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首页> 外文期刊>The Journal of Experimental Biology >Symmorphosis and the insect respiratory system: allometric variation
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Symmorphosis and the insect respiratory system: allometric variation

机译:变形与昆虫呼吸系统:异速变异

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Taylor and Weibel's theory of symmorphosis predicts that structures of the respiratory system are matched to maximum functional requirements with minimal excess capacity. We tested this hypothesis in the respiratory system of the migratory locust, Locusta migratoria, by comparing the aerobic capacity of the jumping muscles with the morphology of the oxygen cascade in the hopping legs using an intraspecific allometric analysis of different body mass (M-b) at selected juvenile life stages. The maximum oxygen consumption rate of the hopping muscle during jumping exercise scales as M-b(1.02 +/- 0.02), which parallels the scaling of mitochondrial volume in the hopping muscle, M-b(1.02 +/- 0.08), and the total surface area of inner mitochondrial membrane, M-b(0.99 +/- 0.10). Likewise, at the oxygen supply end of the insect respiratory system, there is congruence between the aerobic capacity of the hopping muscle and the total volume of tracheoles in the hopping muscle, M-b(0.99 +/- 0.16), the total inner surface area of the tracheoles, M-b(0.99 +/- 0.16), and the anatomical radial diffusing capacity of the tracheoles, M-b(0.99 +/- 0.18). Therefore, the principles of symmorphosis are upheld at each step of the oxygen cascade in the respiratory system of the migratory locust.
机译:泰勒(Taylor)和韦贝尔(Weibel)的同态性理论预测,呼吸系统的结构可以以最大的功能需求与最小的过剩容量匹配。我们通过选择不同体重(Mb)的种内同种异体分析,通过比较跳跃肌肉的有氧能力和跳跃腿中的氧气级联形态,在游蝗蝗的呼吸系统中测试了这一假设青少年生活阶段。跳跃运动过程中跳跃肌肉的最大耗氧率定为Mb(1.02 +/- 0.02),与跳跃肌中线粒体体积的定标Mb(1.02 +/- 0.08)和总表面积成正比。线粒体内膜Mb(0.99 +/- 0.10)。同样,在昆虫呼吸系统的氧气供应端,跳动肌肉的有氧能力与跳动肌肉中气管的总体积Mb(0.99 +/- 0.16),气管Mb(0.99 +/- 0.16)和气管的解剖学径向扩散能力Mb(0.99 +/- 0.18)。因此,在蝗虫的呼吸系统中,在氧气级联的每个步骤中都应遵循同构原理。

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