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用于生物医学应用的层层组装膜的时空控制:从二维到三维

Spatio-Temporal Control of LbL Films for Biomedical Applications: From 2D to 3D.

作者信息

Monge Claire, Almodóvar Jorge, Boudou Thomas, Picart Catherine

机构信息

CNRS, UMR 5628, LMGP, 3 parvis Louis Néel, F-38016, Grenoble, France; Université de Grenoble Alpes, Grenoble Institute of Technology, 3 parvis Louis Néel, F-38016, Grenoble, France.

出版信息

Adv Healthc Mater. 2015 Apr 22;4(6):811-30. doi: 10.1002/adhm.201400715. Epub 2015 Jan 27.

Abstract

Introduced in the '90s by Prof. Moehwald, Lvov, and Decher, the layer-by-layer (LbL) assembly of polyelectrolytes has become a popular technique to engineer various types of objects such as films, capsules and free standing membranes, with an unprecedented control at the nanometer and micrometer scales. The LbL technique allows to engineer biofunctional surface coatings, which may be dedicated to biomedical applications in vivo but also to fundamental studies and diagnosis in vitro. Initially mostly developed as 2D coatings and hollow capsules, the range of complex objects created by the LbL technique has greatly expanded in the past 10 years. In this Review, the aim is to highlight the recent progress in the field of LbL films for biomedical applications and to discuss the various ways to spatially and temporally control the biochemical and mechanical properties of multilayers. In particular, three major developments of LbL films are discussed: 1) the new methods and templates to engineer LbL films and control cellular processes from adhesion to differentiation, 2) the major ways to achieve temporal control by chemical, biological and physical triggers and, 3) the combinations of LbL technique, cells and scaffolds for repairing 3D tissues, including cardio-vascular devices, bone implants and neuro-prosthetic devices.

摘要

20世纪90年代,由莫尔瓦尔德教授、利沃夫和德彻引入的聚电解质层层(LbL)组装技术,已成为一种热门技术,可用于制造各种类型的物体,如薄膜、胶囊和独立膜,在纳米和微米尺度上实现了前所未有的控制。LbL技术可用于设计生物功能表面涂层,这些涂层不仅可用于体内生物医学应用,还可用于体外基础研究和诊断。最初,LbL技术主要用于开发二维涂层和中空胶囊,但在过去10年中,该技术创造的复杂物体范围已大大扩展。在本综述中,目的是突出LbL薄膜在生物医学应用领域的最新进展,并讨论在空间和时间上控制多层膜生化和机械性能的各种方法。特别是,讨论了LbL薄膜的三个主要发展方向:1)设计LbL薄膜并控制细胞从黏附到分化过程的新方法和模板;2)通过化学、生物和物理触发实现时间控制的主要方式;3)LbL技术、细胞和支架用于修复三维组织(包括心血管装置、骨植入物和神经假体装置)的组合。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8491/4540079/e9ac46b4a501/emss-64194-f0001.jpg

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