Advances in the Research of Methanotroph in Wetland

Article Preview

Abstract:

Methanotroph uses methane as a sole carbon and energy source, plays an important role in the balance of atmospheric methane and also has potential values in environmental management. Based on the taxonomy of methanotroph, a preliminary conclusion could be drawn on the mechanism of methane oxidation, its distribution in ecosystems, and influencing factors to study methanotroph, as well as the application of methanotroph in environmental management.In this paper we also analysis the current existing problems of methanotroph in the research of wetland soil, and pointed out the strengthened aspects of research for the future work in this field.

You might also be interested in these eBooks

Info:

Periodical:

Advanced Materials Research (Volumes 955-959)

Pages:

271-275

Citation:

Online since:

June 2014

Export:

Price:

Permissions CCC:

Permissions PLS:

Сopyright:

© 2014 Trans Tech Publications Ltd. All Rights Reserved

Share:

Citation:

* - Corresponding Author

[1] Y.B. Tian, G.Y. Song and T.C. Ai: Chinese J. Ecol. Vol. 21 (2002), p.36.

Google Scholar

[2] R.J. Cicerone and R.S. Oremland: Global Biogeochem. Cycles Vol. 2 (1988), p.299.

Google Scholar

[3] Q. Yue, G.J. Zhang and Z. Wang: Geogr. Res. Vol. 31 (2012), p.1559.

Google Scholar

[4] J.M. Duxbury: Fert. Res. Vol. 38 (1994), p.151.

Google Scholar

[5] R.C. Harriss, D.I. Sebacher and F.P. Day: Nature Vol. 297 (1982), p.673.

Google Scholar

[6] A. Mosier, D. Schimel, D. Valentine, K. Bronson and W. Parton: Nature Vol. 350 (1991), p.330.

Google Scholar

[7] T.M. Hoehler, M.J. Alperin, D.B. Albert and C.S. Martens: Global Biogeochem. Cycles Vol. 8 (1994), p.451.

Google Scholar

[8] R. Whittenbury, J.F. Wilkinson and K.C. Phillips: J. Gen. Microbiol. Vol. 61 (1970), p.205.

Google Scholar

[9] S.N. Dedysh, M. Derakshani and W. Liesack: Appl. Environ. Microbiol. Vol. 67 (2001), p.4850.

Google Scholar

[10] L. Bodrossy, E.M. Holmes, A.J. Holmes, K. L Kovács and J.C. Murrel: Arch. Microbiol. Vol. 168 (1997), p.493.

Google Scholar

[11] J.P. Bowman, L.I. Sly and E. Stackebrandt: Int. J. Syst. Bacteriol. Vol. 45 (1995), p.182.

Google Scholar

[12] J.P. Bowman, S.A. McCammon and J.H. Skerratt: Microbiology (Reading, Engl. ) Vol. 143 (1997), p.1451.

Google Scholar

[13] S. Ingvar, B. Gunnar and T. Anders: Soil Biol. Biochem. Vol. 32 (2000), p.1025.

Google Scholar

[14] N. Ward, Ø Larsen, J. Sakwa, L. Bruseth, H. Khouri, A.S. Durkin, G. Dimitrov, L. Jiang, D. Scanlan, K.H. Kang, M. Lewis, K.E. Nelson, B. Methé, M. Wu, J.F. Heidelberg, I.T. Paulsen, D. Fouts, J. Ravel, H. Tettelin, Q.H. Ren, T. Read, R.T. DeBoy, R. Seshadri, S.L. Salzberg, H.B. Jensen, N.K. Birkeland, W.C. Nelson, R.J. Dodson, S.H. Grindhaug, I. Holt, I. Eidhammer, I. Jonasen, S. Vanaken, T. Utterback, T.V. Feldblyum, C.M. Fraser, J.R. Lillehaug and J.A. Eisen: PLOS Biol. Vol. 2 (2004).

