Capell Teresa, Christou Paul
Fraunhofer Institute for Molecular Biology and Applied Ecology (IME), Grafschaft, Auf dem Aberg 1, 57392 Schmallenberg, Germany.
Curr Opin Biotechnol. 2004 Apr;15(2):148-54. doi: 10.1016/j.copbio.2004.01.009.
Over the past few years, there has been a growing realization that metabolic pathways must be studied in the context of the whole cell rather than at the single pathway level, and that even the simplest modifications can send ripples throughout the entire system. Attention has therefore shifted away from reductionist, single-gene engineering strategies and towards more complex approaches involving the simultaneous overexpression and/or suppression of multiple genes. The use of regulatory factors to control the abundance or activity of several enzymes is also becoming more widespread. In combination with emerging methods to model metabolic pathways, this should facilitate the enhanced production of natural products and the synthesis of novel materials in a predictable and useful manner.
在过去几年里,人们越来越意识到必须在整个细胞的背景下研究代谢途径,而不是在单一途径水平上进行研究,而且即使是最简单的修饰也会在整个系统中引发连锁反应。因此,注意力已经从还原论的单基因工程策略转移到更复杂的方法上,这些方法涉及多个基因的同时过表达和/或抑制。利用调控因子来控制几种酶的丰度或活性也越来越普遍。结合新兴的代谢途径建模方法,这应该有助于以可预测且有用的方式提高天然产物的产量和合成新型材料。