首页> 美国卫生研究院文献>Journal of Experimental Botany >Quantitative and qualitative changes in primary and secondary stem organization of Aristolochia macrophylla during ontogeny: functional growth analysis and experiments
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Quantitative and qualitative changes in primary and secondary stem organization of Aristolochia macrophylla during ontogeny: functional growth analysis and experiments

机译:大叶马兜铃发育过程中初级和次级茎组织的数量和质量变化:功能性生长分析和实验

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摘要

The anatomy of young and old stems of Aristolochia macrophylla has been investigated for a better understanding of how secondary growth processes cause changes in the stem anatomy of a lianescent plant. In A. macrophylla, following an increase in volume of secondary vascular tissues, the cortical tissues are deformed and the outer sclerenchymatous cylinder ruptures. Morphometric measurements prove that the inner zone of the cortical parenchymatous tissue is compressed prior to the rupture of the outer sclerenchymatous cylinder. After the rupture has occurred, the radial width of the inner primary cortex slightly increases again. This could be caused by strain relaxation, suggesting that the inner primary cortex mechanically behaves similarly to cellular technical foam rubbers. Two different experiments were undertaken to test the outer cortical cylinders mechanically. The outer cortical cylinders comprise the outer sclerenchymatous cortical tissue and a collenchymatous sheath underneath the epidermis and the epidermis. In a first experiment, transverse compression loads were applied to the outside of the cortical cylinders causing ovalization of the cylinder until failure. This experiment allowed the Young's Modulus of the outer cortical cylinders to be determined. In a second set of experiments, radial hydraulic pressure was applied to the inside of the cortical cylinders, mimicking the mechanical effects of internal growth processes. The increase of the internal pressure finally led to rupture of the cortical cylinders. The circumferential stresses acting on the inner surface of the cortical cylinders were calculated. These data allow quantitative estimates of the radial and circumferential pressures effected by vascular secondary growth processes during ontogeny in A. macrophylla stems. The experimental results further indicate that the outer sclerenchymatous cylinder is the main contributor to mechanical stability of young A. macrophylla stems.
机译:已经对大叶马兜铃的年轻和老茎的解剖结构进行了研究,以更好地了解次级生长过程如何引起变色植物茎解剖结构的变化。在大叶农杆菌中,继发性次生血管组织的体积增加后,皮层组织变形,外巩膜外圆柱体破裂。形态计量学测量证明,在外硬膜外圆筒破裂之前,皮质薄壁组织的内部区域被压缩。破裂发生后,内部初级皮质的径向宽度再次略微增加。这可能是由于应变松弛引起的,这表明内部初级皮质的机械行为与多孔工业泡沫橡胶相似。进行了两个不同的实验,以机械方式测试外部皮质圆柱体。外部皮质圆柱体包括外部硬皮层皮质组织和在表皮和表皮下方的粘膜鞘。在第一个实验中,将横向压缩载荷施加到皮质圆柱体的外部,导致圆柱体椭圆化,直到失效。该实验允许确定外部皮质圆柱的杨氏模量。在第二组实验中,将径向液压施加到了皮质圆柱体的内部,模仿了内部生长过程的机械效应。内部压力的增加最终导致皮质圆柱体破裂。计算作用在皮质圆柱体内表面上的圆周应力。这些数据允许定量估计在大叶农杆菌茎发育期间由血管次级生长过程影响的径向和圆周压力。实验结果进一步表明,外巩膜圆柱体是大叶茶树幼茎机械稳定性的主要贡献者。

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