1.Application of nanopore sequencing in environmental microbiology research.
Zhonghong LI ; Caili DU ; Yanfeng LIN ; Lieyu ZHANG ; Xiaoguang LI ; Jiaxi LI ; Suhua CHEN
Chinese Journal of Biotechnology 2022;38(1):5-13
The development of high-throughput sequencing techniques enabled a deeper and more comprehensive understanding of environmental microbiology. Specifically, the third-generation sequencing techniques represented by nanopore sequencing have greatly promoted the development of environmental microbiology research due to its advantages such as long sequencing reads, fast sequencing speed, real-time monitoring of sequencing data, and convenient machine carrying, as well as no GC bias and no PCR amplification requirement. This review briefly summarized the technical principle and characteristics of nanopore sequencing, followed by discussing the application of nanopore sequencing techniques in the amplicon sequencing, metagenome sequencing and whole genome sequencing of environmental microorganisms. The advantages and challenges of nanopore sequencing in the application of environmental microbiology research were also analyzed.
Environmental Microbiology
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High-Throughput Nucleotide Sequencing
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Metagenome
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Nanopore Sequencing
;
Nanopores
2.Advances in biodegradation of petroleum hydrocarbons.
Chinese Journal of Biotechnology 2021;37(8):2765-2778
Petroleum hydrocarbon pollutants are difficult to be degraded, and bioremediation has received increasing attention for remediating the hydrocarbon polluted area. This review started by introducing the interphase adaptation and transport process of hydrocarbon by microbes. Subsequently, the advances made in the identification of hydrocarbon-degrading strains and genes as well as elucidation of metabolic pathways and underpinning mechanisms in the biodegradation of typical petroleum hydrocarbon pollutants were summarized. The capability of wild-type hydrocarbon degrading bacteria can be enhanced through genetic engineering and metabolic engineering. With the rapid development of synthetic biology, the bioremediation of hydrocarbon polluted area can be further improved by engineering the metabolic pathways of hydrocarbon-degrading microbes, or through design and construction of synthetic microbial consortia.
Bacteria/genetics*
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Biodegradation, Environmental
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Hydrocarbons
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Petroleum
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Petroleum Pollution/analysis*
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Soil Microbiology
;
Soil Pollutants
3.Environmental risks of antibiotics in soil and the related bioremediation technologies.
Yujie HE ; Kaiping ZHOU ; Yixuan RAO ; Rong JI
Chinese Journal of Biotechnology 2021;37(10):3487-3504
Antibiotics are widely used and prevalently distributed in the environment. The issue of antibiotic resistance genes has posed a huge threat to the global public health. Soil is an important sink of antibiotics in the environment. Antibiotic exposure may introduce adverse effects on soil organisms, and bring indirect but potential risks to human health. Therefore, it is urgent to take actions to remediate antibiotics-contaminated soil. This review summarized effects of antibiotics on phenotype growth of plants, physiological characteristics and community structure of animals, composition and structure of microbial communities, and transmission of antibiotic resistance genes among organisms in soil. Additionally, the potential and prospects of employing antibiotic-resistant soil plants, animals, microorganisms, and their combinations to treat antibiotics-contaminated soil were illustrated. Last but not least, the unaddressed issues in this area were proposed, which may provide insights into relevant research directions in the future.
Animals
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Anti-Bacterial Agents/pharmacology*
;
Biodegradation, Environmental
;
Drug Resistance, Microbial/genetics*
;
Humans
;
Soil
;
Soil Microbiology
;
Soil Pollutants
4.Advances in bioremediation of polycyclic aromatic hydrocarbons contaminated soil.
Meilin ZHENG ; Yinghao ZHAO ; Lili MIAO ; Xiyan GAO ; Zhipei LIU
Chinese Journal of Biotechnology 2021;37(10):3535-3548
Polycyclic aromatic hydrocarbons (PAHs) are a class of persistent pollutants that are widely distributed in the environment. Due to their stable structure and poor degradability, PAHs exhibit carcinogenic, teratogenic, and mutagenic toxicity to the ecological environment and organisms, thus increasing attentions have been paid to their removals and remediation. Green, safe and economical technologies are widely used in the bioremediation of PAHs-contaminated soil. This article summarizes the present status of PAHs pollution in soil of China from the aspects of origin, migration, fate, and pollution level. Meanwhile, the types of microorganisms and plants capable of degrading PAHs, as well as the underlying mechanisms, are summarized. The features of three major bioremediation technologies, i.e., microbial remediation, phytoremediation, and joint remediation, are compared. Analysis of the interaction mechanisms between plants and microorganisms, selection and cultivation of stress-resistant strains and plants, as well as safety and efficacy evaluation of practical applications, are expected to become future directions in this field.
