抄録
While complex dynamic biological networks control gene expression in all living organisms, the forward engineering of comparable synthetic networks remains challenging. The current paradigm of characterizing synthetic networks in cells results in lengthy design-build-test cycles, minimal data collection, and poor quantitative characterization. Cell-free systems are appealing alternative environments, but it remains questionable whether biological networks behave similarly in cell-free systems and in cells. We characterized in a cell-free system the ‘repressilator’, a three-node synthetic oscillator. We then engineered novel three, four, and five-gene ring architectures, from characterization of circuit components to rapid analysis of complete networks. When implemented in cells, our novel 3-node networks produced population-wide oscillations and 95% of 5-node oscillator cells oscillated for up to 72 hr. Oscillation periods in cells matched the cell-free system results for all networks tested. An alternate forward engineering paradigm using cell-free systems can thus accurately capture cellular behavior.
| 本文言語 | English |
|---|---|
| 論文番号 | e09771 |
| ジャーナル | eLife |
| 巻 | 4 |
| 号 | OCTOBER2015 |
| DOI | |
| 出版ステータス | Published - 2015 10月 2 |
| 外部発表 | はい |
ASJC Scopus subject areas
- 免疫学および微生物学一般
- 生化学、遺伝学、分子生物学一般
- 神経科学一般
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