血红素生物传感器引导的血红素高效生物合成的体内途径优化和定向进化。

Jian Zhang, Qingbin Li, Qi Wang, Jingyu Zhao, Yuan Zhu, Tianyuan Su, Qingsheng Qi, Qian Wang
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引用次数: 2

摘要

背景:血红素因其在医药和食品方面的广泛应用而备受关注。hemBCDEFY基因的产物将5-氨基乙酰丙酸转化为原卟啉IX (PPIX);血红素的直接前体);原卟啉铁螯合酶(FECH)将Fe2+插入PPIX中生成血红素。血红素的生物合成受到多种基因优化表达水平、复杂调控机制和低酶活性的限制;这些问题需要在代谢工程中克服,以提高血红素的合成。结果:我们报道了一种血红素生物传感器引导的筛选策略,使用血红素反应蛋白HrtR来调节大肠杆菌中tcR的表达,在选择性条件下(即四环素的存在),提供了细胞内血红素浓度与细胞存活之间的可量化联系。该系统用于从随机核糖体结合位点(RBS)变异文库和FECH突变文库中快速富集筛选产血红素菌株。通过最多4轮的迭代进化,筛选出与hemBCDEFY联合使用的最佳RBS强度菌株;我们获得了160.8 mg/L的PPIX滴度,这是摇瓶发酵的最高产量。从饱和诱变文库中获得了一个高活性的FECH变体。采用优化的hemBCDEFY和FECH突变体对菌株SH20C进行补料分批发酵,其血红素产量为127.6 mg/L。结论:基于血红素生物传感器,我们对PPIX的多基因生物合成途径进行了依次完善,并对FECH进行了体内定向进化,验证了基于血红素生物传感器的途径优化策略的有效性,拓宽了我们对血红素合成机制的认识。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Heme biosensor-guided in vivo pathway optimization and directed evolution for efficient biosynthesis of heme.

Background: Heme has attracted much attention because of its wide applications in medicine and food. The products of genes hemBCDEFY convert 5-aminolevulinic acid to protoporphyrin IX (PPIX; the immediate precursor of heme); protoporphyrin ferrochelatase (FECH) inserts Fe2+ into PPIX to generate heme. Biosynthesis of heme is limited by the need for optimized expression levels of multiple genes, complex regulatory mechanisms, and low enzymatic activity; these problems need to be overcome in metabolic engineering to improve heme synthesis.

Results: We report a heme biosensor-guided screening strategy using the heme-responsive protein HrtR to regulate tcR expression in Escherichia coli, providing a quantifiable link between the intracellular heme concentration and cell survival in selective conditions (i.e., the presence of tetracycline). This system was used for rapid enrichment screening of heme-producing strains from a library with random ribosome binding site (RBS) variants and from a FECH mutant library. Through up to four rounds of iterative evolution, strains with optimal RBS intensities for the combination of hemBCDEFY were screened; we obtained a PPIX titer of 160.8 mg/L, the highest yield yet reported in shaken-flask fermentation. A high-activity FECH variant was obtained from the saturation mutagenesis library. Fed-batch fermentation of strain SH20C, harboring the optimized hemBCDEFY and the FECH mutant, produced 127.6 mg/L of heme.

Conclusion: We sequentially improved the multigene biosynthesis pathway of PPIX and performed in vivo directed evolution of FECH, based on a heme biosensor, which demonstrated the effectiveness of the heme biosensor-based pathway optimization strategy and broadens our understanding of the mechanism of heme synthesis.

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