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Magnetic nanoparticle-mediated isolation of functional bacteria in a complex microbial community

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Magnetic nanoparticle-mediated isolation of functional bacteria in a complex microbial community. / Zhang, Dayi; Berry, James P.; Zhu, Di et al.
In: ISME Journal, Vol. 9, No. 3, 01.03.2015, p. 603-614.

Research output: Contribution to Journal/MagazineJournal articlepeer-review

Harvard

Zhang, D, Berry, JP, Zhu, D, Wang, Y, Chen, Y, Jiang, B, Huang, S, Langford, H, Li, G, Davison, PA, Xu, J, Aries, E & Huang, WE 2015, 'Magnetic nanoparticle-mediated isolation of functional bacteria in a complex microbial community', ISME Journal, vol. 9, no. 3, pp. 603-614. https://doi.org/10.1038/ismej.2014.161

APA

Zhang, D., Berry, J. P., Zhu, D., Wang, Y., Chen, Y., Jiang, B., Huang, S., Langford, H., Li, G., Davison, P. A., Xu, J., Aries, E., & Huang, W. E. (2015). Magnetic nanoparticle-mediated isolation of functional bacteria in a complex microbial community. ISME Journal, 9(3), 603-614. https://doi.org/10.1038/ismej.2014.161

Vancouver

Zhang D, Berry JP, Zhu D, Wang Y, Chen Y, Jiang B et al. Magnetic nanoparticle-mediated isolation of functional bacteria in a complex microbial community. ISME Journal. 2015 Mar 1;9(3):603-614. Epub 2014 Sept 5. doi: 10.1038/ismej.2014.161

Author

Zhang, Dayi ; Berry, James P. ; Zhu, Di et al. / Magnetic nanoparticle-mediated isolation of functional bacteria in a complex microbial community. In: ISME Journal. 2015 ; Vol. 9, No. 3. pp. 603-614.

Bibtex

@article{92180fa84df84220a8a98df291523519,
title = "Magnetic nanoparticle-mediated isolation of functional bacteria in a complex microbial community",
abstract = "Although uncultured microorganisms have important roles in ecosystems, their ecophysiology in situ remains elusive owing to the difficulty of obtaining live cells from their natural habitats. In this study, we employed a novel magnetic nanoparticle-mediated isolation (MMI) method to recover metabolically active cells of a group of previously uncultured phenol degraders, Burkholderiales spp., from coking plant wastewater biosludge; five other culturable phenol degraders-Rhodococcus sp., Chryseobacterium sp. and three different Pseudomonas spp.-were also isolated from the same biosludge using traditional methods. The kinetics of phenol degradation by MMI-recovered cells (MRCs) was similar to that of the original sludge. Stable isotope probing (SIP) and pyrosequencing of the 16S rRNA from the 'heavy' DNA ((13)C-DNA) fractions indicated that Burkholderiales spp. were the key phenol degraders in situ in the biosludge, consistent with the results of MRCs. Single-cell Raman micro-spectroscopy was applied to probe individual bacteria in the MRCs obtained from the SIP experiment and showed that 79% of them were fully (13)C-labelled. Biolog assays on the MRCs revealed the impact of various carbon and nitrogen substrates on the efficiency of phenol degradation in the wastewater treatment plant biosludge. Specifically, hydroxylamine, a metabolite of ammonia oxidisation, but not nitrite, nitrate or ammonia, inhibited phenol degradation in the biosludge. Our results provided a novel insight into the occasional abrupt failure events that occur in the wastewater treatment plant. This study demonstrated that MMI is a powerful tool to recover live and functional cells in situ from a complex microbial community to enable further characterisation of their physiology.",
author = "Dayi Zhang and Berry, {James P.} and Di Zhu and Yun Wang and Yin Chen and Bo Jiang and Shi Huang and Harry Langford and Guanghe Li and Davison, {Paul A.} and Jian Xu and Eric Aries and Huang, {Wei E.}",
year = "2015",
month = mar,
day = "1",
doi = "10.1038/ismej.2014.161",
language = "English",
volume = "9",
pages = "603--614",
journal = "ISME Journal",
issn = "1751-7362",
publisher = "Nature Publishing Group",
number = "3",

}

RIS

TY - JOUR

T1 - Magnetic nanoparticle-mediated isolation of functional bacteria in a complex microbial community

AU - Zhang, Dayi

AU - Berry, James P.

