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Shen X, He S, Takaya Y, Yakata T, Yoshida K, Kobayashi H. Ureolysis-Driven Microbially Induced Carbonate Precipitation by a Facultatively Anaerobic Thermophilic Bacterium Under High-Temperature and Anaerobic Conditions. Microorganisms 2025; 13:1102. [PMID: 40431275 PMCID: PMC12113697 DOI: 10.3390/microorganisms13051102] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Abstract] [Key Words] [Grants] [Track Full Text] [Download PDF] [Figures] [Journal Information] [Subscribe] [Scholar Register] [Received: 04/14/2025] [Revised: 05/07/2025] [Accepted: 05/08/2025] [Indexed: 05/29/2025] Open
Abstract
Microbially induced carbonate precipitation (MICP) is the precipitation of CaCO3 crystals, induced by microbial metabolic activities such as ureolysis. Various applications of MICP have been proposed as innovative biocementation techniques. This study aimed to verify the feasibility of ureolysis-driven MICP applications in deep-subsurface environments (e.g., enhanced oil recovery and geological carbon sequestration). To this end, we screened sludge collected from a high-temperature anaerobic digester for facultatively anaerobic thermophilic bacteria possessing ureolytic activity. Then, we examined the ureolysis-driven MICP using a representative isolate, Bacillus haynesii strain SK1, under aerobic, anoxic, and strict anaerobic conditions at 30 °C, 40 °C, and 50 °C. All cultures showed ureolysis and the formation of insoluble precipitates. Fourier transform infrared spectroscopy analysis revealed precipitates comprising CaCO3 at 30 °C, 40 °C, and 50 °C under aerobic conditions but only at 50 °C under anoxic and strict anaerobic conditions, suggesting efficient MICP at 50 °C. Interestingly, an X-ray diffraction analysis indicated that calcium carbonate crystals that were produced under aerobic conditions were in the form of calcite, while those that were produced under anoxic and strict anaerobic conditions at 50 °C were mostly in the form of vaterite. Thus, we demonstrated ureolysis-driven MICP under high-temperature and O2-depletion conditions, suggesting the potential of MICP applications in deep-subsurface environments.
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Affiliation(s)
- Xiulun Shen
- Department of Systems Innovation, School of Engineering, The University of Tokyo, Tokyo 113-8656, Japan; (X.S.); (S.H.); (Y.T.)
| | - Sijia He
- Department of Systems Innovation, School of Engineering, The University of Tokyo, Tokyo 113-8656, Japan; (X.S.); (S.H.); (Y.T.)
| | - Yutaro Takaya
- Department of Systems Innovation, School of Engineering, The University of Tokyo, Tokyo 113-8656, Japan; (X.S.); (S.H.); (Y.T.)
| | - Tomoyoshi Yakata
- Shinko Holdings Corporation, Tokyo 106-0041, Japan; (T.Y.)
- Engineering for Sustainable Development of Subsurface Environments (Shinko Holdings Corporation) Social Cooperation Program, Department of Systems Innovation, School of Engineering, The University of Tokyo, Tokyo 113-8656, Japan
| | - Kotaro Yoshida
- Shinko Holdings Corporation, Tokyo 106-0041, Japan; (T.Y.)
- Engineering for Sustainable Development of Subsurface Environments (Shinko Holdings Corporation) Social Cooperation Program, Department of Systems Innovation, School of Engineering, The University of Tokyo, Tokyo 113-8656, Japan
| | - Hajime Kobayashi
- Department of Systems Innovation, School of Engineering, The University of Tokyo, Tokyo 113-8656, Japan; (X.S.); (S.H.); (Y.T.)
