Stachowiak Jeanne C, Richmond David L, Li Thomas H, Liu Allen P, Parekh Sapun H, Fletcher Daniel A
Department of Mechanical Engineering, Biophysics Graduate Group, and Department of Bioengineering, University of California, Berkeley, CA 94720.
Proc Natl Acad Sci U S A. 2008 Mar 25;105(12):4697-702. doi: 10.1073/pnas.0710875105. Epub 2008 Mar 19.
Compartmentalization of biomolecules within lipid membranes is a fundamental requirement of living systems and an essential feature of many pharmaceutical therapies. However, applications of membrane-enclosed solutions of proteins, DNA, and other biologically active compounds have been limited by the difficulty of forming unilamellar vesicles with controlled contents in a repeatable manner. Here, we demonstrate a method for simultaneously creating and loading giant unilamellar vesicles (GUVs) using a pulsed microfluidic jet. Akin to blowing a bubble, the microfluidic jet deforms a planar lipid bilayer into a vesicle that is filled with solution from the jet and separates from the planar bilayer. In contrast with existing techniques, our method rapidly generates multiple monodisperse, unilamellar vesicles containing solutions of unrestricted composition and molecular weight. Using the microfluidic jetting technique, we demonstrate repeatable encapsulation of 500-nm particles into GUVs and show that functional pore proteins can be incorporated into the vesicle membrane to mediate transport. The ability of microfluidic jetting to controllably encapsulate solutions inside of GUVs creates new opportunities for the study and use of compartmentalized biomolecular systems in science, industry, and medicine.
生物分子在脂质膜内的区室化是生命系统的基本要求,也是许多药物治疗的基本特征。然而,蛋白质、DNA和其他生物活性化合物的膜封闭溶液的应用受到限制,难以以可重复的方式形成具有可控内容物的单层囊泡。在此,我们展示了一种使用脉冲微流体射流同时创建和加载巨型单层囊泡(GUV)的方法。类似于吹泡泡,微流体射流将平面脂质双层变形为一个囊泡,该囊泡充满来自射流的溶液并与平面双层分离。与现有技术相比,我们的方法能快速生成多个单分散的单层囊泡,其包含成分和分子量不受限制的溶液。使用微流体射流技术,我们展示了将500纳米颗粒可重复封装到GUV中,并表明功能性孔蛋白可掺入囊泡膜以介导运输。微流体射流将溶液可控封装到GUV内部的能力为科学、工业和医学中分隔生物分子系统的研究和应用创造了新机会。