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利用激光产生的声波探测单个活植物细胞细胞壁的横向力学性能。

Transverse mechanical properties of cell walls of single living plant cells probed by laser-generated acoustic waves.

作者信息

Gadalla Atef, Dehoux Thomas, Audoin Bertrand

机构信息

University Bordeaux, I2M, UMR 5295, 33400, Talence, France.

出版信息

Planta. 2014 May;239(5):1129-37. doi: 10.1007/s00425-014-2045-y. Epub 2014 Mar 11.

DOI:10.1007/s00425-014-2045-y
PMID:24615232
Abstract

Probing the mechanical properties of plant cell wall is crucial to understand tissue dynamics. However, the exact symmetry of the mechanical properties of this anisotropic fiber-reinforced composite remains uncertain. For this reason, biologically relevant measurements of the stiffness coefficients on individual living cells are a challenge. For this purpose, we have developed the single-cell optoacoustic nanoprobe (SCOPE) technique, which uses laser-generated acoustic waves to probe the stiffness, thickness and viscosity of live single-cell subcompartments. This all-optical technique offers a sub-micrometer lateral resolution, nanometer in-depth resolution, and allows the non-contact measurement of the mechanical properties of live turgid tissues without any assumption of mechanical symmetry. SCOPE experiments reveal that single-cell wall transverse stiffness in the direction perpendicular to the epidermis layer of onion cells is close to that of cellulose. This observation demonstrates that cellulose microfibrils are the main load-bearing structure in this direction, and suggests strong bonding of microfibrils by hemicelluloses. Altogether our measurement of the viscosity at high frequencies suggests that the rheology of the wall is dominated by glass-like dynamics. From a comparison with literature, we attribute this behavior to the influence of the pectin matrix. SCOPE's ability to unravel cell rheology and cell anisotropy defines a new class of experiments to enlighten cell nano-mechanics.

摘要

探究植物细胞壁的力学特性对于理解组织动态至关重要。然而,这种各向异性纤维增强复合材料力学特性的确切对称性仍不确定。因此,对单个活细胞的刚度系数进行生物学相关测量是一项挑战。为此,我们开发了单细胞光声纳米探针(SCOPE)技术,该技术利用激光产生的声波来探测活单细胞亚区室的刚度、厚度和粘度。这种全光学技术提供了亚微米级的横向分辨率、纳米级的深度分辨率,并允许在不做任何力学对称性假设的情况下对活的膨胀组织的力学特性进行非接触测量。SCOPE实验表明,洋葱细胞表皮层垂直方向上的单细胞壁横向刚度接近纤维素的横向刚度。这一观察结果表明,纤维素微纤丝在这个方向上是主要的承重结构,并表明微纤丝通过半纤维素紧密结合。总的来说,我们对高频粘度的测量表明,细胞壁的流变学主要由类玻璃动力学主导。通过与文献比较,我们将这种行为归因于果胶基质的影响。SCOPE揭示细胞流变学和细胞各向异性的能力定义了一类新的实验,以阐明细胞纳米力学。

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2
Viscoelastic properties of cell walls of single living plant cells determined by dynamic nanoindentation.通过动态纳米压痕法测定单个活植物细胞细胞壁的黏弹性。
J Exp Bot. 2012 Apr;63(7):2525-40. doi: 10.1093/jxb/err428. Epub 2012 Jan 30.
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Beam distortion detection and deflectometry measurements of gigahertz surface acoustic waves.
Sci Rep. 2021 Feb 8;11(1):3301. doi: 10.1038/s41598-021-82639-w.
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High resolution 3D imaging of living cells with sub-optical wavelength phonons.利用亚光波长声子实现活细胞的高分辨率 3D 成像。
Sci Rep. 2016 Dec 20;6:39326. doi: 10.1038/srep39326.
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Quantifying hydrostatic pressure in plant cells by using indentation with an atomic force microscope.利用原子力显微镜压痕法对植物细胞中的静水压力进行量化。
Biophys J. 2015 May 19;108(10):2448-2456. doi: 10.1016/j.bpj.2015.03.035.
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Coherent phonon optics in a chip with an electrically controlled active device.具有电控有源器件的芯片中的相干声子光学
Sci Rep. 2015 Feb 5;5:8279. doi: 10.1038/srep08279.
千兆赫兹表面声波的光束畸变检测与偏转测量
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Biomechanics of plant growth.植物生长的生物力学
Am J Bot. 2006 Oct;93(10):1415-25. doi: 10.3732/ajb.93.10.1415.
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Exploring the micromechanical design of plant cell walls.探索植物细胞壁的微观机械设计。
Am J Bot. 2006 Oct;93(10):1391-401. doi: 10.3732/ajb.93.10.1391.
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Plant J. 2011 Sep;67(6):1116-23. doi: 10.1111/j.1365-313X.2011.04649.x. Epub 2011 Jul 4.
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