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本文引用的文献

1
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J Exp Biol. 2019 Aug 16;222(Pt 16):jeb205237. doi: 10.1242/jeb.205237.
2
SELECTION ON LOCOMOTOR PERFORMANCE CAPACITY IN A NATURAL POPULATION OF GARTER SNAKES.对束带蛇自然种群运动性能能力的选择
Evolution. 1990 Aug;44(5):1204-1229. doi: 10.1111/j.1558-5646.1990.tb05226.x.
3
The scaling of postcranial muscles in cats (Felidae) II: hindlimb and lumbosacral muscles.猫科动物(猫属)后颅骨肌肉的缩放比例 II:后肢和腰骶部肌肉
J Anat. 2016 Jul;229(1):142-52. doi: 10.1111/joa.12474. Epub 2016 Apr 15.
4
Ontogenetic scaling patterns and functional anatomy of the pelvic limb musculature in emus (Dromaius novaehollandiae).鸸鹋(Dromaius novaehollandiae)的附肢肌肉的个体发生比例模式和功能解剖学。
PeerJ. 2014 Dec 23;2:e716. doi: 10.7717/peerj.716. eCollection 2014.
5
Forelimb muscle architecture and myosin isoform composition in the groundhog (Marmota monax).土拨鼠(Marmota monax)前肢肌肉结构和肌球蛋白同工型组成
J Exp Biol. 2015 Jan 15;218(Pt 2):194-205. doi: 10.1242/jeb.107128. Epub 2014 Dec 1.
6
Comparative architectural properties of limb muscles in Crocodylidae and Alligatoridae and their relevance to divergent use of asymmetrical gaits in extant Crocodylia.鳄科和短吻鳄科四肢肌肉的比较结构特性及其与现存鳄目不对称步态不同用途的相关性。
J Anat. 2014 Dec;225(6):569-82. doi: 10.1111/joa.12245. Epub 2014 Nov 24.
7
Limb bone morphology, bone strength, and cursoriality in lagomorphs.兔形目动物的四肢骨骼形态、骨强度与奔跑能力
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8
Muscle architecture and out-force potential of the thoracic limb in the Eastern mole (Scalopus aquaticus).东部星鼻鼹(Scalopus aquaticus)胸肢的肌肉结构与外力潜力
J Morphol. 2013 Nov;274(11):1277-87. doi: 10.1002/jmor.20178. Epub 2013 Aug 2.
9
Mechanical and energetic scaling relationships of running gait through ontogeny in the ostrich (Struthio camelus).通过发育过程中鸵鸟(Struthio camelus)的奔跑步态的力学和能量比例关系。
J Exp Biol. 2013 Mar 1;216(Pt 5):841-9. doi: 10.1242/jeb.064691. Epub 2012 Nov 15.
10
Architectural specialization of the intrinsic thoracic limb musculature of the American badger (Taxidea taxus).美洲獾(Taxidea taxus)胸部固有肢体肌肉组织的结构特化。
J Morphol. 2013 Jan;274(1):35-48. doi: 10.1002/jmor.20074. Epub 2012 Sep 15.

东方棉尾兔(Sylvilagus floridanus)的脊柱旁和后肢肌肉的个体发生比例和建筑特性:对运动表现发育变化的功能意义。

Ontogenetic allometry and architectural properties of the paravertebral and hindlimb musculature in Eastern cottontail rabbits (Sylvilagus floridanus): functional implications for developmental changes in locomotor performance.

机构信息

Department of Biological Sciences, Youngstown State University, Youngstown, OH, USA.

Department of Anthropology, Stony Brook University, Stony Brook, NY, USA.

出版信息

J Anat. 2019 Jul;235(1):106-123. doi: 10.1111/joa.12991. Epub 2019 May 17.

DOI:10.1111/joa.12991
PMID:31099418
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC6579946/
Abstract

Due to small body size, an immature musculoskeletal system, and other growth-related limits on performance, juvenile mammals frequently experience a greater risk of predation than their adult counterparts. As a result, behaviorally precocious juveniles are hypothesized to exhibit musculoskeletal advantages that permit them to accelerate rapidly and evade predation. This hypothesis was tested through detailed quantitative evaluation of muscle growth in wild Eastern cottontail rabbits (Sylvilagus floridanus). Cottontail rabbits experience high rates of mortality during the first year of life, suggesting that selection might act to improve performance in growing juveniles. Therefore, it was predicted that muscle properties associated with force and power capacity should be enhanced in juvenile rabbits to facilitate enhanced locomotor performance. We quantified muscle architecture from 24 paravertebral and hindlimb muscles across ontogeny in a sample of n = 29 rabbits and evaluated the body mass scaling of muscle mass (MM), physiological cross-sectional area (PCSA), isometric force (F ), and instantaneous power (P ), along with several dimensionless architectural indices. In contrast to our hypothesis, MM and PCSA for most muscles change with positive allometry during growth by scaling at and , respectively, whereas F and P generally scale indistinguishably from isometry, as do the architectural indices tested. However, scaling patterns indicate that the digital flexors and ankle extensors of juvenile S. floridanus have greater capacities for force and power, respectively, than those in adults, suggesting these muscle properties may be a part of several compensatory features that promote enhanced acceleration performance in young rabbits. Overall, our study implies that body size constraints place larger, more mature rabbits at a disadvantage during acceleration, and that adults must develop hypertrophied muscles in order to maintain mechanical similarity in force and power capacities across development. These findings challenge the accepted understanding that juvenile animals are at a performance detriment relative to adults. Instead, for prey-predator interactions necessitating short intervals of high force and power generation relative to body mass, as demonstrated by rapid acceleration of cottontail rabbits fleeing predators, it may be the adults that struggle to keep pace with juveniles.

摘要

由于体型较小、骨骼肌肉系统不成熟以及与生长相关的性能限制,幼年哺乳动物经常比成年同类面临更大的被捕食风险。因此,行为上早熟的幼年动物被假设具有骨骼肌肉优势,使它们能够快速加速并逃避捕食。这一假设通过对野生东方棉尾兔(Sylvilagus floridanus)的肌肉生长进行详细的定量评估进行了检验。棉尾兔在生命的第一年死亡率很高,这表明选择可能会促进生长中的幼体的表现。因此,人们预测与力量和功率能力相关的肌肉特性应该在幼年兔子中得到增强,以促进更好的运动表现。我们从 29 只兔子的样本中量化了 24 个脊柱旁和后肢肌肉的肌肉结构,在发育过程中评估了肌肉质量(MM)、生理横截面积(PCSA)、等长力(F)和瞬时功率(P)的体质量标度,以及几个无量纲的结构指数。与我们的假设相反,在生长过程中,大多数肌肉的 MM 和 PCSA 以正异速生长的方式变化,分别以 和 标度,而 F 和 P 通常与等距标度无法区分,所测试的结构指数也是如此。然而,标度模式表明,幼年 S. floridanus 的指屈肌和踝关节伸肌分别具有更大的力量和功率能力,这表明这些肌肉特性可能是促进幼兔加速性能增强的几个补偿特征的一部分。总的来说,我们的研究表明,体型限制使较大、更成熟的兔子在加速时处于劣势,而成年人必须使肌肉肥大,以在整个发育过程中保持力和功率能力的机械相似性。这些发现挑战了人们普遍认为的幼小动物相对于成年动物在表现上处于劣势的观点。相反,对于需要相对于体质量产生短时间高力量和功率的猎物-捕食者相互作用,如棉尾兔逃离捕食者时的快速加速所示,可能是成年人难以跟上幼体的步伐。