1.The relationship between methane production metabolic flux and microorganisms in a microbial electrolytic cell coupled anaerobic digestion.
Hongzhou LIU ; Sixia YANG ; Nan WANG ; Haibo LIU ; Jianchang LI
Chinese Journal of Biotechnology 2022;38(5):1889-1902
In this study, voltage was used as a disturbance factor to investigate the relationship between microbial community and methane (CH4) production flux in a microbial electrolytic cell coupled anaerobic digestion (MEC-AD). Metabolic flux analysis (MFA) was used to explore the relationship between the CH4 metabolic flux produced and the microbes. The results showed that both methane production flux and hydrogen production flux changed significantly upon voltage disturbance, while the voltage disturbance had little effect on acetic acid production flux. The maximum CH4 production flux under 0.6 V disturbance was 0.522±0.051, which increased by 77% and 32%, respectively, compared with that of the control group under 1.0 V (0.295±0.013) and under 1.4 V (0.395±0.029). In addition, an average of 15.7%±2.9% of H2 (flux) was used to reduce CO2 to produce CH4 and acetic acid, and an average of 27.7%±6.9% of acetic acid (flux) was converted to CH4. Moreover, the abundance of Lachnospiraceae significantly affected the flux of acetic acid. The flux of CH4 production is positively correlated with the abundances of Petrimonas, Syntrophomonas, Blvii28, and Acinetobacter, and negatively correlated with the abundances of Tuzzerella and Sphaerochaeta. The species that affected the flux of H2 and CH4 were similar, mostly belonging to Bacteroides, Clostridium, Pseudomonas and Firmicutes. Furthermore, the interspecies interaction is also an important factor affecting the MEC-AD methanogenesis flux.
Acetates
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Anaerobiosis
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Bioreactors
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Electrolysis
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Methane
2.Advances in biomolecular machine: methane monooxygenases.
Jixue LU ; Shizhen WANG ; Baishan FANG
Chinese Journal of Biotechnology 2015;31(7):1015-1023
Methane monooxygenases (MMO), regarded as "an amazing biomolecular machine", catalyze the oxidation of methane to methanol under aerobic conditions. MMO catalyze the oxidation of methane elaborately, which is a novel way to catalyze methane to methanol. Furthermore, MMO can inspire the biomolecular machine design. In this review, we introduced MMO including structure, gene and catalytic mechanism. The history and the taxonomy of MMO were also introduced.
Catalysis
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Methane
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metabolism
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Methanol
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metabolism
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Oxygenases
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metabolism
3.Methanol dehydrogenase, a key enzyme of one-carbon metabolism: a review.
Liwen FAN ; Yu WANG ; Ping ZHENG ; Jibin SUN
Chinese Journal of Biotechnology 2021;37(2):530-540
One-carbon compounds such as methanol and methane are cheap and readily available feedstocks for biomanufacturing. Oxidation of methanol to formaldehyde catalyzed by methanol dehydrogenase (MDH) is a key step of microbial one-carbon metabolism. A variety of MDHs that depend on different co-factors and possess different enzymatic properties have been discovered from native methylotrophs. Nicotinamide adenine dinucleotide (NAD)-dependent MDHs are widely used in constructing synthetic methylotrophs, whereas this type of MDH usually suffers from low methanol oxidation activity and low affinity to methanol. Consequently, methanol oxidation is considered as a rate-limiting step of methanol metabolism in synthetic methylotrophs. To accelerate methanol oxidation, thereby improving the methanol utilization efficiency of synthetic methylotrophs, massive researches have focused on discovery and engineering of MDHs. In this review, we summarize the ongoing efforts to discover, characterize, and engineer various types of MDHs as well as the applications of MDHs in synthetic methylotrophs. Directed evolution of MDH and construction of multi-enzyme complexes are described in detail. In the future prospective part, we discuss the potential strategies of growth-coupled protein evolution and rational protein design for acquisition of superior MDHs.
Alcohol Oxidoreductases/genetics*
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Carbon
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Methane
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Methanol
4.Bioconversion of methane by metabolically engineered methanotrophs.
Chinese Journal of Biotechnology 2021;37(3):816-830
Due to abundant availability of shale gas and biogas, methane has been considered as one of the most potential carbon sources for industrial biotechnology. Methanotrophs carrying the native methane monooxygenase are capable of using methane as a sole energy and carbon source, which provides a novel strategy for reducing greenhouse gas emission and substituting edible substrates used in bioconversion processes. With the rapid development of genetic engineering tools and biosynthesis techniques, various strategies for improving the efficiency of methane bioconversion have been achieved to produce a variety of commodity bio-based products. Herein, we summarize several important aspects related with methane utilization and metabolic engineering of methanotrophs, including the modification of methane oxidation pathways, the construction of efficient cell factories, and biosynthesis of chemicals and fuels. Finally, the prospects and challenges of the future development of methane bioconversion are also discussed.
