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Updated: Jul 12, 2025

Versatile CO2 Transformations into Complex Products: A One-pot Two-step Strategy
Published on: November 9, 2019
H2-driven reduction of CO2 to formate using bacterial plasma membranes
Mohammad Moniruzzaman1, Hung Khac Nguyen2, Yu Kiyasu3
1Mitsui Chemicals, Inc.-Carbon Neutral Research Center (MCI-CNRC), Kyushu University, Japan; International Institute for Carbon-Neutral Energy Research (I2CNER), Kyushu University, Japan.
Researchers developed a novel method for efficient formate production using bacterial plasma membranes. This natural nanodevice converts carbon dioxide and hydrogen into formate with high selectivity and stability over multiple uses.
Area of Science:
- Biocatalysis
- Nanotechnology
- Microbial Biochemistry
Background:
- Bacterial membranes can limit catalytic efficiency by controlling substance entry.
- Isolated bacterial plasma membranes offer potential as natural nanodevices for biocatalysis.
- Oxygen-stable [NiFe]hydrogenase and [Mo]formate dehydrogenase are key enzymes for CO2 conversion.
Purpose of the Study:
- To present a model system using isolated bacterial plasma membranes for efficient formate production.
- To investigate the catalytic efficiency and selectivity of a natural nanodevice for H2-driven CO2 conversion.
- To assess the stability of immobilized bacterial plasma membranes for formate synthesis.
Main Methods:
- Isolation of plasma membranes from Citrobacter sp. S-77.
- Integration of [NiFe]hydrogenase and [Mo]formate dehydrogenase into a natural catalytic nanodevice.
- Immobilization of membranes with multi-walled carbon nanotubes and encapsulation in gellan-gum hydrogel beads.
Main Results:
- The natural nanodevice catalyzed H2-driven conversion of CO2 to formate with a rate of 817 mmol·L−1·gprotein−1·h−1.
- The process demonstrated high selectivity and efficiency under mild conditions (30 °C, pH 7.0, 0.1 MPa).
- Immobilized catalyst remained stable over 10 repeated uses, indicating robustness.
Conclusions:
- Bacterial plasma membranes can function as efficient and selective natural nanodevices for formate production.
- Immobilization strategies enhance the stability and reusability of the biocatalyst.
- This study reports the first successful application of bacterial plasma membranes for efficient H2 and CO2 conversion to formate.
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