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背甲蜥(Dipsosaurus dorsalis)骨骼肌收缩特性的个体发生与短跑表现

Ontogenesis of contractile properties of skeletal muscle and sprint performance in the lizard Dipsosaurus dorsalis.

作者信息

Marsh R L

机构信息

Department of Biology, Northeastern University, Boston, MA 02115.

出版信息

J Exp Biol. 1988 Jul;137:119-39. doi: 10.1242/jeb.137.1.119.

DOI:10.1242/jeb.137.1.119
PMID:3209964
Abstract

Ontogenetic allometries of running performance in 3- to 4-m burst runs (sprints) and of the contractile properties of the fast-twitch, glycolytic region of the iliofibularis muscle (FG-IF) were measured in Dipsosaurus dorsalis. This iguanid lizard hatches at a body mass of about 4 g and reaches adult masses of 40-70 g. Running velocity was little influenced by changes in body mass during development. Stride frequency (f) declines ontogenetically and was proportional to body mass (Mb) to approximately the -0.2 power (determined by regression analysis). Stride length (Ls) appeared to be related to the allometry of hindlimb length (LHL); both Ls and LHL were proportional to about Mb0.28. Intrinsic shortening velocity of the FG-IF decreased only slightly with increasing body mass, and was consequently not proportional to f as has been assumed by various models of running dynamics. In contrast, twitch time lengthened markedly with increasing body mass, and the ratio of twitch time to stride time remained approximately constant. These results suggest that the intrinsic velocity of the muscles does not directly or solely determine maximal f, but instead limb kinematics are determined in part by other biomechanical constraints related to body dimensions. Further, the allometry of twitch kinetics supports the idea that the properties of the muscles are adjusted to allow ample time for full activation and deactivation within the biomechanically determined stride time.

摘要

在沙漠鬣蜥中测量了3至4米冲刺跑(短跑)的个体发育异速生长以及髂腓肌快速收缩、糖酵解区域(FG - IF)的收缩特性。这种鬣蜥幼体孵化时体重约为4克,成年体重可达40至70克。发育过程中,跑步速度受体重变化的影响很小。步频(f)在个体发育过程中下降,并且与体重(Mb)大致呈-0.2次幂比例关系(通过回归分析确定)。步长(Ls)似乎与后肢长度(LHL)的异速生长有关;Ls和LHL都与约Mb0.28成比例。FG - IF的固有缩短速度仅随体重增加略有下降,因此并不像各种跑步动力学模型所假设的那样与f成比例。相反,抽搐时间随体重增加显著延长,并且抽搐时间与步幅时间的比值大致保持恒定。这些结果表明,肌肉的固有速度并不直接或单独决定最大步频,而是肢体运动学部分由与身体尺寸相关的其他生物力学限制所决定。此外,抽搐动力学的异速生长支持了这样一种观点,即肌肉特性会进行调整,以便在生物力学确定的步幅时间内有足够的时间进行充分激活和失活。

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