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本文引用的文献

1
Microfluidic permeation printing of self-assembled monolayer gradients on surfaces for chemoselective ligand immobilization applied to cell adhesion and polarization.微流控渗透打印表面上的自组装单分子层梯度用于化学选择性配体固定化,应用于细胞黏附和极化。
Langmuir. 2010 Aug 3;26(15):12817-23. doi: 10.1021/la1022642.
2
Geometric cues for directing the differentiation of mesenchymal stem cells.用于指导间充质干细胞分化的几何线索。
Proc Natl Acad Sci U S A. 2010 Mar 16;107(11):4872-7. doi: 10.1073/pnas.0903269107. Epub 2010 Mar 1.
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Photothermal micro- and nanopatterning of organic/silicon interfaces.有机/硅界面的光热微纳图案化。
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Nanoscale engineering of biomimetic surfaces: cues from the extracellular matrix.仿生表面的纳观工程:细胞外基质的启示。
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Chemically specific laser-induced patterning of alkanethiol SAMs: characterization by SEM and AFM.烷硫醇自组装单分子层的化学特异性激光诱导图案化:通过扫描电子显微镜和原子力显微镜进行表征
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Patterned and switchable surfaces for biomolecular manipulation.用于生物分子操作的图案化和可切换表面。
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One-dimensional topography underlies three-dimensional fibrillar cell migration.一维地形是三维纤维状细胞迁移的基础。
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Actin and alpha-actinin orchestrate the assembly and maturation of nascent adhesions in a myosin II motor-independent manner.肌动蛋白和α-辅肌动蛋白以一种不依赖肌球蛋白II马达的方式协调新生黏附的组装和成熟。
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Comparative dynamics of retrograde actin flow and focal adhesions: formation of nascent adhesions triggers transition from fast to slow flow.肌动蛋白逆行流动与粘着斑的比较动力学:新生粘着斑的形成引发从快速流动到慢速流动的转变。
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Fabrication of surface energy/chemical gradients using self-assembled monolayer surfaces.利用自组装单分子层表面制备表面能/化学梯度
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利用激光扫描光刻技术制造多面微图案表面

Fabrication of Multifaceted Micropatterned Surfaces with Laser Scanning Lithography.

作者信息

Slater John H, Miller Jordan S, Yu Shann S, West Jennifer L

机构信息

Department of Bioengineering, Rice University, Houston, Texas 77005 (USA).

出版信息

Adv Funct Mater. 2011 Aug 9;21(15):2876-2888. doi: 10.1002/adfm.201100297. Epub 2011 May 31.

DOI:10.1002/adfm.201100297
PMID:29861708
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC5978433/
Abstract

The implementation of engineered surfaces presenting micrometer-sized patterns of cell adhesive ligands against a biologically inert background has led to numerous discoveries in fundamental cell biology. While existing surface patterning strategies allow for pattering of a single ligand it is still challenging to fabricate surfaces displaying multiple patterned ligands. To address this issue we implemented Laser Scanning Lithography (LSL), a laser-based thermal desorption technique, to fabricate multifaceted, micropatterned surfaces that display independent arrays of subcellular-sized patterns of multiple adhesive ligands with each ligand confined to its own array. We demonstrate that LSL is a highly versatile "maskless" surface patterning strategy that provides the ability to create patterns with features ranging from 450 nm to 100 μm, topography ranging from -1 to 17 nm, and to fabricate both stepwise and smooth ligand surface density gradients. As validation for their use in cell studies, surfaces presenting orthogonally interwoven arrays of 1×8 μm elliptical patterns of Gly-Arg-Gly-Asp-terminated alkanethiol self-assembled monolayers and human plasma fibronectin are produced. Human umbilical vein endothelial cells cultured on these multifaceted surfaces form adhesion sites to both ligands simultaneously and utilize both ligands for lamella formation during migration. The ability to create multifaceted, patterned surfaces with tight control over pattern size, spacing, and topography provides a platform to simultaneously investigate the complex interactions of extracellular matrix geometry, biochemistry, and topography on cell adhesion and downstream cell behavior.

摘要

在生物惰性背景上构建呈现微米级细胞黏附配体图案的工程表面,已在基础细胞生物学领域带来了众多发现。虽然现有的表面图案化策略能够实现单一配体的图案化,但制造展示多种图案化配体的表面仍然具有挑战性。为了解决这个问题,我们采用了激光扫描光刻技术(LSL),这是一种基于激光的热解吸技术,来制造多面微图案表面,该表面展示多个黏附配体的亚细胞尺寸图案的独立阵列,每个配体都局限于其自身的阵列中。我们证明,LSL是一种高度通用的“无掩膜”表面图案化策略,能够创建特征尺寸从450纳米到100微米、形貌范围从-1纳米到17纳米的图案,并制造逐步和光滑的配体表面密度梯度。作为其在细胞研究中应用的验证,制备了呈现甘氨酸-精氨酸-甘氨酸-天冬氨酸末端烷硫醇自组装单层和人血浆纤连蛋白的1×8微米椭圆形图案正交交织阵列的表面。在这些多面表面上培养的人脐静脉内皮细胞同时与两种配体形成黏附位点,并在迁移过程中利用两种配体形成片状伪足。能够创建对图案大小、间距和形貌进行严格控制的多面图案化表面,为同时研究细胞外基质几何形状、生物化学和形貌对细胞黏附及下游细胞行为的复杂相互作用提供了一个平台。