Biofuels
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Biotechnology
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Metabolic Engineering
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Methane
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Oxidation-Reduction
5.Unreliability of Breath Methane as a Candidate Indicator of Functional Bowel Disorders.
Krzysztof JONDERKO ; Agata GABRIEL-JASNIOK ; Malgorzata SZYMSZAL ; Anna KASICKA-JONDERKO ; Barbara BLONSKA-FAJFROWSKA
Gut and Liver 2008;2(3):180-185
BACKGROUND/AIMS: The aim of this study was to examine the reproducibility of methane and hydrogen in exhaled air breath after a per-oral load of lactulose. METHODS: Methane was present in the exhaled breath of 21 of 50 healthy subjects recruited by advertisement. Three methane breath tests were performed in 12 women (aged 23.6+/-0.5 years, mean+/-SEM) after they consumed 10 g of lactulose dissolved in 300 ml of water. Short- and medium-term reproducibilities were assessed by paired examinations taken 3 and 17 days (median) apart, respectively. RESULTS: High values of coefficients of variation for paired examinations (CV(p)) indicated a poor short-term reproducibility of parameters characterizing either the methane or hydrogen excretion in breath air: CV(p) values of the maximum net increments over baseline in methane (max CH4_net), and in hydrogen (max H2_net), were 34% and 41%, respectively. Moreover, the reproducibility consistently deteriorated with increasing time gap between repeat measurements (CV(p): 60% for max CH4_net and 64% for max H2_net). CONCLUSIONS: The low reproducibility of parameters characterizing quantitative methane breath excretion suggests that caution is necessary when judging the clinical usefulness of the methane breath test after a per-oral lactulose load for the purpose of diagnosing and classifying functional bowel disorders.
Breath Tests
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Female
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Humans
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Hydrogen
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Lactulose
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Methane
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Water
6.Highly efficient methane assimilation through Embden-Meyerhof-Parnas pathway in Methylomicrobium alcaliphilum 20Z.
Jinyu CUI ; Lu YAO ; Xiaole SUN ; Marina G KALYUZHNAYA ; Song YANG
Chinese Journal of Biotechnology 2014;30(1):43-54
In order to understand metabolic functions essential for methane assimilation, we investigate dribulose monophosphate pathway and adjacent pathways in gammaproteobacterial Methylomicrobium alcaliphilum 20Z by using combined approaches of RNA-seq, LC-MS, and 13C-labeled techniques. The absolute quantification of metabolome showed that the concentrations of intermediates, such as glucose-6-phosphate and 2-dehydro-3-deoxy-phosphogluconate, involved in Entner-Doudoroff (EDD) pathway were (150.95 +/- 28.75) micromol/L and below the limit of detection of mass spectrometry. In contrast, fructose-1, 6-bisphosphate, glyceraldehyde-3-phosphate/dihydroxyacetone and phosphoenolpyruvate in Embden-Meyerhof-Parnas (EMP) pathway had significantly higher concentrations with (1 142.02 +/- 302.88) micromol/L, (1 866.76 +/- 388.55) micromol/L and (3 067.57 +/- 898.13) micromol/L, respectively. 13C-labeling experiment further indicated that the enrichment of [3-13C1]-pyruvate involved in EMP pathway was 4-6 fold higher than [1,13C1]-pyruvate in EDD pathway in a dynamic course. Moreover, gene expression profile showed that the expression levels of genes in EMP pathway (e.g. fbaA, tpiA, gap and pykA) were 2 479.2, 2 493.9, 2 274.6 and 1 846.0, respectively, but gene expressionlevels in EDD pathway (e.g. pgi, eda and edd) were only 263.8, 341.2 and 225.4, respectively. Overall our current results demonstrated that EMP pathway was the main route for methane assimilation in M. alcaliphilum 20Z. This discovery challenged our understanding of methane assimilation pathway in gammaproteobacterial methanotrophic bacteria, and further provided an important insight for efficient methane biocatalysis in the future.
Glycolysis
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Industrial Microbiology
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Methane
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metabolism
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Methylococcaceae
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metabolism
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Pyruvic Acid
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metabolism
7.Research progresses of methanotrophs and methane monooxygenases.
