The Key Laboratory of Biomedical Information Engineering of Ministry of Education, School of Life Science and Technology, Xi'an Jiaotong University, Xi'an 710049, PR China.
Med Eng Phys. 2012 Oct;34(8):1149-56. doi: 10.1016/j.medengphy.2011.12.003. Epub 2012 Jan 9.
Thermal therapies under supra-physiological temperatures are increasingly used to treat skin diseases (e.g., superficial melanoma, removal of port-wine stains pigmented and cutaneous lesions). The efficacy of these therapies depends on the thermal and mechanical loadings that skin experiences during the treatment process. Therefore, it is of great significance to better understand the role of thermally induced changes in skin mechanical behavior and microstructure. In this study, rabbit belly skin was thermally damaged by immersing skin samples into saline solutions with controlled temperatures. We investigated the effect of thermal damage on skin mechanical behavior. We quantified the changes in skin microstructure (i.e., fiber, fibril) using histological staining and transmission electron microscopy (TEM). The results indicate that (i) the elastic modulus of skin, obtained by the uniaxial tensile test, decreased with increasing heating temperature; (ii) the skin tensile behavior was correlated with its microstructure changes induced by thermal denaturation of collagen fibers under supra-physiological temperatures; (iii) skin thermal damage predicted using the Arrhenius burn integration quantitatively agrees well with the evolution of the microstructure (i.e., percentage of the collagen area in Hematoxylin and Eosin (H&E) staining results). This study provides a better understanding of the coupled bio-thermo-mechanical behavior of skin tissue that could help to improve clinical thermal therapies.
在超生理温度下进行的热疗越来越多地被用于治疗皮肤病(例如,浅层黑色素瘤、去除葡萄酒色斑和皮肤病变)。这些疗法的疗效取决于皮肤在治疗过程中经历的热和机械负荷。因此,更好地了解皮肤力学行为和微观结构受热诱导变化的作用具有重要意义。在这项研究中,通过将皮肤样本浸入控制温度的盐溶液中来对兔腹皮进行热损伤。我们研究了热损伤对皮肤力学行为的影响。我们使用组织学染色和透射电子显微镜(TEM)量化了皮肤微观结构(即纤维、原纤维)的变化。结果表明:(i)通过单轴拉伸试验获得的皮肤弹性模量随加热温度的升高而降低;(ii)皮肤的拉伸行为与其在超生理温度下胶原纤维热变性引起的微观结构变化有关;(iii)使用阿仑尼乌斯烧伤积分预测的皮肤热损伤与微观结构的演变(即苏木精和曙红(H&E)染色结果中胶原面积的百分比)定量吻合良好。这项研究提供了对皮肤组织的生物热力学行为的更好理解,这有助于改进临床热疗。