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论新生合成弹性蛋白在膀胱壁中的力学作用。

On the mechanical role of de novo synthesized elastin in the urinary bladder wall.

作者信息

Wognum Silvia, Schmidt David E, Sacks Michael S

机构信息

Department of Bioengineering, McGowan Institute, University of Pittsburgh, PA 15219, USA.

出版信息

J Biomech Eng. 2009 Oct;131(10):101018. doi: 10.1115/1.4000182.

Abstract

The urinary bladder wall (UBW), which is composed of smooth muscle, collagen, and elastin, undergoes profound remodeling in response to changes in mechanical loading resulting from various pathologies. In our laboratory, we have observed the production of fibrillar elastin in the extracellular matrix (ECM), which makes the UBW a particularly attractive tissue to investigate smooth muscle tissue remodeling. In the present study, we explored the mechanical role that de novo elastin fibers play in altering UBW ECM mechanical behavior using a structural constitutive modeling approach. The mechanical behavior of the collagen fiber component of the UBW ECM was determined from the biaxial stress-stretch response of normal UBW ECM, based on bimodal fiber recruitment that was motivated by the UBW's unique collagen fiber structure. The resulting fiber ensemble model was then combined with an experimentally derived fiber angular distribution to predict the biaxial mechanical behavior of normal and the elastin-rich UBW ECM to elucidate the underlying mechanisms of elastin production. Results indicated that UBW ECM exhibited a distinct structure with highly coiled collagen fiber bundles and visible elastic fibers in the pathological situation. Elastin-rich UBW ECM had a distinct mechanical behavior with higher compliance, attributable to the indirect effect of elastin fibers contracting the collagen fiber network, resulting in a retracted unloaded reference state of the tissue. In conclusion, our results suggest that the urinary bladder responds to prolonged periods of high strain by increasing its effective compliance through the interaction between collagen and de novo synthesized elastic fibers.

摘要

膀胱壁(UBW)由平滑肌、胶原蛋白和弹性蛋白组成,会因各种病理状况导致的机械负荷变化而发生深刻的重塑。在我们实验室,我们观察到细胞外基质(ECM)中产生了纤维状弹性蛋白,这使得膀胱壁成为研究平滑肌组织重塑的一个特别有吸引力的组织。在本研究中,我们使用结构本构模型方法探索了新生弹性纤维在改变膀胱壁细胞外基质力学行为中所起的力学作用。膀胱壁细胞外基质中胶原纤维成分的力学行为是根据正常膀胱壁细胞外基质的双轴应力-拉伸响应确定的,该响应基于由膀胱壁独特的胶原纤维结构引发的双峰纤维募集。然后将所得的纤维集合模型与实验得出的纤维角度分布相结合,以预测正常和富含弹性蛋白的膀胱壁细胞外基质的双轴力学行为,从而阐明弹性蛋白产生的潜在机制。结果表明,在病理情况下,膀胱壁细胞外基质呈现出独特的结构,胶原纤维束高度盘绕且可见弹性纤维。富含弹性蛋白的膀胱壁细胞外基质具有独特的力学行为,顺应性更高,这归因于弹性纤维收缩胶原纤维网络的间接作用,导致组织处于回缩的无负荷参考状态。总之,我们的结果表明,膀胱通过增加胶原蛋白与新生合成弹性纤维之间的相互作用来提高其有效顺应性,从而对长时间的高应变作出反应。

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