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J Mater Sci Mater Med. 2008 Apr;19(4):1601-8. doi: 10.1007/s10856-008-3377-6. Epub 2008 Jan 24.
2
Cell mechanics: integrating cell responses to mechanical stimuli.细胞力学:整合细胞对机械刺激的反应
Annu Rev Biomed Eng. 2007;9:1-34. doi: 10.1146/annurev.bioeng.9.060906.151927.
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Viscoelasticity of hyaluronan and nonhyaluronan based vocal fold injectables: implications for mucosal versus muscle use.基于透明质酸和非透明质酸的声带注射剂的粘弹性:对粘膜与肌肉使用的影响。
Laryngoscope. 2007 Mar;117(3):516-21. doi: 10.1097/MLG.0b013e31802e9291.
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Matrix elasticity directs stem cell lineage specification.基质弹性引导干细胞谱系定向分化。
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Banding in entangled polymer fluids under oscillatory shearing.振荡剪切下缠结聚合物流体中的条带化现象
Phys Rev Lett. 2006 May 19;96(19):196001. doi: 10.1103/PhysRevLett.96.196001. Epub 2006 May 16.
6
Bone cell responses to high-frequency vibration stress: does the nucleus oscillate within the cytoplasm?骨细胞对高频振动应力的反应:细胞核是否在细胞质内振荡?
FASEB J. 2006 May;20(7):858-64. doi: 10.1096/fj.05-4966.com.
7
Dependence of phonation threshold pressure on vocal tract acoustics and vocal fold tissue mechanics.发声阈压力对声道声学和声带组织力学的依赖性。
J Acoust Soc Am. 2006 Apr;119(4):2351-62. doi: 10.1121/1.2173516.
8
Cellular adaptation to mechanical stress: role of integrins, Rho, cytoskeletal tension and mechanosensitive ion channels.细胞对机械应力的适应性:整合素、Rho、细胞骨架张力和机械敏感离子通道的作用
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9
Cardiovascular tissue engineering: state of the art.心血管组织工程:当前技术水平
Pathol Biol (Paris). 2005 Dec;53(10):599-612. doi: 10.1016/j.patbio.2004.12.006. Epub 2005 Jan 25.
10
Tissue cells feel and respond to the stiffness of their substrate.组织细胞能感知其基质的硬度并做出反应。
Science. 2005 Nov 18;310(5751):1139-43. doi: 10.1126/science.1116995.

在流变仪中进行细胞活力粘弹性测量,该流变仪用于在低声频下对组织施加应力并进行组织工程构建。

Cell viability viscoelastic measurement in a rheometer used to stress and engineer tissues at low sonic frequencies.

作者信息

Klemuk Sarah A, Jaiswal Sanyukta, Titze Ingo R

机构信息

National Center for Voice and Speech at the Department of Communication Sciences and Disorders, The University of Iowa, Iowa City, Iowa 52242, USA.

出版信息

J Acoust Soc Am. 2008 Oct;124(4):2330-9. doi: 10.1121/1.2973183.

DOI:10.1121/1.2973183
PMID:19062871
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC2677341/
Abstract

Effects of vibration on human vocal fold extracellular matrix composition and the resultant tissue viscoelastic properties are difficult to study in vivo. Therefore, an in vitro bioreactor, simulating the in vivo physiological environment, was explored. A stress-controlled commercial rheometer was used to administer shear vibrations to living tissues at stresses and frequencies corresponding to male phonation, while simultaneously measuring tissue viscoelastic properties. Tissue environment was evaluated and adjustments made in order to sustain cell life for short term experimentation up to 6 h. Cell nutrient medium evaporation, osmolality, pH, and cell viability of cells cultured in three-dimensional synthetic scaffolds were quantified under comparably challenging environments to the rheometer bioreactor for 4 or 6 h. The functionality of the rheometer bioreactor was demonstrated by applying three vibration regimes to cell-seeded three-dimensional substrates for 2 h. Resulting strain was quantified throughout the test period. Rheologic data and cell viability are reported for each condition, and future improvements are discussed.

摘要

振动对人声带细胞外基质组成及由此产生的组织粘弹性的影响在体内很难研究。因此,人们探索了一种模拟体内生理环境的体外生物反应器。使用一台应力控制的商用流变仪,在与男性发声相对应的应力和频率下对活组织施加剪切振动,同时测量组织的粘弹性。评估组织环境并进行调整,以维持细胞生命进行长达6小时的短期实验。在与流变仪生物反应器相当具有挑战性的环境下,对在三维合成支架中培养的细胞的细胞营养培养基蒸发、渗透压、pH值和细胞活力进行了4或6小时的量化。通过对接种细胞的三维基质施加三种振动模式2小时,证明了流变仪生物反应器的功能。在整个测试期间对产生的应变进行了量化。报告了每种条件下的流变学数据和细胞活力,并讨论了未来的改进方向。