Department of Agricultural and Biological Engineering, 235 Agricultural Engineering Building, Penn State University, University Park, PA 16802, USA.
Am J Bot. 2013 Jun;100(6):1105-15. doi: 10.3732/ajb.1200649. Epub 2013 May 29.
The results of published studies investigating the tissue-scale mechanical properties of plant cell walls are confounded by the unknown contributions of the middle lamella and the shape and size of each cell. However, due to their microscale size, cell walls have not yet been characterized at the wall fragment level under tensile loading. It is imperative to understand the stress-strain behavior of cell wall fragments to relate the wall's mechanical properties to its architecture. •
This study reports a novel method used to characterize wall fragments under tensile loading. Cell wall fragments from onion outer epidermal peels were cut to the desired size (15 × 5 µm) using the focused ion beam milling technique, and these fragments were manipulated onto a microelectromechanical system (MEMS) tensile testing device. The stress-strain behavior of the wall fragments both in the major and minor growth directions were characterized in vacuo. •
The measured mean modulus, fracture strength, and fracture strain in the major growth direction were 3.7 ± 0.8 GPa, 95.5 ± 24.1 MPa, and 3.0 ± 0.5%, respectively. The corresponding properties along the minor growth direction were 4.9 ± 1.2 GPa, 159 ± 48.4 MPa, and 3.8 ± 0.5%, respectively. •
The fracture strength and fracture strain were significantly different along the major and minor growth directions, the wall fragment level modulus of elasticity anisotropy for a dehydrated cell wall was 1.23, suggesting a limited anisotropy of the cell wall itself compared with tissue-scale results.
已发表的研究结果表明,植物细胞壁的组织尺度力学性能受到中层和每个细胞的形状和大小的未知影响。然而,由于细胞壁的微观尺寸,在拉伸载荷下,细胞壁碎片尚未在细胞壁碎片水平上进行特征描述。了解细胞壁碎片的应力-应变行为对于将细胞壁的力学性能与其结构联系起来是至关重要的。
本研究报告了一种用于在拉伸载荷下对细胞壁碎片进行特征描述的新方法。使用聚焦离子束铣削技术将洋葱外皮表皮的细胞壁碎片切割成所需的尺寸(15×5 µm),并将这些碎片操纵到微机电系统(MEMS)拉伸测试装置上。在真空中对细胞壁碎片在主要和次要生长方向上的应力-应变行为进行了特征描述。
在主要生长方向上测量的平均模量、断裂强度和断裂应变分别为 3.7±0.8 GPa、95.5±24.1 MPa 和 3.0±0.5%,而在次要生长方向上的相应性能分别为 4.9±1.2 GPa、159±48.4 MPa 和 3.8±0.5%。
在主要和次要生长方向上,断裂强度和断裂应变有显著差异,脱水细胞壁的弹性各向异性壁片段模量为 1.23,这表明与组织尺度的结果相比,细胞壁本身的各向异性有限。