Falde Eric J, Yohe Stefan T, Colson Yolonda L, Grinstaff Mark W
Departments of Biomedical Engineering, Chemistry and Medicine, Boston University, 590 Commonwealth Avenue, Boston, MA, 02215, USA.
Division of Thoracic Surgery, Department of Surgery Brigham and Women's Hospital, Boston, MA, 02115, USA.
Biomaterials. 2016 Oct;104:87-103. doi: 10.1016/j.biomaterials.2016.06.050. Epub 2016 Jul 9.
Superhydrophobic surfaces are actively studied across a wide range of applications and industries, and are now finding increased use in the biomedical arena as substrates to control protein adsorption, cellular interaction, and bacterial growth, as well as platforms for drug delivery devices and for diagnostic tools. The commonality in the design of these materials is to create a stable or metastable air layer at the material surface, which lends itself to a number of unique properties. These activities are catalyzing the development of new materials, applications, and fabrication techniques, as well as collaborations across material science, chemistry, engineering, and medicine given the interdisciplinary nature of this work. The review begins with a discussion of superhydrophobicity, and then explores biomedical applications that are utilizing superhydrophobicity in depth including material selection characteristics, in vitro performance, and in vivo performance. General trends are offered for each application in addition to discussion of conflicting data in the literature, and the review concludes with the authors' future perspectives on the utility of superhydrophobic biomaterials for medical applications.
超疏水表面在广泛的应用和行业中都受到了积极研究,目前在生物医学领域的应用越来越多,可作为控制蛋白质吸附、细胞相互作用和细菌生长的基质,以及药物输送装置和诊断工具的平台。这些材料设计的共同点是在材料表面形成一个稳定或亚稳定的空气层,这赋予了材料许多独特的性能。鉴于这项工作的跨学科性质,这些活动正在催化新材料、应用和制造技术的发展,以及材料科学、化学、工程和医学之间的合作。本文首先讨论超疏水性,然后深入探讨利用超疏水性的生物医学应用,包括材料选择特性、体外性能和体内性能。除了讨论文献中的矛盾数据外,还针对每种应用给出了一般趋势,本文最后作者对超疏水生物材料在医学应用中的效用给出了未来展望。