Yuan Yonghui, Verma Ritu
Unilever Research and Development, US, Edgewater, NJ 07020, USA.
Colloids Surf B Biointerfaces. 2006 Mar 1;48(1):6-12. doi: 10.1016/j.colsurfb.2005.12.013. Epub 2006 Feb 3.
We explore the compression moduli of a thin biological tissue through probe microscopy. The elastic modulus (E') of isolated stratum corneum is measured at varying depths through the use of an atomic force microscope (AFM) as well as a nano-indentor (Hysitron Triboscope). In addition, a nano-DMA is used to measure visco-elastic properties. Measurements on dry and hydrated stratum corneum show an order of magnitude difference in E' and the measured tandelta (E''/E') is seen to increase from approximately 0.1 to 0.25. In addition, extensive validation of the experiments is conducted with different indentation probes at different force ranges to reveal the effects of indentor geometry and indentation depth on the measured elastic modulus. The sensitivity of the measurements is tested with applying known treatments to stratum corneum and exploring their effects on biomechanical parameters.
我们通过探针显微镜研究薄生物组织的压缩模量。通过使用原子力显微镜(AFM)以及纳米压痕仪(Hysitron Triboscope),在不同深度测量分离的角质层的弹性模量(E')。此外,使用纳米动态热机械分析仪(nano-DMA)测量粘弹性特性。对干燥和水合角质层的测量表明,E'存在一个数量级的差异,并且测得的损耗角正切(E''/E')从约0.1增加到0.25。此外,在不同力范围内使用不同的压痕探针进行了广泛的实验验证,以揭示压痕器几何形状和压痕深度对测量的弹性模量的影响。通过对角质层施加已知处理并探索其对生物力学参数的影响来测试测量的灵敏度。