Centre for Synthetic Biology and Innovation, Imperial College London , London , UK ; Department of Medicine, Imperial College London , London , UK.
Front Bioeng Biotechnol. 2014 Nov 26;2:60. doi: 10.3389/fbioe.2014.00060. eCollection 2014.
Synthetic biology is principally concerned with the rational design and engineering of biologically based parts, devices, or systems. However, biological systems are generally complex and unpredictable, and are therefore, intrinsically difficult to engineer. In order to address these fundamental challenges, synthetic biology is aiming to unify a "body of knowledge" from several foundational scientific fields, within the context of a set of engineering principles. This shift in perspective is enabling synthetic biologists to address complexity, such that robust biological systems can be designed, assembled, and tested as part of a biological design cycle. The design cycle takes a forward-design approach in which a biological system is specified, modeled, analyzed, assembled, and its functionality tested. At each stage of the design cycle, an expanding repertoire of tools is being developed. In this review, we highlight several of these tools in terms of their applications and benefits to the synthetic biology community.
合成生物学主要关注基于生物学的部件、设备或系统的合理设计和工程。然而,生物系统通常是复杂和不可预测的,因此,从本质上讲,很难进行工程设计。为了解决这些基本挑战,合成生物学旨在统一一组工程原理下的几个基础科学领域的“知识体系”。这种视角的转变使合成生物学家能够解决复杂性问题,从而可以设计、组装和测试稳健的生物系统,作为生物设计周期的一部分。设计周期采用正向设计方法,其中指定、建模、分析、组装和测试生物系统的功能。在设计周期的每个阶段,都在开发扩展的工具组合。在这篇综述中,我们根据它们在合成生物学社区中的应用和优势来强调其中的一些工具。