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Molecular Bioengineering of Biomaterials in the 1990s and Beyond: A Growing Liaison of Polymers with Molecular Biology

机译:1990 年代及以后生物材料的分子生物工程:聚合物与分子生物学的日益增长的联系

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Abstract:An important trend in biomaterials research and development is the synthesis of polymers that combine capabilities of biologic recognition (biomimetic) with special physicochemical properties of the synthetic polymer system. Another important trend in such “molecular bioengineering” is to develop, perhaps via computer‐aided molecular design, new artificial biomimetic systems by exact placement of functional groups on rigid polymer backbones, cross‐linked structures, or macromolecular assemblies. In this way, biocatalytic functioning or biore‐cognition similar to enzymes and antibodies can be achieved without the inherent instability often encountered with the native biomolecules or assemblies. Perhaps the most exciting trend in biomaterials research and development is the availability of new biomolecules, e.g., via protein engineering and of hardy cells with specific biofunctions and bioresponses that can be tailored to specific medical or biotechnological needs. The wide variety of ways that such biomolecules and cells can be combined with polymeric biomaterials provides tremendously exciting opportunities for the biomaterials scientists and engineers. In addition to these synthetic approaches, new and exciting analytical tools, such as the scanning tunneling microscope and the atomic force microscope, are permitting study on a molecular scale of individual and small clusters of proteins and other biomolecular assemblies on surfaces. Cell attachments and spreading may also be visualized at various depths within the cell using the confocal laser microscope. Such analytical techniques can lead to important new knowledge about biologic interactions with biomaterials and, therefore, to development of even more biocompatible implants and devices. This paper overviews the present state of polymeric biomaterials and highlights the important and exciting opportunities generated by the liaison of these materials with molecula
机译:摘要:生物材料研究和开发的一个重要趋势是将生物识别(仿生)能力与合成聚合物体系的特殊理化性质相结合的聚合物的合成。这种“分子生物工程”的另一个重要趋势是,也许通过计算机辅助分子设计,通过在刚性聚合物主链、交联结构或大分子组装体上精确放置官能团来开发新的人工仿生系统。通过这种方式,可以实现类似于酶和抗体的生物催化功能或生物再认知,而不会出现天然生物分子或组装体经常遇到的固有不稳定性。也许生物材料研究和开发中最令人兴奋的趋势是新生物分子的可用性,例如,通过蛋白质工程和具有特定生物功能和生物反应的耐寒细胞,可以根据特定的医疗或生物技术需求进行定制。这些生物分子和细胞可以与聚合物生物材料结合的多种方式为生物材料科学家和工程师提供了非常令人兴奋的机会。除了这些合成方法之外,新的和令人兴奋的分析工具,如扫描隧道显微镜和原子力显微镜,允许在分子尺度上研究单个和小的蛋白质簇和表面上的其他生物分子组装体。细胞附着和扩散也可以使用共聚焦激光显微镜在细胞内的不同深度进行可视化。这种分析技术可以带来关于生物与生物材料相互作用的重要新知识,从而开发更具生物相容性的植入物和设备。本文概述了聚合物生物材料的现状,并强调了这些材料与分子的联系所产生的重要和令人兴奋的机会

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