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首页> 外文期刊>The Journal of Experimental Biology >Scaling of left ventricle cardiomyocyte ultrastructure across development in the kangaroo Macropus fuliginosus
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Scaling of left ventricle cardiomyocyte ultrastructure across development in the kangaroo Macropus fuliginosus

机译:袋鼠Macropus fuliginosus发育过程中左心室心肌细胞超微结构的缩放

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The heart and left ventricle of the marsupial western grey kangaroo Macropus fuliginosus exhibit biphasic allometric growth, whereby a negative shift in the trajectory of cardiac growth occurs at pouch exit. In this study, we used transmission electron microscopy to examine the scaling of left ventricle cardiomyocyte ultrastructure across development in the western grey kangaroo over a 190-fold body mass range (0.355-67.5 kg). The volume-density (%) of myofibrils, mitochondria, sarcoplasmic reticuli and T-tubules increase significantly during in-pouch growth, such that the absolute volume (ml) of these organelles scales with body mass (M-b; kg) with steep hyperallometry: 1.41M(b)(1.38), 0.64M(b)(1.29), 0.066M(b)(1.45) and 0.035M(b)(1.87), respectively. Maturation of the left ventricle ultrastructure coincides with pouch vacation, as organelle volume-densities scale independent of body mass across post-pouch development, such that absolute organelle volumes scale in parallel and with relatively shallow hypoallometry: 4.65M(b)(0.79), 1.75M(b)(0.77), 0.21M(b)(0.79) and 0.35M(b)(0.79), respectively. The steep hyperallometry of organelle volumes and volume-densities across in-pouch growth is consistent with the improved contractile performance of isolated cardiac muscle during fetal development in placental mammals, and is probably critical in augmenting cardiac output to levels necessary for endothermy and independent locomotion in the young kangaroo as it prepares for pouch exit. The shallow hypoallometry of organelle volumes during post-pouch growth suggests a decrease in relative cardiac requirements as body mass increases in free-roaming kangaroos, which is possibly because the energy required for hopping is independent of speed, and the capacity for energy storage during hopping could increase as the kangaroo grows.
机译:有袋动物西部灰色袋鼠Macropus fuliginosus的心脏和左心室表现出两相异速生长,从而在袋出口处出现心脏生长轨迹的负向移动。在这项研究中,我们使用透射电子显微镜检查了在190倍体重范围(0.355-67.5千克)内西部灰色袋鼠整个发育过程中左心室心肌细胞超微结构的比例。袋内生长过程中,肌原纤维,线粒体,肌浆网和T管的体积密度(%)显着增加,因此这些细胞器的绝对体积(ml)随体重(Mb; kg)的升高而急剧变高:分别为1.41M(b)(1.38),0.64M(b)(1.29),0.066M(b)(1.45)和0.035M(b)(1.87)。左心室超微结构的成熟与小袋休假相符,因为在小袋后发育过程中,细胞器的体积密度与体重无关,因此,绝对的细胞器体积成比例地增加,并且相对较薄的低变幅:4.65M(b)(0.79), 1.75M(b)(0.77),0.21M(b)(0.79)和0.35M(b)(0.79)。囊内生长过程中细胞器体积和体积密度的陡峭高度变态反应与胎盘哺乳动物胎儿发育过程中离体心肌的收缩性能改善相一致,并且可能对于将心输出量增加至吸热和独立运动所需的水平至关重要这只年轻的袋鼠准备袋出口。袋装后生长过程中细胞器体积的浅透性低变态表明,随着自由漫游袋鼠体重的增加,相对心脏需求减少,这可能是因为跳跃所需的能量与速度以及跳跃过程中的能量存储能力无关可能会随着袋鼠的成长而增加。

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