- Engineering for Sustainable Development of Subsurface Environments (Shinko Holdings Corporation) Social Cooperation Program, Department of Systems Innovation, School of Engineering, The University of Tokyo, Tokyo 113-8656, Japan
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Zhu Q, Gao K, Sun Q, Ma C, Luo Y, Niu Z, Liu Y, Yang Z. Upcycling of nutrients from kitchen waste: Integration of anaerobic digestion system and microbial protein production system. JOURNAL OF ENVIRONMENTAL MANAGEMENT 2024; 369:122411. [PMID: 39232317 DOI: 10.1016/j.jenvman.2024.122411] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Abstract] [Key Words] [MESH Headings] [Track Full Text] [Subscribe] [Scholar Register] [Received: 06/19/2024] [Revised: 08/11/2024] [Accepted: 08/31/2024] [Indexed: 09/06/2024]
Abstract
To upcycle the nutrients from kitchen waste (KW), an integrated system consisting of anaerobic digestion (AD) reactor and microbial protein (MP) production reactor was established in this study. The subsystem I (AD system) demonstrated an efficient bio-energy production (282.37 mL CH4/g VS), with 553.54 mg/L of NH4+-N remained in the digestate. The subsystem II (MP production system) utilized the nitrogenous constituents of the digestate, with 2.04 g/L MP production. In order to further enhance the recovery efficiency, C/N ratio in the subsystem II was studied. NH4+-N recovery efficiency was 23.08% higher after C/N ratio optimization along with 0.24 g/L increment on MP production. Over 0.7 g/L of essential amino acids was obtained, according with the qualitative necessary for the feeds. Also, the key enzyme abundance of CO2 releasing and amino acid biosynthesis was obviously increased with max. 55.21%. Meanwhile, the integrated system was profitable via a simplified economic assessment.
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Affiliation(s)
- Qile Zhu
- College of Chemical Engineering, Beijing University of Chemical Technology, Beijing, 100029, China; Department of Environmental Engineering, Peking University, Beijing 100871, China
| | - Kangjian Gao
- College of Chemical Engineering, Beijing University of Chemical Technology, Beijing, 100029, China
| | - Qi Sun
- College of Chemical Engineering, Beijing University of Chemical Technology, Beijing, 100029, China
| | - Chuan Ma
- College of Chemical Engineering, Beijing University of Chemical Technology, Beijing, 100029, China
| | - Yuxing Luo
- College of Chemical Engineering, Beijing University of Chemical Technology, Beijing, 100029, China
| | - Zijin Niu
- Beijing Scinor Membrane Technology Co., Ltd., Beijing, 100083, China
| | - Yanping Liu
- College of Chemical Engineering, Beijing University of Chemical Technology, Beijing, 100029, China.
| | - Ziyi Yang
- College of Chemical Engineering, Beijing University of Chemical Technology, Beijing, 100029, China.
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Feng X, Kazama D, Sato K, Kobayashi H. Complete genome sequence of an Achromobacter xylosoxidans strain H1_3_1 isolated from a hybrid biological-inorganic system reactor. Microbiol Resour Announc 2023; 12:e0061223. [PMID: 37889011 PMCID: PMC10652924 DOI: 10.1128/mra.00612-23] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 07/09/2023] [Accepted: 09/21/2023] [Indexed: 10/28/2023] Open
Abstract
We report the complete genome of Achromobacter xylosoxidans strain H1_3_1, which was isolated from a reactor of a hybrid biological-inorganic system. The complete genome comprised 7,071,873 bp, including 6,428 codings, 10 rRNA, and 70 tRNA, with 67.4% G + C content.
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Affiliation(s)
- Xiang Feng
- Department of Systems Innovation, Graduate School of Engineering, The University of Tokyo, Tokyo, Japan
| | - Daichi Kazama
- Department of Systems Innovation, Graduate School of Engineering, The University of Tokyo, Tokyo, Japan
| | - Kozo Sato
- Department of Systems Innovation, Graduate School of Engineering, The University of Tokyo, Tokyo, Japan
- Frontier Research Center for Energy and Resources (FRCER), Graduate School of Engineering, The University of Tokyo, Tokyo, Japan
| | - Hajime Kobayashi
- Department of Systems Innovation, Graduate School of Engineering, The University of Tokyo, Tokyo, Japan
- Frontier Research Center for Energy and Resources (FRCER), Graduate School of Engineering, The University of Tokyo, Tokyo, Japan
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Feng X, Kazama D, Sato K, Kobayashi H. Complete genome sequence of Mycolicibacterium mageritense strain H4_3_1 isolated from a hybrid biological-inorganic system reactor. Microbiol Resour Announc 2023; 12:e0023023. [PMID: 37787567 PMCID: PMC10586093 DOI: 10.1128/mra.00230-23] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 03/24/2023] [Accepted: 08/25/2023] [Indexed: 10/04/2023] Open
Abstract
We report the complete genome of Mycolicibacterium mageritense strain H4_3_1, which was isolated from a reactor of a hybrid biological-inorganic system. This genome will provide useful information about hydrogen-oxidizing bacteria as well as mycolicibacteria in non-host environments.
