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胶原模拟肽组装体中压电性的分子工程。

Molecular engineering of piezoelectricity in collagen-mimicking peptide assemblies.

机构信息

George S. Wise Faculty of Life Sciences, Shmunis School of Biomedicine and Cancer Research, Tel Aviv University, Ramat Aviv, Israel.

Department of Physics, Bernal Institute, University of Limerick, Limerick, Ireland.

出版信息

Nat Commun. 2021 May 11;12(1):2634. doi: 10.1038/s41467-021-22895-6.

Abstract

Realization of a self-assembled, nontoxic and eco-friendly piezoelectric device with high-performance, sensitivity and reliability is highly desirable to complement conventional inorganic and polymer based materials. Hierarchically organized natural materials such as collagen have long been posited to exhibit electromechanical properties that could potentially be amplified via molecular engineering to produce technologically relevant piezoelectricity. Here, by using a simple, minimalistic, building block of collagen, we fabricate a peptide-based piezoelectric generator utilising a radically different helical arrangement of Phe-Phe-derived peptide, Pro-Phe-Phe and Hyp-Phe-Phe, based only on proteinogenic amino acids. The simple addition of a hydroxyl group increases the expected piezoelectric response by an order of magnitude (d = 27 pm V). The value is highest predicted to date in short natural peptides. We demonstrate tripeptide-based power generator that produces stable max current >50 nA and potential >1.2 V. Our results provide a promising device demonstration of computationally-guided molecular engineering of piezoelectricity in peptide nanotechnology.

摘要

实现具有高性能、高灵敏度和高可靠性的自组装、无毒和环保的压电设备,是对传统无机和聚合物材料的补充,这是非常可取的。长期以来,胶原等层次化组织的天然材料被认为具有机电性能,通过分子工程进行放大后可能产生与技术相关的压电性能。在这里,我们使用胶原的一种简单的最小构建块,利用基于蛋白质的氨基酸的衍生肽、Pro-Phe-Phe 和 Hyp-Phe-Phe 的完全不同的螺旋排列,来制造基于肽的压电发电机。仅通过添加一个羟基,就将预期的压电响应提高了一个数量级(d=27 pm V)。这是迄今为止在短天然肽中预测到的最高值。我们展示了基于三肽的功率发生器,可产生稳定的最大电流>50 nA 和>1.2 V 的电压。我们的结果为基于计算指导的肽纳米技术中的压电分子工程提供了有前景的器件演示。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f063/8113556/1aff6ff25670/41467_2021_22895_Fig1_HTML.jpg

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