Biodegradation, Environmental
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Polycyclic Aromatic Hydrocarbons/toxicity*
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Soil
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Soil Microbiology
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Soil Pollutants
5.Advances in the bioaugmentation-assisted remediation of petroleum contaminated soil.
Jin ZHENG ; Yali FU ; Quanwei SONG ; Jiacai XIE ; Shuangjun LIN ; Rubing LIANG
Chinese Journal of Biotechnology 2021;37(10):3622-3635
Bioremediation is considered as a cost-effective, efficient and free-of-secondary-pollution technology for petroleum pollution remediation. Due to the limitation of soil environmental conditions and the nature of petroleum pollutants, the insufficient number and the low growth rate of indigenous petroleum-degrading microorganisms in soil lead to long remediation cycle and poor remediation efficiency. Bioaugmentation can effectively improve the biodegradation efficiency. By supplying functional microbes or microbial consortia, immobilized microbes, surfactants and growth substrates, the remediation effect of indigenous microorganisms on petroleum pollutants in soil can be boosted. This article summarizes the reported petroleum-degrading microbes and the main factors influencing microbial remediation of petroleum contaminated soil. Moreover, this article discusses a variety of effective strategies to enhance the bioremediation efficiency, as well as future directions of bioaugmentation strategies.
Biodegradation, Environmental
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Petroleum
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Soil
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Soil Microbiology
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Soil Pollutants
6.Advances in bioremediation of hydrocarbon-contaminated soil.
Lei ZHONG ; Jinwu QING ; Hongyun CHEN ; Gaoyuan LI ; Guanyi CHEN ; Yuru SUN ; Jinlei LI ; Yingjin SONG ; Beibei YAN
Chinese Journal of Biotechnology 2021;37(10):3636-3652
With continuous improvement of people's living standards, great efforts have been paid to environmental protection. Among those environmental issues, soil contamination by petroleum hydrocarbons has received widespread concerns due to the persistence and the degradation difficulty of the pollutants. Among the various remediation technologies, in-situ microbial remediation enhancement technologies have become the current hotspot because of its low cost, environmental friendliness, and in-situ availability. This review summarizes several in-situ microbial remediation technologies such as bioaugmentation, biostimulation, and integrated remediation, as well as their engineering applications, providing references for the selection of in-situ bioremediation technologies in engineering applications. Moreover, this review discusses future research directions in this area.
Biodegradation, Environmental
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Humans
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Hydrocarbons
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Petroleum
;
Soil
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Soil Microbiology
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Soil Pollutants
7.A polycyclic aromatic hydrocarbon degrading strain and its potential of degrading phenanthrene in various enhanced systems.
Congyang LIU ; Meini WANG ; Jiameng ZHANG ; Youfen QIAN ; Kun XIAO ; Rennü WANG ; Wei DONG ; Tao PAN
Chinese Journal of Biotechnology 2021;37(10):3696-3707
Polycyclic aromatic hydrocarbons (PAHs) are a class of common environmental pollutants that pose threats to human health. In this study, a mesophilic bacterial strain CFP312 (grown at 15-37 °C, optimal at 30 °C) was isolated from PAHs-contaminated soil samples. It was identified as Moraxella sp. by morphological observation, physiological and biochemical test, and 16S rRNA gene phylogeny analysis. This is the first reported PAHs degrading strains in Moraxella. Degradation analysis showed that 84% and 90% of the loaded phenanthrene (400 mg/L) were degraded within 48 h and 60 h, and the degradation rates reached 1.21 and 1.29 mg/(L·h), respectively. During the degradation of phenanthrene, phenanthrene-3,4-dihydrodiol was detected as an intermediate. Based on this, it was proposed that double oxygenation at the positions 3 and 4 of phenanthrene was the first step of biodegradation. Adaptability of strain CFP312 to different enhanced phenanthrene-degradation systems was tested in aqueous-organic system, micellar aqueous system, and cloud point system. Strain CFP312 showed good adaptability to different systems. In addition, the bacterium can rapidly degrade the phenanthrene in contaminated soil in slurry-aqueous system, indicating great potential in environmental remediation.
Biodegradation, Environmental
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Humans
;
Phenanthrenes
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Polycyclic Aromatic Hydrocarbons
;
RNA, Ribosomal, 16S/genetics*
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Soil Microbiology
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Soil Pollutants
8.Severe Acute Respiratory Syndrome Coronavirus 2 (SARS-CoV-2) Contamination of High-touch Surfaces in Field Settings.
