State Key Laboratory of Protein and Plant Gene Research, College of Life Sciences, Peking University, Beijing, China.
PLoS One. 2013 Jul 25;8(7):e68677. doi: 10.1371/journal.pone.0068677. Print 2013.
Biological nitrogen fixation is a complex process requiring multiple genes working in concert. To date, the Klebsiella pneumoniae nif gene cluster, divided into seven operons, is one of the most studied systems. Its nitrogen fixation capacity is subject to complex cascade regulation and physiological limitations. In this report, the entire K. pneumoniae nif gene cluster was reassembled as operon-based BioBrick parts in Escherichia coli. It provided ~100% activity of native K. pneumoniae system. Based on the expression levels of these BioBrick parts, a T7 RNA polymerase-LacI expression system was used to replace the σ(54)-dependent promoters located upstream of nif operons. Expression patterns of nif operons were critical for the maximum activity of the recombinant system. By mimicking these expression levels with variable-strength T7-dependent promoters, ~42% of the nitrogenase activity of the σ(54)-dependent nif system was achieved in E. coli. When the newly constructed T7-dependent nif system was challenged with different genetic and physiological conditions, it bypassed the original complex regulatory circuits, with minor physiological limitations. Therefore, we have successfully replaced the nif regulatory elements with a simple expression system that may provide the first step for further research of introducing nif genes into eukaryotic organelles, which has considerable potentials in agro-biotechnology.
生物固氮是一个复杂的过程,需要多个基因协同工作。迄今为止,肺炎克雷伯氏菌 nif 基因簇被分为七个操纵子,是研究最多的系统之一。其固氮能力受到复杂级联调控和生理限制的影响。在本报告中,整个肺炎克雷伯氏菌 nif 基因簇被重新组装为基于操纵子的大肠杆菌 BioBrick 元件。它提供了约 100%的天然肺炎克雷伯氏菌系统的活性。基于这些 BioBrick 元件的表达水平,使用 T7 RNA 聚合酶-LacI 表达系统取代了位于 nif 操纵子上游的 σ(54)依赖性启动子。nif 操纵子的表达模式对重组系统的最大活性至关重要。通过使用可变强度的 T7 依赖性启动子模拟这些表达水平,在大肠杆菌中实现了约 42%的 σ(54)依赖性 nif 系统的固氮酶活性。当新构建的 T7 依赖性 nif 系统受到不同遗传和生理条件的挑战时,它绕过了原始的复杂调控回路,生理限制较小。因此,我们已经成功地用简单的表达系统替代了 nif 调节元件,这可能为进一步研究将 nif 基因引入真核细胞器提供了第一步,这在农业生物技术中具有相当大的潜力。