Department of Chemical Engineering, Stanford University, 443 Via Ortega, Stanford, CA 95305-4300, USA; Department of Bioengineering, Stanford University, 443 Via Ortega, Stanford, CA 95305-4300, USA.
Metab Eng. 2018 Nov;50:156-172. doi: 10.1016/j.ymben.2018.09.011. Epub 2018 Oct 25.
Expanding the concept of cell-free biology, implemented both with purified components and crude extracts, is continuing to deepen our appreciation of biological fundamentals while enlarging the range of applications. We are no longer intimidated by the complexity of crude extracts and complicated reaction systems with hundreds of active components, and, instead, coordinately activate and inactivate metabolic processes to focus and expand the capabilities of natural biological processes. This, in turn, dramatically increases the range of benefits offered by new products, both natural and supernatural, that were previously infeasible and/or unimaginable. This overview of cell-free metabolic engineering provides a broad range of examples and insights to guide and motivate continued research that will further expand fundamental understanding and beneficial applications. However, this survey also reveals how far we are from fully unlocking the potential offered by natural and engineered biological components and systems. This is an exciting conclusion, but metabolic engineering by itself is not sufficient. Going forward, innovative metabolic engineering must be intimately combined with creative process engineering to fully realize potential contributions toward a sustainable global civilization.
细胞游离生物学概念的扩展,无论是使用纯化的组件还是粗提物来实现,都在不断深化我们对生物学基础的认识,同时扩大了应用范围。我们不再被粗提物的复杂性和包含数百种活性成分的复杂反应系统所吓倒,而是协调激活和失活代谢过程,以集中和扩展自然生物过程的能力。这反过来又极大地增加了新产品(包括自然和超自然的产品)所提供的益处范围,这些产品以前是不可行的和/或难以想象的。本文对无细胞代谢工程进行了全面概述,提供了广泛的实例和见解,以指导和激励进一步的研究,从而进一步扩展基础理解和有益应用。然而,这一调查也揭示了我们离充分挖掘自然和工程生物成分和系统所提供的潜力还有多远。这是一个令人兴奋的结论,但仅凭代谢工程还远远不够。展望未来,创新的代谢工程必须与创造性的过程工程紧密结合,以充分实现对可持续的全球文明的潜在贡献。