Design and tailoring of an artificial DNA scaffolding system for efficient lycopene synthesis using zinc-finger-guided assembly

Author:

Xu Xian1,Tian Liqing2,Tang Susu3,Xie Chengjia4,Xu Jiali2,Jiang Ling5

Affiliation:

1. grid.260474.3 0000 0001 0089 5711 School of Food Science and Pharmaceutical Engineering Nanjing Normal University 210046 Nanjing Jiangsu Province China

2. grid.412022.7 0000 0000 9389 5210 State Key Laboratory of Materials-Oriented Chemical Engineering, College of Biotechnology and Pharmaceutical Engineering Nanjing Tech University 211816 Nanjing Jiangsu Province China

3. grid.412022.7 0000 0000 9389 5210 School of Pharmaceutical Sciences Nanjing Tech University Nanjing Jiangsu Province China

4. grid.495898.1 0000 0004 1762 6798 School of Chemical Engineering Yangzhou Polytechnic Institute 225127 Yangzhou Jiangsu Province China

5. grid.412022.7 0000 0000 9389 5210 College of Food Science and Light Industry Nanjing Tech University 211816 Nanjing Jiangsu Province China

Abstract

Abstract A highly efficient lycopene production system was constructed by assembling enzymes fused to zinc-finger motifs on DNA scaffolds in vitro and in vivo. Three key enzymes of the lycopene synthesis pathway, geranylgeranyl diphosphate synthase, phytoene synthase, and phytoene desaturase, were fused with zinc-finger proteins, expressed and purified. Recombinant plasmids of the pS series containing DNA scaffolds that the zinc-finger proteins can specifically bind to were constructed. In the in vitro system, the production efficiency of lycopene was improved greatly after the addition of the scaffold plasmid pS231. Subsequently, the plasmid pET-AEBI was constructed and introduced into recombinant Escherichia coli BL21 (DE3) for expression, together with plasmids of the pS series. The lycopene production rate and content of the recombinant strain pp231 were higher than that of all strains carrying the DNA scaffold and the control. With the addition of cofactors and substrates in the lycopene biosynthesis pathway, the lycopene yield of pp231 reached 632.49 mg/L at 40 h, representing a 4.7-fold increase compared to the original recombinant strain pA1A3. This DNA scaffold system can be used as a platform for the construction and production of many biochemicals synthesized via multi-enzyme cascade reactions.

Funder

Joint Fund of the National Natural Science Foundation of China

National Natural Science Foundation of China

Jiangsu Synergetic Innovation Center for Advanced Bio-Manufacture

Natural Science Foundation of Jiangsu Province

Publisher

Oxford University Press (OUP)

Subject

Applied Microbiology and Biotechnology,Biotechnology,Bioengineering

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