Institute of Robotics and Intelligent Systems, ETH Zurich, Tannenstrasse 3, CH-8092 Zurich, Switzerland.
Computational Physics for Engineering Materials, Institute for Building Materials, ETH Zurich, Stefano-Franscini-Platz 3, CH-8093 Zurich, Switzerland.
Lab Chip. 2016 Dec 20;17(1):82-90. doi: 10.1039/c6lc01145d.
Quantification of mechanical properties of tissues, living cells, and cellular components is crucial for the modeling of plant developmental processes such as mechanotransduction. Pollen tubes are tip-growing cells that provide an ideal system to study the mechanical properties at the single cell level. In this article, a lab-on-a-chip (LOC) device is developed to quantitatively measure the biomechanical properties of lily (Lilium longiflorum) pollen tubes. A single pollen tube is fixed inside the microfluidic chip at a specific orientation and subjected to compression by a soft membrane. By comparing the deformation of the pollen tube at a given external load (compressibility) and the effect of turgor pressure on the tube diameter (stretch ratio) with finite element modeling, its mechanical properties are determined. The turgor pressure and wall stiffness of the pollen tubes are found to decrease considerably with increasing initial diameter of the pollen tubes. This observation supports the hypothesis that tip-growth is regulated by a delicate balance between turgor pressure and wall stiffness. The LOC device is modular and adaptable to a variety of cells that exhibit tip-growth, allowing for the straightforward measurement of mechanical properties.
定量分析组织、活细胞和细胞成分的力学性质对于模拟植物发育过程(如力学转导)至关重要。花粉管是顶端生长的细胞,为研究单细胞水平的力学性质提供了理想的系统。本文开发了一种片上实验室(LOC)装置,用于定量测量百合(Lilium longiflorum)花粉管的生物力学特性。将单个花粉管以特定方向固定在微流控芯片内,并通过软膜对其进行压缩。通过比较花粉管在给定外部载荷下的变形(可压缩性)和膨压对管直径的影响(拉伸比)与有限元建模,可以确定其力学性质。发现花粉管的膨压和壁刚度随花粉管初始直径的增加而显著降低。这一观察结果支持了这样一种假设,即顶端生长是由膨压和壁刚度之间的微妙平衡来调节的。LOC 装置具有模块化和适应性,可以用于各种表现出顶端生长的细胞,从而可以方便地测量其力学性质。