Mechanism of Ammonium Chloride Enhanced Microbial Degradation of Coal: A Metagenomic Perspective
DOI:
https://doi.org/10.54097/ngfyx765Keywords:
Coal, Anaerobic Degradation, Metagenomics, Exogenous NitrogenAbstract
Microbial anaerobic degradation of coal matrix to produce methane is an important way to realize green development and clean utilization of coal. However, the extremely high carbon-nitrogen ratio of coal leads to the limitation of microbial metabolic activity. In this study, a comparative experiment was set up between the basic inorganic salt medium (control) and the addition of 1.5 g/L ammonium chloride (treatment). Using metagenomic sequencing technology, the regulation of nitrogen source addition on coal degradation process was deeply analyzed from the two dimensions of species succession and metabolic functional gene abundance. The results showed that the community diversity was significantly improved, and the addition of nitrogen sources broke the nutritional bottleneck, and the Shannon index of the microbial community in the control group was significantly increased to 5.1. PCoA showed that the PC1 interpretation rate of the two groups of community structure was 75.72 %. Species composition analysis showed that the abundance of core degrading bacteria (Clostridium, Bacillus) and methanogens (Methanosarcina, Methanothrix) increased significantly in the treatment group. STAMP difference analysis showed that the Xylene degradation and Naphthalene degradation pathways directly related to coal skeleton degradation in the treatment group were significantly activated. At the same time, the enhancement of oxidative phosphorylation, cofactor biosynthesis and quorum sensing pathway provide enough energy support and enzyme system guarantee for the cleavage of coal macromolecules. This study elucidates the molecular mechanism of nitrogen source enhanced coal biotransformation, which has important reference value for optimizing the production technology of underground coalbed methane project.
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References
Jia ZJ, Lin BQ. How to achieve the first step of the carbon-neutrality 2060 target in China: The coal substitution perspective. Energy 2021;233.http://dx.doi. org/10.1016/j. energy. 2021.121179.
[2] Xia DP, Gu PT, Chen ZH, Chen LY, Wei GQ, Wang ZZ, et al. Control Mechanism of Microbial Degradation on the Physical Properties of a Coal Reservoir. Processes 2023;11(5).http:// dx.doi. org/ 10.3390/pr11051347.
[3] Yang YH, Pan JN, Hou QL, Wang K, Wang XL. Stress degradation mechanism of coal macromolecular structure: Insights from molecular dynamics simulation and quantum chemistry calculations. Fuel 2021;303.http://dx. doi.org/10. 1016/j. fuel.2021.121258.
[4] Lyu SF, Xiao YH, Chen LC, Xiong ZK, Wang SS. Enhancement of Coalbed Methane via Nitrogen Injection in a Coal Mining Area: A Laboratory and Field Study. Journal of Energy Engineering 2023;149(6).http:// dx.doi.org/10. 1061/ jleed9. Eyeng-4936.
[5] Piao DM, Song YC, Oh GG, Kim DH, Bae BU. Contribution of Yeast Extract, Activated Carbon, and an Electrostatic Field to Interspecies Electron Transfer for the Bioelectrochemical Conversion of Coal to Methane. Energies 2019;12(21).http:// dx. doi.org/10.3390/en12214051.
[6] Culligan EP, Sleator RD. Editorial: From Genes to Species: Novel Insights from Metagenomics. Frontiers in Microbiology 2016;7.http://dx.doi.org/10.3389/fmicb.2016.01181.
[7] Pulikova EP, Kotsarev VI, Demin KA, Shuvaev EG, Nemtseva AA, Gorovtsov A, et al. Synergistic interaction between nitrifying bacteria and Enterobacter ludwigii enhances PAHs biodegradation in coal mine dump soils. Journal of Environmental Management 2025;394.http://dx.doi. org/ 10.1016/j.jenvman.2025.127601.
[8] Wentzel A, Ellingsen TE, Kotlar HK, Zotchev SB, Throne-Holst M. Bacterial metabolism of long-chain n-alkanes. Applied Microbiology and Biotechnology 2007;76(6):1209-21.http://dx.doi.org/10.1007/s00253-007-1119-1.
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