Cappello Jean, Miguet Jonas, Dewandre Adrien, Ergot Lucie, Gabriele Sylvain, Septavaux Jean, Scheid Benoit
Transfers, Interfaces and Processes, Université libre de Bruxelles, CP165/67, 1050 Brussels, Belgium.
University of Lyon, Université Claude Bernard Lyon 1, CNRS, Institut Lumière Matière, F-69622 Villeurbanne, France.
Soft Matter. 2024 Oct 2;20(38):7692-7702. doi: 10.1039/d4sm00260a.
The fabrication of microgels, particularly those ranging from tens to hundreds of micrometers in size, represents a thriving area of research, particularly for biologists seeking controlled and isotropic media for cell encapsulation. In this article, we present a novel and robust method for producing structurally homogeneous alginate beads with a reduced environmental footprint, employing a co-flow focusing microfluidic device. These beads can be easily recovered in an oil-free aqueous medium, making the fabrication method highly suitable for diverse applications. We demonstrate precise control over the production of perfectly spherical beads across a wide range of diameters, from about 30 to 300 μm. We then measure Young's moduli of the beads, revealing a wide accessible range from 90 Pa to 11 kPa, contingent upon controlling the type ( chain length) and concentration of alginate.
微凝胶的制备,尤其是那些尺寸在几十到几百微米范围内的微凝胶,是一个蓬勃发展的研究领域,对于寻求用于细胞封装的可控且各向同性介质的生物学家来说尤为如此。在本文中,我们提出了一种新颖且稳健的方法,该方法采用共流聚焦微流控装置来生产具有减少环境足迹的结构均匀的藻酸盐珠粒。这些珠粒可以在无油的水性介质中轻松回收,这使得该制备方法非常适用于各种应用。我们展示了对直径范围从约30到300μm的完美球形珠粒生产的精确控制。然后我们测量了珠粒的杨氏模量,结果表明,根据控制藻酸盐的类型(链长)和浓度,杨氏模量的可获得范围很广,从90Pa到11kPa。