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声全息细胞在生物相容性水凝胶中的图案化。

Acoustic Holographic Cell Patterning in a Biocompatible Hydrogel.

机构信息

Max Planck Institute for Intelligent Systems, Heisenbergstr. 3, 70569, Stuttgart, Germany.

Department of Cellular Biophysics, Max Planck Institute for Medical Research, Heidelberg, 69120, Germany.

出版信息

Adv Mater. 2020 Jan;32(4):e1904181. doi: 10.1002/adma.201904181. Epub 2019 Nov 29.

Abstract

Acoustophoresis is promising as a rapid, biocompatible, noncontact cell manipulation method, where cells are arranged along the nodes or antinodes of the acoustic field. Typically, the acoustic field is formed in a resonator, which results in highly symmetric regular patterns. However, arbitrary, nonsymmetrically shaped cell assemblies are necessary to obtain the irregular cellular arrangements found in biological tissues. It is shown that arbitrarily shaped cell patterns can be obtained from the complex acoustic field distribution defined by an acoustic hologram. Attenuation of the sound field induces localized acoustic streaming and the resultant convection flow gently delivers the suspended cells to the image plane where they form the designed pattern. It is shown that the process can be implemented in a biocompatible collagen solution, which can then undergo gelation to immobilize the cell pattern inside the viscoelastic matrix. The patterned cells exhibit F-actin-based protrusions, which indicate that the cells grow and thrive within the matrix. Cell viability assays and brightfield imaging after one week confirm cell survival and that the patterns persist. Acoustophoretic cell manipulation by holographic fields thus holds promise for noncontact, long-range, long-term cellular pattern formation, with a wide variety of potential applications in tissue engineering and mechanobiology.

摘要

声悬浮是一种很有前途的快速、生物兼容、非接触式细胞操作方法,其中细胞沿着声场的节点或反节点排列。通常,声场是在谐振器中形成的,这导致了高度对称的规则图案。然而,为了获得生物组织中不规则的细胞排列,需要任意形状的非对称细胞组件。结果表明,可以从声全息图定义的复杂声场分布中获得任意形状的细胞图案。声场的衰减会引起局部声流,并且所得的对流流会将悬浮的细胞轻轻地输送到图像平面,在那里它们形成设计的图案。结果表明,该过程可以在生物相容的胶原溶液中实现,然后可以使该溶液凝胶化以将细胞图案固定在粘弹性基质内。图案化的细胞表现出基于 F-肌动蛋白的突起,这表明细胞在基质内生长和繁殖。一周后的细胞活力测定和明场成像证实了细胞的存活和图案的持续存在。因此,通过全息场进行声悬浮细胞操作有望实现非接触式、远程、长期的细胞图案形成,在组织工程和机械生物学中有广泛的潜在应用。

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