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藻类细胞生长过程中纳米力学性质和粘附动力学的变化。

Changes in nanomechanical properties and adhesion dynamics of algal cells during their growth.

机构信息

Université de Toulouse, UPS, IPBS, F-31077 Toulouse, France.

LAAS-CNRS, Université de Toulouse, CNRS, Toulouse, France.

出版信息

Bioelectrochemistry. 2019 Jun;127:154-162. doi: 10.1016/j.bioelechem.2019.02.011. Epub 2019 Feb 21.

Abstract

Nanomechanical and structural characterisations of algal cells are of key importance for understanding their adhesion behaviour at interfaces in the aquatic environment. We examine here the nanomechanical properties and adhesion dynamics of the algal cells during two phases of their growth using complementary surface methods and the mathematical modelling. Mechanical properties of motile cells are hard to assess while keeping cells viable, and studies to date have been limited. Immobilisation of negatively charged cells to a positively charged substrate enables high-resolution AFM imaging and nanomechanical measurements. Cells were stiffer and more hydrophobic in the exponential than in the stationary phase, suggesting molecular modification of the cell envelope during aging. The corresponding properties of algal cells were in agreement with the increase of critical interfacial tensions of adhesion, determined amperometrically. Cells in exponential phase possessed a larger cell volume, in agreement with the large amount of amperometrically measured displaced charge at the interface. Differences in the kinetics of adhesion and spreading of cells at the interface were attributed to their various volumes and nanomechanical properties that varied during cell aging. Our findings contribute to the present body of knowledge on the biophysics of algal cells on a fundamental level.

摘要

藻类细胞的纳米力学和结构特性对于理解它们在水生环境中界面的附着行为至关重要。在这里,我们使用互补的表面方法和数学建模来研究藻类细胞在生长的两个阶段的纳米力学特性和附着动力学。在保持细胞活力的情况下,很难评估游动细胞的力学性能,迄今为止的研究受到限制。将带负电荷的细胞固定到带正电荷的基底上,能够进行高分辨率的 AFM 成像和纳米力学测量。与附着的临界界面张力的增加相一致,处于指数生长期的细胞比处于静止期的细胞更硬且更疏水,这表明细胞包膜在老化过程中发生了分子修饰。藻类细胞的相应特性与安培法测定的附着的临界界面张力的增加一致。指数生长期的细胞具有更大的细胞体积,这与界面处安培法测量的大量位移电荷一致。在界面处的细胞附着和扩展的动力学差异归因于它们的各种体积和纳米力学特性在细胞老化过程中发生变化。我们的发现为藻类细胞在基础层面上的生物物理性质提供了更多的知识。

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