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通过在流体条带中的毛细流动合成各向异性材料。

Anisotropic material synthesis by capillary flow in a fluid stripe.

机构信息

Center for Biomedical Engineering, Department of Medicine, Brigham and Women's Hospital, Harvard Medical School, Cambridge, MA 02139, USA.

出版信息

Biomaterials. 2011 Sep;32(27):6493-504. doi: 10.1016/j.biomaterials.2011.05.057.

Abstract

We present a simple bench-top technique to produce centimeter long concentration gradients in biomaterials incorporating soluble, material, and particle gradients. By patterning hydrophilic regions on a substrate, a stripe of prepolymer solution is held in place on a glass slide by a hydrophobic boundary. Adding a droplet to one end of this "pre-wet" stripe causes a rapid capillary flow that spreads the droplet along the stripe to generate a gradient in the relative concentrations of the droplet and pre-wet solutions. The gradient length and shape are controlled by the pre-wet and droplet volumes, stripe thickness, fluid viscosity and surface tension. Gradient biomaterials are produced by crosslinking gradients of prepolymer solutions. Demonstrated examples include a concentration gradient of cells encapsulated in three dimensions (3D) within a homogeneous biopolymer and a constant concentration of cells encapsulated in 3D within a biomaterial gradient exhibiting a gradient in cell spreading. The technique employs coated glass slides that may be purchased or custom made from tape and hydrophobic spray. The approach is accessible to virtually any researcher or student and should dramatically reduce the time required to synthesize a wide range of gradient biomaterials. Moreover, since the technique employs passive mechanisms it is ideal for remote or resource poor settings.

摘要

我们提出了一种简单的台式技术,可在包含可溶性材料、颗粒的生物材料中产生厘米级的浓度梯度。通过在基底上形成亲水区域,在玻璃载玻片上用疏水边界固定预聚物溶液的条带。在这条“预湿”条带的一端添加液滴会导致快速的毛细流动,使液滴沿着条带扩散,从而在液滴和预湿溶液的相对浓度之间产生梯度。梯度的长度和形状由预湿和液滴体积、条带厚度、流体粘度和表面张力控制。梯度生物材料是通过交联预聚物溶液的梯度来制备的。演示的例子包括在均匀的生物聚合物中 3D 包封的细胞浓度梯度,以及在细胞扩散梯度的生物材料梯度中 3D 包封的恒定浓度的细胞。该技术采用涂覆的载玻片,可以从胶带和疏水剂喷雾器购买或定制。这种方法几乎对任何研究人员或学生都适用,应该大大减少合成各种梯度生物材料所需的时间。此外,由于该技术采用被动机制,因此非常适合远程或资源匮乏的环境。

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