Bing HAN ; Tao SU ; Xin LI ; Xinhui XING
Chinese Journal of Biotechnology 2008;24(9):1511-1519
Methanotrophs are a group of bacteria capable of utilizing methane as the sole carbon and energy source for their anabolism and catabolism. Since methanotrophs contain the unique enzymes of methane monooxygenases (MMOs), which can catalyze the oxidation of methane and short-chain alkanes and alkenes, they have potential applications in carbon recycle of nature and industrial biotechnology. Therefore, methanotrophs have been paid much more attention by the researchers in recent 20 years. In this paper, the latest progresses in studies of methanotrophs and MMOs were reviewed, including taxonomy, function and distribution of methanotrophs, and structure, function and genetic engineering of MMOs. The future research directions of methanotrophs and MMOs as well as their applications were also discussed.
Methane
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metabolism
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Methylococcaceae
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enzymology
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genetics
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Oxidation-Reduction
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Oxygenases
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metabolism
8.Microorganisms in the typical anaerobic digestion system of organic solid wastes: a review.
Xingsheng YANG ; Shang WANG ; Qing HE ; Zhujun WANG ; Zhaojing ZHANG ; Chengying JIANG ; Liping MA ; Xianwei LIU ; Baolan HU ; Yongmei LI ; Ye DENG
Chinese Journal of Biotechnology 2021;37(10):3425-3438
The facultative anaerobic and strict anaerobic microorganisms enriched and acclimated during the anaerobic digestion process are crucial for the efficiency of the anaerobic digestion system. Most of the problems encountered during running anaerobic digestion processes could be effectively improved via stimulation of microbial metabolic activity. Benefited from the rapid development of microbiome techniques, deeper insights into the microbial diversity in anaerobic digestion systems, e.g. the microbe-microbe interactions and microbe-environment interactions, have been gained. A complex and intricate metabolic network exists in the anaerobic digestion system of solid organic wastes. However, little is known about these interactions and the underlying mechanisms. This review briefly summarized the representative interactions between microbial communities during anaerobic digestion process discovered to date. In addition, typical issues encountered during the anaerobic digestion of solid organic wastes and how microbes can tackle and alleviate these issues were discussed. Finally, future priorities on microbiome research were proposed based on present contribution of microbiome analysis in anaerobic digestion system.
Anaerobiosis
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Bioreactors
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Methane
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Microbial Interactions
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Microbiota
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Solid Waste
9.Advances of structure, function, and catalytic mechanism of methyl-coenzyme M reductase.
Zhenli LAI ; Gangfeng HUANG ; Liping BAI
Chinese Journal of Biotechnology 2021;37(12):4147-4157
Methanogens are unique microorganisms for methane production and the main contributor of the biogenic methane in atmosphere. Methyl-coenzyme M reductase (Mcr) catalyzes the last step of methane production in methanogenesis and the first step of methane activation in anaerobic oxidation of methane. The genes encoding this enzyme are highly conserved and are widely used as a marker in the identification and phylogenetic study of archaea. There has been a longstanding interest in its unique cofactor F430 and the underpinning mechanisms of enzymatic cleavage of alkane C-H bond. The recent breakthroughs of high-resolution protein and catalytic-transition-state structures further advanced the structure-function study of Mcr. In particular, the recent discovery of methyl-coenzyme M reductase-like (Mcr-like) enzymes that activates the anaerobic degradation of non-methane alkanes has attracted much interest in the molecular mechanisms of C-H activation without oxygen. This review summarized the advances on function-structure-mechanism study of Mcr/Mcr-like enzymes. Additionally, future directions in anaerobic oxidation of alkanes and greenhouse-gas control using Mcr/Mcr-like enzymes were proposed.
Archaea/metabolism*
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Methane
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Oxidation-Reduction
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Oxidoreductases/metabolism*
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Phylogeny
10.Slow Transit Constipation Associated With Excess Methane Production and Its Improvement Following Rifaximin Therapy: A Case Report.
Uday C GHOSHAL ; Deepakshi SRIVASTAVA ; Abhai VERMA ; Asha MISRA
Journal of Neurogastroenterology and Motility 2011;17(2):185-188
Constipation, a common problem in gastroenterology practice, may result from slow colonic transit. Therapeutic options for slow transit constipations are limited. Excessive methane production by the methanogenic gut flora, which is more often found in patients with constipation, slows colonic transit. Thus, reduction in methane production with antibiotic treatment directed against methanogenic flora of the gut may accelerate colonic transit resulting in improvement in constipation. However, there is not much data to prove this hypothesis. We, therefore, report a patient with slow transit constipation associated with high methane production both in fasting state and after ingestion of glucose, whose constipation improved after treatment with non-absorbable antibiotic, rifaximin, which reduced breath methane values.
Breath Tests
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Colon
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Constipation
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Eating
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Fasting
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Gastroenterology
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Glucose
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Humans
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Hydrogen
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Irritable Bowel Syndrome
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Methane
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Rifamycins