1. Detection and optimization of microbial expression systems for extracellular production and purification of Ca 2+ -responsive phase-changing annexin fusions.
- Author
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Li J, Wu B, Ji Y, Zhang S, Ge Y, and Fan J
- Subjects
- Humans, Bacillus subtilis genetics, Bacillus subtilis enzymology, Bacillus subtilis metabolism, Bacillus subtilis chemistry, Green Fluorescent Proteins genetics, Green Fluorescent Proteins biosynthesis, Green Fluorescent Proteins chemistry, Green Fluorescent Proteins metabolism, Green Fluorescent Proteins isolation & purification, Gene Expression, Annexin A1 genetics, Annexin A1 chemistry, Annexin A1 metabolism, Annexin A1 isolation & purification, Annexin A1 biosynthesis, Bacillus cereus genetics, Bacillus cereus enzymology, Bacillus cereus metabolism, Type C Phospholipases genetics, Type C Phospholipases chemistry, Type C Phospholipases metabolism, Type C Phospholipases isolation & purification, Type C Phospholipases biosynthesis, Bacterial Proteins genetics, Bacterial Proteins chemistry, Bacterial Proteins isolation & purification, Bacterial Proteins biosynthesis, Bacterial Proteins metabolism, Saccharomycetales, Recombinant Fusion Proteins genetics, Recombinant Fusion Proteins isolation & purification, Recombinant Fusion Proteins chemistry, Recombinant Fusion Proteins biosynthesis, Recombinant Fusion Proteins metabolism, Escherichia coli genetics, Escherichia coli metabolism, Calcium metabolism, Calcium chemistry
- Abstract
Previously, we identified the human annexin A1 as a purification tag for column-free purification with gentler calcium-responsive precipitation. In this work, we used the annexin A1 tagged green fluorescent protein constructs for detecting extracellular production in Escherichia coli, Bacillus subtilis, and Pichia pastoris, and identified that the leaderless fusion protein was transported extracellularly in E. coli with supply of additives including Triton X-100. The coexpressed enzymes, culture compositions, and induction conditions in E. coli extracellular expression systems were optimized. With coexpression of phospholipase C from Bacillus cereus and addition of 0.2 % Triton X-100 after induction for 60 h at 28 °C, the annexin A1 tagged green fluorescent protein and 5-aminolevulinate dehydratase from E. coli were overexpressed and purified from lysogeny broth by precipitation with 20 mM Ca
2+ and redissolution with 25 mM EDTA with the acceptable protein purities and recoveries. The silica binding peptide was fused to the annexin A1 tagged fluorescent protein fusion for successive affinity precipitation and purification. With incubation of the specific protease, the released tag-free protein displayed higher purity via on-resin cleavage than that through cleavage of the free fusion protein. The tandem tag is applicable for two-step purification of small or large amounts of other fusion proteins in the culture and recovery of tag-free proteins at low cost., Competing Interests: Declaration of competing interest The authors declare no conflict of interest., (Copyright © 2024 Elsevier Inc. All rights reserved.)- Published
- 2025
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