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Towards local electromechanical probing of cellular and biomolecular systems in a liquid environment

机译:在液体环境中对细胞和生物分子系统进行局部机电探测

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摘要

Electromechanical coupling is ubiquitous in biological systems, with examples ranging from simple piezoelectricity in calcified and connective tissues to voltage-gated ion channels, energy storage in mitochondria, and electromechanical activity in cardiac myocytes and outer hair cell stereocilia. Piezoresponse force microscopy (PFM) originally emerged as a technique to study electromechanical phenomena in ferroelectric materials, and in recent years has been employed to study a broad range of non-ferroelectric polar materials, including piezoelectric biomaterials. At the same time, the technique has been extended from ambient to liquid imaging on model ferroelectric systems. Here, we present results on local electromechanical probing of several model cellular and biomolecular systems, including insulin and lysozyme amyloid fibrils, breast adenocarcinoma cells, and bacteriorhodopsin in a liquid environment. The specific features of PFM operation in liquid are delineated and bottlenecks on the route towards nanometre-resolution electromechanical imaging of biological systems are identified.
机译:机电耦合在生物系统中无处不在,其示例范围包括钙化和结缔组织中的简单压电性,电压门控离子通道,线粒体中的能量存储以及心肌细胞和外毛细胞立体神经中的机电活性。压电响应力显微镜(PFM)最初是作为一种研究铁电材料中的机电现象的技术而出现的,近年来,它已被用于研究各种非铁电极性材料,包括压电生物材料。同时,该技术已从模型铁电系统的环境成像扩展到了液体成像。在这里,我们介绍了在液体环境中几种模型细胞和生物分子系统(包括胰岛素和溶菌酶淀粉样原纤维,乳腺腺癌细胞和细菌视紫红质)的局部机电探测结果。描绘了液体中PFM操作的具体特征,并确定了生物系统纳米分辨率机电成像过程中的瓶颈。

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