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Engineered Living Materials: Prospects and Challenges for Using Biological Systems to Direct the Assembly of Smart Materials

机译:工程生活材料:使用生物系统指导智能材料组装的前景与挑战

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摘要

Vast potential exists for the development of novel, engineered platforms that manipulate biology for the production of programmed advanced materials. Such systems would possess the autonomous, adaptive, and self-healing characteristics of living organisms but would be engineered with the goal of assembling bulk materials with designer physicochemical or mechanical properties, across multiple length scales. Early efforts towards such Engineered Living Materials (ELMs) are reviewed here, with an emphasis on the engineered bacterial systems, living composite materials which integrate inorganic components, successful examples of large-scale implementation, and production methods. In addition, a conceptual exploration of the fundamental criteria of ELM technology and its future challenges is presented. Cradled within the rich intersection of synthetic biology and self-assembling materials, the development of ELM technologies will allow us to leverage the power of biology to grow complex structures and objects using a palette of bionanomaterials.
机译:开发新颖的工程平台具有巨大的潜力,这些平台可以操纵生物学来生产程序化的高级材料。这样的系统将具有活生物体的自主,自适应和自我修复的特性,但其目标是在多个长度尺度上组装具有设计者物理化学或机械特性的散装材料。本文回顾了对此类工程化生物材料(ELM)的早期工作,重点是工程菌系统,整合了无机成分的生物复合材料,大规模实施的成功实例以及生产方法。此外,还对ELM技术的基本标准及其未来挑战进行了概念性探索。在合成生物学和自组装材料的丰富交汇中,ELM技术的发展将使我们能够利用生物学的力量,利用多种生物材料来生长复杂的结构和物体。

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