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Engineered E. coli using formic acid and CO2 as a C1-refinery platform strain

Date:
September 18, 2018
Source:
The Korea Advanced Institute of Science and Technology (KAIST)
Summary:
一个研究小组开发了一个工程大肠有限公司li strain that converts formic acid and CO2 to pyruvate and produces cellular energy from formic acid through reconstructed one-carbon pathways. The strategy described in this study provides a new platform for producing value-added chemicals from one-carbon sources.
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A research group at KAIST has developed an engineeredE. colistrain that converts formic acid and CO2to pyruvate and produces cellular energy from formic acid through reconstructed one-carbon pathways. The strategy described in this study provides a new platform for producing value-added chemicals from one-carbon sources.

Formic acid is a carboxylic acid composed of one carbon. Formic acid was produced from CO2by the chemical method. Recently, the C1 Gas Refinery R&D Center has successfully developed a biological process that produces formic acid from carbon monoxide for the first time. Formic acid is in a liquid state when at room temperature and atmospheric pressure. In addition, it is chemically stable and less toxic, thus, easy to store and transport. Therefore, it can be used as an alternative carbon source in the microbial fermentation process. In order to produce value-added chemicals using formic acid, a metabolic pathway that converts formic acid into cellular molecules composed of multiple carbons is required. However, a metabolic pathway that can efficiently convert formic acid into cellular molecules has not been developed. This acted as an obstacle for the production of value-added chemicals using formic acid

A research group of Ph.D. student Junho Bang and Distinguished Professor Sang Yup Lee of the Department of Chemical and Biomolecular Engineering at the Korea Advanced Institute of Science and Technology (KAIST) addressed this issue. This study, entitled "Assimilation of Formic Acid and CO2by Engineered Escherichia coli Equipped with Reconstructed One-Carbon Assimilation Pathways," has been published online in theProceedings of the National Academy of Sciences (PNAS)on September 18.

There has been increasing interest in utilizing formic acid as an alternative carbon source for the production of value-added chemicals. This research reports the development of an engineeredE. colistrain that can convert formic acid and CO2to pyruvate and produce cellular energy from formic acid through the reconstructed one-carbon pathways.

The metabolic pathway that efficiently converts formic acid and CO2into pyruvate was constructed by the combined use of the tetrahydrofolate cycle and reverse glycine cleavage reaction. The tetrahydrofolate cycle was reconstructed by utilizing Methylobacterium extorquens formate-THF ligase, methenyl-THF cyclohydrolase, and methylene-THF dehydrogenase. The glycine cleavage reaction was reversed by knocking out the repressor gene (gcvR) and overexpressing the gcvTHP genes that encode enzymes related with the glycine cleavage reaction. Formic acid and CO2conversion to pyruvate was increased via metabolic engineering of theE. colistrain equipped with the one-carbon assimilation pathway.

此外,为了减少葡萄糖consumption and increase formic acid consumption, Candida boidnii formate dehydrogenase was additionally introduced to construct a cellular energy producing pathway from formic acid. This reduces glucose consumption and increases formic acid consumption.

The reconstructed one-carbon pathways can supply cellular molecules and cellular energies from the formic acid and CO2. Thus, the engineeredE. colistrain equipped with the formic acid and CO2assimilation pathway and cellular energy producing pathway from formic acid showed cell growth from formic acid and CO2without glucose. Cell growth was monitored and 13C isotope analysis was performed to confirmE. coligrowth from the formic acid and CO2. It was found that the engineeredE. colistrain sustained cell growth from the formic acid and CO2without glucose.

Professor Lee said, "To construct the C1-refinery system, a platform strain that can convert one-carbon materials to higher carbon materials needs to be developed. In this report, a one-carbon pathway that can efficiently convert formic acid and CO2to pyruvate was developed and a cellular energy producing pathway from formic acid was introduced. This resulted in an engineeredE. colistrain that can efficiently utilize formic acid as a carbon source while glucose consumption was reduced. The reconstructed one-carbon pathways in this research will be useful for the construction of the C1-refinery system."

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Story Source:

Materialsprovided byThe Korea Advanced Institute of Science and Technology (KAIST).Note: Content may be edited for style and length.


Journal Reference:

  1. Junho Bang, Sang Yup Lee.Assimilation of formic acid and CO2 by engineered Escherichia coli equipped with reconstructed one-carbon assimilation pathways.Proceedings of the National Academy of Sciences, 2018; 201810386 DOI:10.1073/pnas.1810386115

Cite This Page:

The Korea Advanced Institute of Science and Technology (KAIST). "Engineered E. coli using formic acid and CO2 as a C1-refinery platform strain." ScienceDaily. ScienceDaily, 18 September 2018. .
The Korea Advanced Institute of Science and Technology (KAIST). (2018, September 18). Engineered E. coli using formic acid and CO2 as a C1-refinery platform strain.ScienceDaily. Retrieved July 20, 2023 from www.koonmotors.com/releases/2018/09/180918110925.htm
The Korea Advanced Institute of Science and Technology (KAIST). "Engineered E. coli using formic acid and CO2 as a C1-refinery platform strain." ScienceDaily. www.koonmotors.com/releases/2018/09/180918110925.htm (accessed July 20, 2023).

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