺乳动物(哺乳动物和爬行动物,包括鸟类)的祖先都有两个。在进化过程中,时间窗的数量和形式的变化传统上在教科书中被描述为产生了生活的主要谱系,以及它们在广泛的环境中的多样化。例如,哺乳动物只进化出一个窗孔,而蛇失去了颞窗孔,鳄鱼则保留了两个。然而,颞窗的进化历史比以前认为的要复杂得多,因为类似的开窗在不同的群体中已经进化了多次,并且共享相同开窗的物种通常在相关骨支架的大小、形状和排列方面表现出很大的变异性。由于颞窗容纳了下颌闭合肌肉,它们的存在或缺失以及在进化过程中形态的变化传统上与下颌闭合肌肉组织的体积,进食力量和饮食有关。这些进化变化被解释为胚胎发育期间头骨骨化方式的变化,这将改变发育中肌肉的位置。然而,我们现在知道肌肉和其他软组织在发育中的胚胎中先于骨骼元素形成,因此我们认为颅骨中窗孔的形成可能是肌肉发育方式的结果。此外,目前还不清楚开窗及其相关肌肉组织的变化如何影响整个头骨在进食过程中的功能和力学,以及头骨的发育,形态和功能如何相互作用以影响头骨的进化。在本项目中,我们建议通过重点关注鳞龙科(鳄蜥、蜥蜴和蛇)来解决这些问题,鳞龙科是最似是而非的现存羊水动物群体之一,具有显着的生态和解剖多样性,其中包括发现的主要类型的穿孔活的羊水动物。解决这些想法和问题一直受到以下因素的阻碍:缺乏关于非模型动物头骨和肌肉如何发育的知识,缺乏关于活体动物肌肉特性的比较数据集,以及无法应用计算方法来推断大样本量的功能,从而推断功能和进化。在这里,我们汇集了一组研究人员,他们是开发和验证成像,重建和模拟肌肉骨骼解剖,其发展和功能的方法的领导者。该团队将提供大量的发育数据(150个发育阶段),这些数据代表了鳞龙类头骨结构的变化,以及涵盖所有主要家族的成年动物(150种)的肌肉骨骼解剖和功能数据。我们将首次了解头骨如何发育,以及骨骼和肌肉形成的相对时间;这如何产生头骨形状,肌肉特性以及头骨形状,肌肉和功能(饮食和生态)之间的关系的变化。我们的项目将产生方法上的进步,可以更广泛地应用于进化的过渡和辐射,并解决长期存在的问题,连接形式和功能。古生物学家、解剖学家、生物力学家、进化和发育生物学家和工程师将从这项工作中受益,这将建立新的国际合作。它的视觉方面和对蜥蜴和蛇的关注将吸引公众,提供参与机会并引起媒体的兴趣。
英文摘要
Each side of our skull behind our eyes bears a large opening that houses jaw-closing muscles. While the skull of our species and other mammals has a single opening, or temporal fenestra, the ancestors of all amniotes (mammals and reptiles, including birds) more than 300 million years ago had two. Transformations in the number and form of the temporal fenestrae during evolution is traditionally depicted in textbooks as giving rise to the major lineages of living amniotes, and their diversification in a broad array of environments. For instance, while mammals have evolved only one fenestra, snakes have lost their temporal fenestrae, and crocodiles retain two. The evolutionary history of temporal fenestrae is however more complex than previously thought, as similar fenestration has evolved multiple times in different groups, and species that share the same fenestration often exhibit a great variability in terms of size, shape, and arrangement of the associated bony scaffold. Because the temporal fenestrae house the jaw-closing muscles, their presence or absence and changes in their morphology during evolution have been traditionally linked to the volume of the jaw-closing musculature, feeding forces, and diet. These evolutionary changes were interpreted as resulting from changes in the way the skull ossifies during embryonic development, which would alter the position of the developing muscles. Yet, we now know that muscles and other soft tissues form before the skeletal elements in the developing embryos, and we therefore think that the formation of the fenestrae in the cranium might be a consequence of the way muscles develop. In addition, it is still unclear how variation in the fenestration and in its associated musculature influences the functioning and mechanics of the overall skull during feeding, and thus how development, morphology and function of the skull interact to influence the evolution of the skull in amniotes. In this project we propose to address these questions by focusing on lepidosaurs (tuatara, lizards, and snakes), one of the most specious group of living amniotes with a remarkable ecological and anatomical diversity, that encompasses the major types of fenestration found in living amniotes. Addressing these ideas and questions has been hindered by a lack of knowledge on how the skull bones and muscles develop in non-model animals, by the lack of a comparative dataset on muscle properties across living animals and the inability to apply computational approaches to deduce function on large sample sizes and therefore make inferences on function and evolution. Here we bring together a team of researchers who are leaders in developing and validating methods for imaging, reconstructing, and simulating the musculoskeletal anatomy, its development and function. The team will provide large amounts of developmental data (150 developmental stages) on species that represent the variation in skull construction across lepidosaurs, as well as data on musculoskeletal anatomy and function on adult animals (150 species) that encompass all major families. For the first time we will bring together an understanding of how the skull develops, and the relative timing of bone and muscle formation; how this generates variation in skull shape, muscle properties and the relationship between skull shape, muscles, and function (diet and ecology). Our project will produce methodological advances that can be applied more broadly to evolutionary transitions and radiations, and to address long standing questions linking form and function. Palaeontologists, anatomists, biomechanists, evolutionary and developmental biologists and engineers will benefit from this work, which will establish new international collaborations. Its visual aspect and focus on lizards and snakes will appeal to the public, offering engagement opportunities and generating media interest.
期刊论文(1)
专著(0)
科研奖励(0)
会议论文
DOI:
10.1038/s41598-023-45444-1
发表时间:
2023-10-25
期刊:
SCIENTIFIC REPORTS
影响因子:
4.6
作者:
[Ballell, Antonio, Mai, Bohao, Benton, Michael J.]
通讯作者:
Benton, Michael J.
Eat, heat and listen: on becoming a mammal
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批准号:NE/X001504/1
-
项目类别:Research Grant
-
资助金额:$79.19万
-
财政年份:2023
-
负责人:Emily Rayfield
-
依托单位:
Skull evolution and the terrestrialization and radiation of tetrapods
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批准号:NE/P013090/1
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项目类别:Research Grant
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资助金额:$53.41万
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财政年份:2017
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负责人:Emily Rayfield
-
依托单位:
Understanding the functional evolution of the mammalian middle ear and jaw joint across the cynodont-mammaliaform transition
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批准号:NE/K01496X/1
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项目类别:Research Grant
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资助金额:$48.23万
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财政年份:2013
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负责人:Emily Rayfield
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依托单位:
The morpho-functional evolution of bird beaks and skulls
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批准号:BB/I011668/1
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项目类别:Research Grant
-
资助金额:$41.78万
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财政年份:2011
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负责人:Emily Rayfield
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依托单位:
Diversity of the masticatory apparatus among extant rodents: 3D analysis and modeling of form and function
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Applying synchrotron X-ray microtomography to a study of Morganucodon and Kuehneotherium: two of the earliest stem mammals.
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批准号:NE/E010431/1
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Cranial functional morphology of Archaeopteryx and the biomechanical triggers of avian evolution
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财政年份:2006
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-
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