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合成生物学

Synthetic biology.

作者信息

Sismour A Michael, Benner Steven A

出版信息

Expert Opin Biol Ther. 2005 Nov;5(11):1409-14. doi: 10.1517/14712598.5.11.1409.

DOI:10.1517/14712598.5.11.1409
PMID:16255644
Abstract

Chemistry is a broadly powerful discipline in contemporary science because it has the ability to create new forms of the matter that it studies. By doing so, chemistry can test models that connect molecular structure to behaviour without having to rely on what nature has provided. This creation, known as 'synthesis', began to be applied to living systems in the 1980s as recombinant DNA technologies allowed biologists to deliberately change the molecular structure of the microbes that they studied, and automated chemical synthesis of DNA became widely available to support these activities. The impact of the information that has emerged has made biologists aware of a truism that has long been known in chemistry: synthesis drives discovery and understanding in ways that analysis cannot. Synthetic biology is now setting an ambitious goal: to recreate in artificial systems the emergent properties found in natural biology. By doing so, it is advancing our understanding of the molecular basis of genetics in ways that analysis alone cannot. More practically, it has yielded artificial genetic systems that improve the healthcare of some 400,000 Americans annually. Synthetic biology is now set to take the next step, to create artificial Darwinian systems by direct construction. Supported by the National Science Foundation as part of its Chemical Bonding program, this work cannot help but generate clarity in our understanding of how biological systems work.

摘要

化学在当代科学中是一门具有广泛影响力的学科,因为它有能力创造出它所研究的物质的新形式。通过这样做,化学可以测试将分子结构与行为联系起来的模型,而不必依赖于自然所提供的东西。这种创造,即“合成”,在20世纪80年代开始应用于生命系统,因为重组DNA技术使生物学家能够故意改变他们所研究的微生物的分子结构,并且DNA的自动化化学合成变得广泛可用以支持这些活动。所出现的信息的影响使生物学家意识到化学中早已为人所知的一个真理:合成以分析无法做到的方式推动发现和理解。合成生物学现在设定了一个雄心勃勃的目标:在人工系统中重现自然生物学中发现的涌现特性。通过这样做,它正在以仅靠分析无法做到的方式推进我们对遗传学分子基础的理解。更实际地说,它已经产生了人工遗传系统,每年改善约40万美国人的医疗保健。合成生物学现在准备迈出下一步,通过直接构建来创建人工达尔文系统。作为美国国家科学基金会化学键合计划的一部分,这项工作必然会让我们对生物系统如何运作的理解更加清晰。

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