DOI: 10.1371/journal.pbio.0020303

Google Scholar

[15] J. Bowman, The Family V. Methylocystaceae fam. nov, In Bergey's Manual of Systematic Bacteriology, 2nd ed., Vol. 2 The Proteobacteria, Part C, The Alpha-, Beta-, Delta- and Epsilonproteobacteria, DJ Brenner, NR Krieg, JT Staley, GM Garrity (ed), Springer, New York (2005).

DOI: 10.1007/0-387-29298-5

Google Scholar

[16] X.Y. Liu, W. Wu, E.T. Wang, B. Zhang, J. Macdermott and W.X. Chen: Int. J. Syst. Evol. Microbiol. Vol. 61 (2011), p.334.

Google Scholar

[17] A.J. Holmes, A. Costello, M.E. Lidstrom and J.C. Murrell: FEMS Microbiol. Lett. Vol. 132 (1995), p.203.

Google Scholar

[18] D.W. Choi, R.C. Kunz, E.S. Boyd, J.D. Semrau, J.I. Han, J.A. Zahn, J.M. Boyd, A.M. de la Mora and A.A. DiSpirito: J. Bacteriol. Vol. 185 (2003), p.5755.

DOI: 10.1128/jb.185.19.5755-5764.2003

Google Scholar

[19] Y.X. Zhang, J.Y. Xin, J. Dong and C.G. Xia: Adv. Mater. Res. Vol. 160-162 (2011), p.91.

Google Scholar

[20] C. Scheutz and P. Kjeldsen: J. Environ. Qual. Vol. 33 (2004), p.72.

Google Scholar

[21] W. X Ding and Z.C. Cai: Chinese J. Eco. Agric. Vol. 11 (2003), p.94.

Google Scholar

[22] J. Mei, L. Wang, D. Han and Y.C. Zhao: J. Environ. Sci. (China) Vol. 23 (2011), p.868.

Google Scholar

[23] Y. Chen, M.G. Dumont, N.P. McNamara, P.M. Chamberlain, L. Bodrossy, N.S. Pavese and J.C. Murrell: Environ. Microbiol. Vol. 10 (2008), p.446.

Google Scholar

[24] Y.M. Serkebaeva, Y. Kim, W. Liesack and S.N. Dedysh: PLOS ONE Vol. 8 (2013), p. e63994.

Google Scholar

[25] L. Silvia, R. Piccolo, S. Simoncini and R. Pastorelli: EQA Vol. 6(2011), p.29.

Google Scholar

[26] H.P. Horz, M.T. Yimga and W. Liesack: Appl. Environ. Microbiol. Vol. 67 (2001), p.4177.

Google Scholar

[27] O.E. Håvelsrud, T.H. Haverkamp, T. Kristensen, K.S. Jakobsen and A.G. Rike: BMC Microbiol. Vol. 11 (2011), p.221.

Google Scholar

[28] J.D. Semrau, W. Gallagher, S. Yoon, J. Im, A. Dispirito, S.W. Lee, S. Hartsel and M.T. Mcellistrem: U.S. Patent 20, 120, 034, 594. (2012).

Google Scholar

[29] J. Li, Y.R. Liu, J.Z. He and Y.M. Zheng: Acta Scien. Circum. Vol. 33 (2013), p.959.

Google Scholar

[30] Y. Zheng, Y.M. Zheng and J.Z. He: Ecol. Environ. Sci. Vol. 21 (2012), p.737.

Google Scholar

[31] S. H, Qin, X.Y. Li, X. Li, J.F. Xie, Z.C. Su and H.W. Zhang: Chinese J. Ecol. Vol. 31 (2012), p.1724.

Google Scholar

[32] J. Zhao, J.Y. Li, Y. Zhou, Y.T. Bai and J.L. Yu: Adv. Earth Sci. Vol. 27 (2012), p.651.

Google Scholar

[33] T.N. Zhang, J.Y. Xin, X.F. Zhang, L.L. Chen, J.Z. Liang and C.G. Xia: J. Mol. Catal. Vol. 27 (2013), p.192.

Google Scholar

[34] X. Yang, K.W. Xu, H. Liu, C. Ren, Y.P. Tang and X. Huang: Chin. J. Appl. Environ. Biol. Vol. 19 (2013), p.478.

Google Scholar