AU - Zhu, Di

AU - Wang, Yun

AU - Chen, Yin

AU - Jiang, Bo

AU - Huang, Shi

AU - Langford, Harry

AU - Li, Guanghe

AU - Davison, Paul A.

AU - Xu, Jian

AU - Aries, Eric

AU - Huang, Wei E.

PY - 2015/3/1

Y1 - 2015/3/1

N2 - Although uncultured microorganisms have important roles in ecosystems, their ecophysiology in situ remains elusive owing to the difficulty of obtaining live cells from their natural habitats. In this study, we employed a novel magnetic nanoparticle-mediated isolation (MMI) method to recover metabolically active cells of a group of previously uncultured phenol degraders, Burkholderiales spp., from coking plant wastewater biosludge; five other culturable phenol degraders-Rhodococcus sp., Chryseobacterium sp. and three different Pseudomonas spp.-were also isolated from the same biosludge using traditional methods. The kinetics of phenol degradation by MMI-recovered cells (MRCs) was similar to that of the original sludge. Stable isotope probing (SIP) and pyrosequencing of the 16S rRNA from the 'heavy' DNA ((13)C-DNA) fractions indicated that Burkholderiales spp. were the key phenol degraders in situ in the biosludge, consistent with the results of MRCs. Single-cell Raman micro-spectroscopy was applied to probe individual bacteria in the MRCs obtained from the SIP experiment and showed that 79% of them were fully (13)C-labelled. Biolog assays on the MRCs revealed the impact of various carbon and nitrogen substrates on the efficiency of phenol degradation in the wastewater treatment plant biosludge. Specifically, hydroxylamine, a metabolite of ammonia oxidisation, but not nitrite, nitrate or ammonia, inhibited phenol degradation in the biosludge. Our results provided a novel insight into the occasional abrupt failure events that occur in the wastewater treatment plant. This study demonstrated that MMI is a powerful tool to recover live and functional cells in situ from a complex microbial community to enable further characterisation of their physiology.

AB - Although uncultured microorganisms have important roles in ecosystems, their ecophysiology in situ remains elusive owing to the difficulty of obtaining live cells from their natural habitats. In this study, we employed a novel magnetic nanoparticle-mediated isolation (MMI) method to recover metabolically active cells of a group of previously uncultured phenol degraders, Burkholderiales spp., from coking plant wastewater biosludge; five other culturable phenol degraders-Rhodococcus sp., Chryseobacterium sp. and three different Pseudomonas spp.-were also isolated from the same biosludge using traditional methods. The kinetics of phenol degradation by MMI-recovered cells (MRCs) was similar to that of the original sludge. Stable isotope probing (SIP) and pyrosequencing of the 16S rRNA from the 'heavy' DNA ((13)C-DNA) fractions indicated that Burkholderiales spp. were the key phenol degraders in situ in the biosludge, consistent with the results of MRCs. Single-cell Raman micro-spectroscopy was applied to probe individual bacteria in the MRCs obtained from the SIP experiment and showed that 79% of them were fully (13)C-labelled. Biolog assays on the MRCs revealed the impact of various carbon and nitrogen substrates on the efficiency of phenol degradation in the wastewater treatment plant biosludge. Specifically, hydroxylamine, a metabolite of ammonia oxidisation, but not nitrite, nitrate or ammonia, inhibited phenol degradation in the biosludge. Our results provided a novel insight into the occasional abrupt failure events that occur in the wastewater treatment plant. This study demonstrated that MMI is a powerful tool to recover live and functional cells in situ from a complex microbial community to enable further characterisation of their physiology.

U2 - 10.1038/ismej.2014.161

DO - 10.1038/ismej.2014.161

M3 - Journal article

C2 - 25191996

VL - 9

SP - 603

EP - 614

JO - ISME Journal

JF - ISME Journal

SN - 1751-7362

IS - 3

ER -