首页> 外文会议>Bioengineering Conference (NEBEC), 2012 38th Annual Northeast >Micro-scale strain transfer in fiber-reinforced native tissues and cell-seeded aligned nanofibrous scaffolds
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Micro-scale strain transfer in fiber-reinforced native tissues and cell-seeded aligned nanofibrous scaffolds

机译:纤维增强的天然组织和细胞接种的纳米纤维支架中的微观应变转移

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Mechanical signals are essential in regulating cell functions such as viability, differentiation, proliferation, and extracellular matrix (ECM) production in load-bearing tissues. However, the current understanding of how macroscopic tissue level strain is transferred to cells is confounded by the highly variable strain fields that arise within the ECM of both native and cell-seeded nanofibrous scaffolds. Moreover, it is unclear how these transmission mechanisms relate to native load bearing tissues. The current study investigates how applied macroscopic tensile strain is transferred to the intercellular ECM and cell nuclei in meniscus, tendon, single lamellar AF, and MSC-seeded scaffolds. The mean microscopic Lagrangian and principal strains in the loading direction (E22 and e2) of all native tissues and scaffolds were attenuated from the applied strains by 50% and 30–40% respectively. In aligned scaffold, a significant correlation was observed between the mean nuclear strain and E22 (r2=0.98), where 100% of E22 transferred to nuclei. Less pronounced strain attenuation in scaffolds compared to native tissues is likely due to more homogeneous microstructure and lack of ECM. In addition, the presence of pericellular matrix in native tissues, along with dense ECM, may shield and regulate strain transfer from the ECM to the subcellular space.
机译:机械信号对于调节承重组织中的细胞功能(例如生存力,分化,增殖和细胞外基质(ECM)产生)至关重要。然而,当前对宏观组织水平应变如何转移到细胞的理解被天然和细胞接种的纳米纤维支架的ECM内出现的高度可变的应变场所混淆。此外,还不清楚这些传递机制如何与天然的负荷组织相关。目前的研究调查了如何将施加的宏观拉伸应变转移到半月板,肌腱,单层房颤和MSC种植支架中的细胞间ECM和细胞核。所有天然组织和支架在加载方向(E22和e2)上的平均显微拉格朗日和主要菌株分别从施加的菌株中衰减了50%和30–40%。在对齐的支架中,观察到平均核应变与E22之间存在显着相关性(r 2 = 0.98),其中E22的100%转移到核中。与天然组织相比,支架中的应变衰减不太明显,这可能是由于更均匀的微观结构和缺少ECM所致。另外,天然组织中细胞周围基质的存在以及致密的ECM可能会屏蔽和调节从ECM到亚细胞空间的菌株转移。

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