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ISSN Approved Journal || eISSN: 2582-8185 || CODEN: IJSRO2 || Impact Factor 8.2 || Google Scholar and CrossRef Indexed

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Research and review articles are invited for publication in January 2026 (Volume 18, Issue 1)

Advanced methanotrophic bioreactor design for efficient bioremediation of hydrogen sulfide (H₂S) And Volatile Organic Compounds (Vocs): Integrating genetic engineering and industrial scalability

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  • Advanced methanotrophic bioreactor design for efficient bioremediation of hydrogen sulfide (H₂S) And Volatile Organic Compounds (Vocs): Integrating genetic engineering and industrial scalability

Shad Abdelmoumen Serroune 1, *, Jan Sopaheluwakan 1, Khasani D 2, Francois Duclerc 3 and Frantz Liebert 4

1 Nanogeios Lab, Incheon, South Korea. 

2 University of Gadjah Mada (UGM), Yogyakarta, Indonesia, and Nanogeios Lab, Incheon, South Korea.

3 Nanogeios Lab Paris, France.

4 Nanogeios Lab Germany, Germany.

Research Article

International Journal of Science and Research Archive, 2025, 14(01), 830-881

Article DOI: 10.30574/ijsra.2025.14.1.0153

DOI url: https://doi.org/10.30574/ijsra.2025.14.1.0153

Received on 08 December 2024; revised on 14 january 2025; accepted on 17 january 2025

The convergence of advanced microbial biotechnology and metabolic engineering has facilitated groundbreaking advancements in bioremediation. This study presents the engineered Methylomicrobium buryatense strain 5GB1C-RO1, optimized for the simultaneous removal of hydrogen sulfide (H₂S) and volatile organic compounds (VOCs) within a two-stage methanotrophic bioreactor system.

Through precise CRISPR/Cas9-mediated genome editing, critical metabolic pathways for sulfide oxidation (SQR, FCCAB, SOXABXYZ) and VOC degradation (alkB, adhP, todC1C2BA) were integrated, achieving catalytic efficiencies exceeding 3.2 × 10⁷ M⁻¹s⁻¹ and substrate conversion rates above 450 nmol min⁻¹ mg⁻¹ protein. The strain demonstrates exceptional robustness under industrial conditions, maintaining 95% pollutant removal efficiency at H₂S concentrations up to 1000 ppm and VOC concentrations exceeding 500 ppm.

The innovative bioreactor system incorporates enhanced gas-liquid mass transfer mechanisms, achieving mass transfer coefficients (kLa) exceeding 300 h⁻¹ and enabling stable operation for over 1000 continuous hours. Experimental results confirm the system's capacity for pollutant mineralization, generating methane-rich biogas (>95% CH₄) and high-protein microbial biomass (>85%), which are valuable for energy and agricultural applications.

This integrated bioremediation approach not only reduces reliance on chemical scrubbing and flaring but also supports circular economy principles by transforming waste gases into renewable resources. The technology provides a scalable, sustainable, and cost-effective solution to mitigate industrial emissions while addressing environmental and regulatory challenges. The findings highlight the potential of combining advanced genetic engineering with innovative bioreactor design to redefine industrial pollutant management and resource recovery.

Methylomicrobium buryatense 5GB1C-RO1 strain; CRISPR/Cas9 genome editing; Methanotrophic bioreactor; Hydrogen sulfide oxidation; VOC degradation; Biogas purification

https://journalijsra.com/sites/default/files/fulltext_pdf/IJSRA-2025-0153.pdf

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Shad Abdelmoumen Serroune, Jan Sopaheluwakan, Khasani D, Francois Duclerc and Frantz Liebert. Advanced methanotrophic bioreactor design for efficient bioremediation of hydrogen sulfide (H₂S) And Volatile Organic Compounds (Vocs): Integrating genetic engineering and industrial scalability. International Journal of Science and Research Archive, 2025, 14(01), 830-881. Article DOI: https://doi.org/10.30574/ijsra.2025.14.1.0153.

Copyright © 2025 Author(s) retain the copyright of this article. This article is published under the terms of the Creative Commons Attribution Liscense 4.0

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