Biondi Marco, Ungaro Francesca, Quaglia Fabiana, Netti Paolo Antonio
Interdisciplinary Research Centre on Biomaterials (CRIB), University of Naples Federico II, Naples, Italy.
Adv Drug Deliv Rev. 2008 Jan 14;60(2):229-42. doi: 10.1016/j.addr.2007.08.038. Epub 2007 Oct 11.
The concept of tissue and cell guidance is rapidly evolving as more information regarding the effect of the microenvironment on cellular function and tissue morphogenesis become available. These disclosures have lead to a tremendous advancement in the design of a new generation of multifunctional biomaterials able to mimic the molecular regulatory characteristics and the three-dimensional architecture of the native extracellular matrix. Micro- and nano-structured scaffolds able to sequester and deliver in a highly specific manner biomolecular moieties have already been proved to be effective in bone repairing, in guiding functional angiogenesis and in controlling stem cell differentiation. Although these platforms represent a first attempt to mimic the complex temporal and spatial microenvironment presented in vivo, an increased symbiosis of material engineering, drug delivery technology and cell and molecular biology may ultimately lead to biomaterials that encode the necessary signals to guide and control developmental process in tissue- and organ-specific differentiation and morphogenesis.
随着越来越多关于微环境对细胞功能和组织形态发生影响的信息出现,组织和细胞引导的概念正在迅速发展。这些发现推动了新一代多功能生物材料设计的巨大进步,这类材料能够模拟天然细胞外基质的分子调节特性和三维结构。能够以高度特异性方式隔离和递送生物分子部分的微纳结构支架,已被证明在骨修复、引导功能性血管生成以及控制干细胞分化方面是有效的。尽管这些平台是模拟体内复杂时空微环境的首次尝试,但材料工程、药物递送技术以及细胞和分子生物学之间更强的共生关系,最终可能会产生能够编码必要信号以引导和控制组织和器官特异性分化及形态发生中发育过程的生物材料。