Jenkins M S, Wong K C Y, Chhit O, Bertram J F, Young R J, Subaschandar N
Department of Chemical Engineering, Monash University, Clayton, Melbourne, Australia.
Biotechnol Bioeng. 2004 Nov 5;88(3):392-8. doi: 10.1002/bit.20253.
Fluid shear and other mechanical forces play an important role in the normal biophysical, biochemical, and gene regulatory responses of vertebrate tissue that are reflected in the expression of normal cell differentiation, growth, and function. Despite some promising work reported on the application of the quartz crystal microbalance (QCM) to both prokaryote and eukaryote cells over the last decade, QCM has yet to be successfully applied to cells in culture under conditions of flow-induced shear. In this study, high sensitivity QCM in conjunction with fluid modelling was used to monitor the onset of senescence in immortalised human embryonic kidney cells under laminar shear stresses of between 0.04 and 335 dyne/cm(2). The feasibility of this approach as a means of quantification and characterisation of cell physiological response and adhesion are explored and discussed.
流体剪切力和其他机械力在脊椎动物组织的正常生物物理、生化及基因调控反应中发挥着重要作用,这些反应体现在正常细胞分化、生长和功能的表达上。尽管在过去十年间有一些关于将石英晶体微天平(QCM)应用于原核细胞和真核细胞的研究成果令人期待,但QCM尚未成功应用于在流动诱导剪切条件下培养的细胞。在本研究中,高灵敏度QCM结合流体建模,用于监测永生化人胚肾细胞在0.04至335达因/平方厘米的层流剪切应力下衰老的起始情况。探讨并讨论了这种方法作为量化和表征细胞生理反应及黏附的手段的可行性。