Zhang Shuguang
Center for Biomedical Engineering NE47-379, Massachusetts Institute of Technology, 77 Massachusetts Avenue, Cambridge, Massachusetts 02139-4307, USA.
Adv Cancer Res. 2008;99:335-62. doi: 10.1016/S0065-230X(07)99005-3.
Biomedical researchers have become increasingly aware of the limitations of the conventional 2-D tissue cell cultures where most tissue cell studies including cancer and tumor cells have been carried out. They are now searching and testing 3-D cell culture systems, something between a petri dish and a mouse. The important implications of 3-D tissue cell cultures for basic cell biology, tumor biology, high-content drug screening, and regenerative medicine and beyond are far-reaching. How can nanobiotechnology truly advance the traditional cell, tumor, and cancer biology? Why nano is important in biomedical research and medical science? A nanometer is 1000 times smaller than a micrometer, but why it matters in biology? This chapter addresses these questions. It has become more and more apparent that 3-D cell culture offers a more realistic local environment through the nanofiber scaffolds where the functional properties of cells can be observed and manipulated. A new class of designer self-assembling peptide nanofiber scaffolds now provides an ideal alternative system. Time has come to address the 3-D questions because quantitative biology requires in vitro culture systems that more authentically represent the cellular microenvironment in a living organism. In doing so, in vitro experimentation can become truly more predictive of in vivo systems.
生物医学研究人员越来越意识到传统二维组织细胞培养的局限性,大多数组织细胞研究(包括癌症和肿瘤细胞研究)都是在这种培养方式下进行的。他们现在正在寻找和测试三维细胞培养系统,这是一种介于培养皿和小鼠之间的东西。三维组织细胞培养在基础细胞生物学、肿瘤生物学、高内涵药物筛选、再生医学及其他领域具有深远的重要意义。纳米生物技术如何才能真正推动传统的细胞、肿瘤和癌症生物学发展?为什么纳米在生物医学研究和医学科学中很重要?一纳米比一微米小1000倍,但为什么它在生物学中很重要呢?本章将探讨这些问题。越来越明显的是,三维细胞培养通过纳米纤维支架提供了一个更真实的局部环境,在这个环境中可以观察和操纵细胞的功能特性。一类新型的设计自组装肽纳米纤维支架现在提供了一个理想的替代系统。是时候解决三维问题了,因为定量生物学需要能够更真实地模拟活生物体中细胞微环境的体外培养系统。这样一来,体外实验就能真正更准确地预测体内系统。