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通过压电力显微镜对I型胶原纤维中的压电异质性进行定量表征。

Piezoelectric Heterogeneity in Collagen Type I Fibrils Quantitatively Characterized by Piezoresponse Force Microscopy.

作者信息

Kwon Jinha, Cho Hanna

机构信息

Mechanical and Aerospace Engineering, The Ohio State University, 201 W 19th Avenue, Columbus, Ohio 43210, United States.

出版信息

ACS Biomater Sci Eng. 2020 Dec 14;6(12):6680-6689. doi: 10.1021/acsbiomaterials.0c01314. Epub 2020 Nov 10.

Abstract

Piezoelectricity of Type I collagen can provide the stress-generated potential that is considered to be one of the candidate mechanisms to explain bone's adaptation to loading. However, it is still challenging to quantify piezoelectricity because of its heterogeneity and small magnitude. In this study, resonance-enhanced piezoresponse force microscopy (PFM) was utilized to amplify a weak piezoresponse of a single collagen fibril with a carefully calibrated cantilever. The quantitative PFM, combined with a dual-frequency resonance-tracking method, successfully identified the anisotropic and heterogenous nature of the piezoelectric properties in the collagen fibril. The profile of shear piezoelectric coefficient () was obtained to be periodic along the collagen fibril, with a larger value in the gap zone (0.51 pm/V) compared to the value in the overlap zone (0.29 pm/V). Interestingly, this piezoelectric profile corresponds to the periodic profile of mechanical stiffness in a mineralized collagen fibril having a higher stiffness in the gap zone. Considering that apatite crystals are nucleated at the gap zone and subsequently grown along the collagen fibril, the heterogeneous and anisotropic nature of piezoelectric properties highlights the physiological importance of the collagen piezoelectricity in bone mineralization.

摘要

I型胶原蛋白的压电性能够提供应力产生的电位,这被认为是解释骨骼对负荷适应性的候选机制之一。然而,由于其异质性和微小的量级,量化压电性仍然具有挑战性。在本研究中,利用共振增强压电响应力显微镜(PFM),通过精心校准的悬臂来放大单个胶原纤维的微弱压电响应。定量PFM结合双频共振跟踪方法,成功识别了胶原纤维中压电特性的各向异性和异质性。获得的剪切压电系数()沿胶原纤维呈周期性分布,间隙区的值(0.51 pm/V)比重叠区的值(0.29 pm/V)更大。有趣的是,这种压电分布与矿化胶原纤维中机械刚度的周期性分布相对应,间隙区具有更高的刚度。考虑到磷灰石晶体在间隙区成核并随后沿胶原纤维生长,压电特性的异质性和各向异性突出了胶原压电性在骨矿化中的生理重要性。

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