Sahar GHOLIPOUR ; Mahnaz NIKAEEN ; Reza MOHAMMADI MANESH ; Shima ABOUTALEBIAN ; Zahra SHAMSIZADEH ; Elahe NASRI ; Hossein MIRHENDI
Biomedical and Environmental Sciences 2020;33(12):925-929
9.Effects of Comamonas testosteroni on PAHs degradation and bacterial community structure in Leymus chinensis rhizosphere soil.
Qiao WANG ; Rui ZHENG ; Xueting SUN ; Ziwei JIANG ; Fanghui YANG ; Qian LU ; Jizhe CUI
Chinese Journal of Biotechnology 2020;36(12):2657-2673
To investigate the degradation of polycyclic aromatic hydrocarbons (PAHs) and the changes of rhizosphere microorganisms in the rhizosphere soil of Leymus chinensis during the remediation of PAHs contaminated soil by Comamonas testosteroni (C.t)-assisted Leymus chinensis, we evaluated the removal of PAHs in the rhizosphere of Leymus chinensis using gas chromatography-mass spectrometry (GC-MS), analyzed the bacterial community and the diversity in Leymus chinensis rhizosphere soil by high-throughput sequencing technology, characterized the correlation among PAHs degradation and bacterial community components performing redundancy analysis (RDA) and network analysis, and predicted PAHs degradation potential via PICRUSt software in this paper. The degradation of PAHs in the rhizosphere of Leymus chinensis was promoted, the abundance and diversity of bacteria and the correlation among bacteria and PAHs were changed, and the degradation potential of PAHs in Leymus chinensis rhizosphere soil was enhanced in the later stage of phytoremediation (60-120 d) due to the incorporation of C.t. The accelerated degradation of three PAHs (Nap, Phe, BaP) was accompanied by the differ abundance and correlation of Proteobacteria (Sphingomonas, MND1, Nordella), Actinomycetes (Rubrobacter, Gaiella), Acidobacteria (RB41) and Bacteroides (Flavobacterium) affected by C.t. The results provide new insight into the microorganism choices for microbial assisted plant remediation of soil PAHs and the mechanisms of enhanced PAHs degradation via the combination of Comamonas testosteroni engineering bacteria and plants.
Biodegradation, Environmental
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Comamonas testosteroni/genetics*
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Polycyclic Aromatic Hydrocarbons/analysis*
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Rhizosphere
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Soil
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Soil Microbiology
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Soil Pollutants
10.Distribution of Microbiota in Fine Particulate Matter Particles in Guangzhou, China.
Shi Rui DONG ; Ya Jing HAN ; Jing WU ; Cheng Li ZENG ; Ke Hui ZHU ; Xiao Jing CHEN ; Yu Mei LIU ; Xiao Qian ZOU ; Shao Ling ZHENG ; Zi Hao WEN ; Dan Dan LIU ; Yao WANG ; Xiu Xia HUANG ; Xiu Ben DU ; Jian Lei HAO ; Huan Yu WANG ; Shu GUO ; Chun Xia JING ; Guang YANG
Biomedical and Environmental Sciences 2020;33(5):306-314
Objective:
High PM concentration is the main feature of increasing haze in developing states, but information on its microbial composition remains very limited. This study aimed to determine the composition of microbiota in PM in Guangzhou, a city located in the tropics in China.
Methods:
In Guangzhou, from March 5 to 10 , 2016, PM was collected in middle volume air samplers for 23 h daily. The 16S rDNA V4 region of the PM sample extracted DNA was investigated using high-throughput sequence.
Results:
Among the Guangzhou samples, , , , , and were the dominant microbiota accounting for more than 90% of the total microbiota, and was the dominant gram-negative bacteria, accounting for 21.30%-23.57%. We examined the difference in bacterial distribution of PM between Beijing and Guangzhou at the genus level; was found in both studies, but was only detected in Guangzhou.
Conclusion
In conclusion, the diversity and specificity of microbial components in Guangzhou PM were studied, which may provide a basis for future pathogenicity research in the tropics.
Air Microbiology
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Air Pollutants
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analysis
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Bacteria
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classification
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isolation & purification
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China
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Cities
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Environmental Monitoring
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Microbiota
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Particle Size
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Particulate Matter
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analysis
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RNA, Bacterial
;
analysis
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RNA, Ribosomal, 16S
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analysis

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