材料科学
压电
去极化
光电子学
电压
纳米技术
生物物理学
复合材料
电气工程
生物
工程类
作者
Thanh D. Nguyen,Nikhil Deshmukh,John M. Nagarah,Tal Kramer,Prashant Purohit,Michael Berry,Michael C. McAlpine
标识
DOI:10.1038/nnano.2012.112
摘要
Methods for probing mechanical responses of mammalian cells
to electrical excitations can improve our understanding of cellular
physiology and function. The electrical response of neuronal
cells to applied voltages has been studied in detail, but
less is known about their mechanical response to electrical
excitations. Studies using atomic force microscopes (AFMs)
have shown that mammalian cells exhibit voltage-induced
mechanical deflections at nanometre scales, but AFM
measurements can be invasive and difficult to multiplex. Here
we show that mechanical deformations of neuronal cells in
response to electrical excitations can be measured using piezoelectric
PbZr_xTi_(1-x)O_3 (PZT) nanoribbons, and we find that cells
deflect by 1 nm when 120 mV is applied to the cell membrane.
The measured cellular forces agree with a theoretical model in
which depolarization caused by an applied voltage induces a
change in membrane tension, which results in the cell altering
its radius so that the pressure remains constant across the
membrane. We also transfer arrays of PZT nanoribbons
onto a silicone elastomer and measure mechanical deformations
on a cow lung that mimics respiration. The PZT
nanoribbons offer a minimally invasive and scalable platform
for electromechanical biosensing.
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