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Of “mice” and mammals: utilizing classical inbred mice to study the genetic architecture of function and performance in mammals

机译:关于“小鼠”和哺乳动物:利用经典近交小鼠研究哺乳动物功能和行为的遗传结构

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摘要

The house mouse is one of the most successful mammals and the premier research animal in mammalian biology. The classical inbred strains of house mice have been artificially modified to facilitate identification of the genetic factors underlying phenotypic variation among these strains. Despite their widespread use in basic and biomedical research, functional and evolutionary morphologists have not taken full advantage of inbred mice as a model for studying the genetic architecture of form, function, and performance in mammals. We illustrate the potential of inbred mice as a model for mammalian functional morphology by examining the genetic architecture of maximum jaw-opening performance, or maximum gape, across 21 classical inbred strains. We find that variation in maximum gape among these strains is heritable, providing the first evidence of a genetic contribution to maximum jaw-opening performance in mammals. Maximum gape exhibits a significant genetic correlation with body size across strains, raising the possibility that evolutionary increases in size frequently resulted in correlated increases in maximum gape (within the constraints of existing craniofacial form) during mammalian evolution. Several craniofacial features that influence maximum gape share significant phenotypic and genetic correlations with jaw-opening ability across these inbred strains. The significant genetic correlations indicate the potential for coordinated evolution of craniofacial form and jaw-opening performance, as hypothesized in several comparative analyses of mammals linking skull form to variation in jaw-opening ability. Functional studies of mammalian locomotion and feeding have only rarely examined the genetic basis of functional and performance traits. The classical inbred strains of house mice offer a powerful tool for exploring this genetic architecture and furthering our understanding of how form, function, and performance have evolved in mammals.
机译:家鼠是最成功的哺乳动物之一,也是哺乳动物生物学中最主要的研究动物。对家鼠的经典近交菌株进行了人工修饰,以促进鉴定这些菌株中表型变异的遗传因素。尽管功能和进化形态学家在基础和生物医学研究中得到了广泛使用,但它们并未充分利用近交小鼠作为研究哺乳动物形式,功能和性能遗传结构的模型。我们通过检查21个经典近交系中最大的张口性能或最大缺口的遗传结构,说明了近交小鼠作为哺乳动物功能形态学模型的潜力。我们发现这些菌株之间最大缺口的变异是可遗传的,为遗传贡献最大的哺乳动物开颌性能提供了第一个证据。最大缺口与各品系的个体大小之间显示出显着的遗传相关性,从而增加了哺乳动物进化过程中大小不断演变而导致最大缺口相关增加的可能性(在现有颅面形式的约束下)。在这些近交系中,影响最大间隙的几个颅面特征与显着的表型和遗传相关性与颚开放能力有关。显着的遗传相关性表明颅面形状和张口性能协调发展的潜力,如在对头骨形状与张口能力变化相关的哺乳动物的几种比较分析中所假设的。哺乳动物运动和喂养的功能研究很少检查功能和性能特征的遗传基础。传统的家鼠自交系为探索这种遗传结构和加深我们对哺乳动物的形式,功能和性能的进化提供了有力的工具。

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  • 来源
    《Integrative and Comparative Biology》 |2008年第3期|p.324-337|共14页
  • 作者单位

    *Department of Anatomy, Northeastern Ohio Universities Colleges of Medicine and Pharmacy, Rootstown, OH 44272, USA;

    †Laboratory of Genetics, University of Wisconsin, Madison, WI 53706, USA;

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  • 入库时间 2022-08-18 01:18:55

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