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Published on: October 31, 2019
Codon-Restrained Method for Both Eliminating and Creating Intragenic Bacterial Promoters
Dominic Y Logel1, Ellina Trofimova1, Paul R Jaschke1
1School of Natural Sciences, ARC Centre of Excellence in Synthetic Biology, Macquarie University, Sydney 2109, New South Wales, Australia.
Synthetic biology needs genetic sequences without internal promoters. We developed CORPSE to remove these promoters and iCORPSE to create new ones, enabling precise genetic engineering.
Area of Science:
- Synthetic Biology
- Molecular Biology
- Genetic Engineering
Background:
- Synthetic biology applications require refactored genetic sequences free of internal regulatory elements.
- Intragenic promoters, including cryptic promoters, can constitute a significant portion of predicted promoters in organisms like *Escherichia coli*.
- Promoter activity relies on the structural interaction between DNA core bases and sigma (σ) factors.
Purpose of the Study:
- To present a novel system, codon-restrained promoter silencing (CORPSE), for the removal of intragenic promoters from coding sequences.
- To introduce an inverted system, iCORPSE, capable of generating highly active promoters within gene sequences without affecting gene function.
Main Methods:
- CORPSE system exploits the DNA-σ factor structural relationship to disrupt embedded σ70 promoters.
- Minimal synonymous codon changes are utilized to maintain the integrity of the coding sequence.
- The iCORPSE system inverts the CORPSE strategy to engineer promoter activity.
Main Results:
- The CORPSE system effectively eliminates intragenic promoter activity by altering key nucleotides involved in σ factor interaction.
- The iCORPSE system successfully creates strong promoters within gene sequences while preserving the original gene's functional output.
- Both systems demonstrate precise control over transcriptional activity with minimal sequence modification.
Conclusions:
- CORPSE and iCORPSE offer powerful tools for genetic sequence refactoring in synthetic biology.
- These systems enable the precise removal or insertion of promoter elements, facilitating advanced genetic circuit design.
- The ability to engineer promoter activity without compromising gene function opens new avenues for biological engineering.
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