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Affiliation(s)
- Xiang Feng
- Department of Systems Innovation, Graduate School of Engineering, University of Tokyo, Tokyo, Japan
| | - Daichi Kazama
- Department of Systems Innovation, Graduate School of Engineering, University of Tokyo, Tokyo, Japan
| | - Kozo Sato
- Department of Systems Innovation, Graduate School of Engineering, University of Tokyo, Tokyo, Japan
- Frontier Research Center for Energy and Resources (FRCER), Graduate School of Engineering, University of Tokyo, Tokyo, Japan
| | - Hajime Kobayashi
- Department of Systems Innovation, Graduate School of Engineering, University of Tokyo, Tokyo, Japan
- Frontier Research Center for Energy and Resources (FRCER), Graduate School of Engineering, University of Tokyo, Tokyo, Japan
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Feng X, Kazama D, He S, Nakayama H, Hayashi T, Tokunaga T, Sato K, Kobayashi H. Enrichment of halotolerant hydrogen-oxidizing bacteria and production of high-value-added chemical hydroxyectoine using a hybrid biological-inorganic system. Front Microbiol 2023; 14:1254451. [PMID: 37711693 PMCID: PMC10497747 DOI: 10.3389/fmicb.2023.1254451] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Figures] [Journal Information] [Subscribe] [Scholar Register] [Received: 07/07/2023] [Accepted: 08/15/2023] [Indexed: 09/16/2023] Open
Abstract
Hybrid biological-inorganic (HBI) systems show great promise as CO2 conversion platforms combining CO2 fixation by hydrogen-oxidizing bacteria (HOB) with water splitting. Herein, halotolerant HOB were enriched using an HBI system with a high-ionic-strength medium containing 180 mM phosphate buffer to identify new biocatalysts. The reactors were inoculated with samples from saline environments and applied with a voltage of 2.0 V. Once an increase in biomass was observed with CO2 consumption, an aliquot of the medium was transferred to a new reactor. After two successive subcultures, Achromobacter xylosoxidans strain H1_3_1 and Mycolicibacterium mageritense strain H4_3_1 were isolated from the reactor media. Genome sequencing indicated the presence of genes for aerobic hydrogen-oxidizing chemolithoautotrophy and synthesis of the compatible solute hydroxyectoine in both strains. Furthermore, both strains produced hydroxyectoine in the reactors under the high-ionic-strength condition, suggesting the potential for new HBI systems using halotolerant HOB to produce high-value-added chemicals.
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Affiliation(s)
- Xiang Feng
- Department of Systems Innovation, Graduate School of Engineering, The University of Tokyo, Tokyo, Japan
| | - Daichi Kazama
- Department of Systems Innovation, Graduate School of Engineering, The University of Tokyo, Tokyo, Japan
| | - Sijia He
- Department of Systems Innovation, Graduate School of Engineering, The University of Tokyo, Tokyo, Japan
| | - Hideki Nakayama
- Department of Environmental Science, Graduate School of Fisheries and Environmental Sciences, Nagasaki University, Nagasaki, Japan
| | - Takeshi Hayashi
- Department of Regional Studies and Humanities, Faculty of Education and Human Studies, Akita University, Akita, Japan
| | - Tomochika Tokunaga
- Department of Environment Systems, Graduate School of Frontier Sciences, The University of Tokyo, Chiba, Japan
| | - Kozo Sato
- Department of Systems Innovation, Graduate School of Engineering, The University of Tokyo, Tokyo, Japan
- Frontier Research Center for Energy and Resource, Graduate School of Engineering, The University of Tokyo, Tokyo, Japan
| | - Hajime Kobayashi
- Department of Systems Innovation, Graduate School of Engineering, The University of Tokyo, Tokyo, Japan
- Frontier Research Center for Energy and Resource, Graduate School of Engineering, The University of Tokyo, Tokyo, Japan
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