用光镊测量细胞的流变性能。

Q1 Biochemistry, Genetics and Molecular Biology
BMC Biophysics Pub Date : 2016-06-22 eCollection Date: 2016-01-01 DOI:10.1186/s13628-016-0031-4
Yareni A Ayala, Bruno Pontes, Diney S Ether, Luis B Pires, Glauber R Araujo, Susana Frases, Luciana F Romão, Marcos Farina, Vivaldo Moura-Neto, Nathan B Viana, H Moysés Nussenzveig
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引用次数: 63

摘要

背景:细胞的粘弹性特性已经通过各种技术进行了研究。然而,文献中报道的粘弹性模量的实验数据差异高达三个数量级。这归因于细胞反应的技术和模型的差异以及细胞的自然变异性。结果:在这项工作中,我们开发并应用了一种基于光学镊子的新方法来研究成纤维细胞、神经元和星形胶质细胞在1Hz至35Hz频率范围内的流变行为,确定了它们的膜-皮层复合物的存储和损失模量。为了避免与细胞探测技术相关的扭曲,我们使用了先前开发的一种方法,该方法考虑了珠下细胞厚度和珠浸泡的影响。对于所使用的三种细胞类型,仔细测量了这两个参数。利用软玻璃流变模型,我们得到了每一种细胞类型的标度指数和杨氏模量。得到的粘弹性模量为Pa数量级。在这三种细胞类型中,星形胶质细胞的弹性模量最低,而神经元和成纤维细胞表现出更像固体的行为。结论:尽管与以前的结果存在一些差异,并且鉴于自然变异性可能是不可避免的,但本工作中开发的方法使我们能够探索不同细胞类型的膜-皮质复合物的粘弹性行为,并比较它们在相同和定义良好的实验条件下获得的粘性和弹性模量,并将它们与细胞功能联系起来。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Rheological properties of cells measured by optical tweezers.

Rheological properties of cells measured by optical tweezers.

Rheological properties of cells measured by optical tweezers.

Rheological properties of cells measured by optical tweezers.

Background: The viscoelastic properties of cells have been investigated by a variety of techniques. However, the experimental data reported in literature for viscoelastic moduli differ by up to three orders of magnitude. This has been attributed to differences in techniques and models for cell response as well as to the natural variability of cells.

Results: In this work we develop and apply a new methodology based on optical tweezers to investigate the rheological behavior of fibroblasts, neurons and astrocytes in the frequency range from 1Hz to 35Hz, determining the storage and loss moduli of their membrane-cortex complex. To avoid distortions associated with cell probing techniques, we use a previously developed method that takes into account the influence of under bead cell thickness and bead immersion. These two parameters were carefully measured for the three cell types used. Employing the soft glass rheology model, we obtain the scaling exponent and the Young's modulus for each cell type. The obtained viscoelastic moduli are in the order of Pa. Among the three cell types, astrocytes have the lowest elastic modulus, while neurons and fibroblasts exhibit a more solid-like behavior.

Conclusions: Although some discrepancies with previous results remain and may be inevitable in view of natural variability, the methodology developed in this work allows us to explore the viscoelastic behavior of the membrane-cortex complex of different cell types as well as to compare their viscous and elastic moduli, obtained under identical and well-defined experimental conditions, relating them to the cell functions.

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BMC Biophysics
BMC Biophysics BIOPHYSICS-
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>12 weeks
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