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Abundance and Diversity of RuBisCO Genes Responsible for CO_2 Fixation in Arid Soils of Northwest China 被引量:8

Abundance and Diversity of RuBisCO Genes Responsible for CO_2 Fixation in Arid Soils of Northwest China
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摘要 Arid soils where water and nutrients are scarce occupy over 30% of the Earth's total surface. However, the microbial autotrophy in the harsh environments remains largely unexplored. In this study, the abundance and diversity of autotrophic bacteria were investigated, by quantifying and profiling the large subunit genes of ribulose-1,5-bisphosphate carboxylase/oxygenase(Ru Bis CO) form I(cbb L) responsible for CO2 fixation, in the arid soils under three typical plant types(Haloxylon ammodendron, Cleistogenes chinensis,and Reaumuria soongorica) in Northwest China. The bacterial communities in the soils were also characterized using the 16 S r RNA gene. Abundance of red-like autotrophic bacteria ranged from 3.94 × 105 to 1.51 × 106 copies g-1dry soil and those of green-like autotrophic bacteria ranged from 1.15 × 106 to 2.08 × 106 copies g-1dry soil. Abundance of both red- and green-like autotrophic bacteria did not significantly differ among the soils under different plant types. The autotrophic bacteria identified with the cbb L gene primer were mainly affiliated with Alphaproteobacteria, Betaproteobacteria and an uncultured bacterial group, which were not detected in the 16 S r RNA library. In addition, 25.9% and 8.1% of the 16 S r RNA genes were affiliated with Cyanobacteria in the soils under H. ammodendron and R. soongorica, respectively. However, no Cyanobacteria-affiliated cbb L genes were detected in the same soils. The results suggested that microbial autotrophic CO2 fixation might be significant in the carbon cycling of arid soils, which warrants further exploration. Arid soils where water and nutrients are scarce occupy over 30% of the Earth's total surface. However, the microbial autotrophy in the harsh environments remains largely unexplored. In this study, the abundance and diversity of autotrophic bacteria were investigated, by quantifying and profiling the large subunit genes of ribulose-1,5-bisphosphate carboxylase/oxygenase(Ru Bis CO) form I(cbb L) responsible for CO2 fixation, in the arid soils under three typical plant types(Haloxylon ammodendron, Cleistogenes chinensis,and Reaumuria soongorica) in Northwest China. The bacterial communities in the soils were also characterized using the 16 S r RNA gene. Abundance of red-like autotrophic bacteria ranged from 3.94 × 10^5 to 1.51 × 10^6 copies g^-1dry soil and those of green-like autotrophic bacteria ranged from 1.15 × 10^6 to 2.08 × 10^6 copies g^-1dry soil. Abundance of both red- and green-like autotrophic bacteria did not significantly differ among the soils under different plant types. The autotrophic bacteria identified with the cbb L gene primer were mainly affiliated with Alphaproteobacteria, Betaproteobacteria and an uncultured bacterial group, which were not detected in the 16 S r RNA library. In addition, 25.9% and 8.1% of the 16 S r RNA genes were affiliated with Cyanobacteria in the soils under H. ammodendron and R. soongorica, respectively. However, no Cyanobacteria-affiliated cbb L genes were detected in the same soils. The results suggested that microbial autotrophic CO2 fixation might be significant in the carbon cycling of arid soils, which warrants further exploration.
出处 《Pedosphere》 SCIE CAS CSCD 2015年第1期150-159,共10页 土壤圈(英文版)
基金 supported by the National Basic Research Program(973 Program)of China(No.2009-CB825103) the National Natural Science Foundation of China(No.40901119)
关键词 细菌丰度 西北干旱 RUBISCO 多样性 酶基因 土壤 中国 固定CO2 autotrophic bacteria,carbon cycling,cbb L,harsh environments,real-time polymerase chain reaction
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  • 1Badger, M. R. and Bek, E. J. 2008. Multiple Rubisco forms in proteobacteria: their functional significance in relation to CO2 acquisition by the CBB cycle. J. Exp. Bot:. 59: 1525- 1541.
  • 2Cole, J. R., Chai, B., Farris, R. J., Wang, Q., Kulam-Syed- Mohideen, A. S., McGarrell, D. M., Bandela, A. M., Carde- nas E., Garrity G. M. and Tiedje, J. M. 2007. The riboso- mal database project (RDP-II): introducing myRDP space and quality controlled public data. Nucleic Acids Res. 35: D169-D172.
  • 3Fan, F. L., Li, Z. J., Wakelin, S. A., Yu, W. T. and Liang, Y. C. 2012. Mineral fertilizer alters cellulolytic community struc- ture and suppresses soil cellobiohydrolase activity in a long- term fertilization experiment. Soil Biol. Biochem. 55: 70-77.
  • 4Fan, F. L., Yang, Q. H., Li, Z. J., Wei, D., Cui, X. A. and Liaug, Y. C. 2011. Impacts of organic and inorganic fertilizers on nitrification in a cold climate soil are linked to the bacterial ammonia oxidizer community. Microbial Ecol. 62: 982-990.
  • 5Fierer, N., Jackson, J. A., Vilgalys, R. and Jackson, R. B. 2005. Assessment of soil microbial community structure by use of taxon-specific quantitative PCR assays. Appl. Environ. Mi- crob. 71: 4117-4120.
  • 6Freeman, K. R., Pescador, M. Y., Reed, S. C., Costello, E. K., Robeson, M. S. and Schmidt, S. K. 2009. Soil CO2 flux and photoautotrophic community composition in high-elevation, 'barren' soil. Environ. Microbiol. 11: 674-686.
  • 7Hanson, P. J., Edwards, N. T., Garten, C. T. and Andrews, J. A. 2000. Separating root and soil microbial contributions to soil respiration: a review of methods and observations. Bio- geochemistry. 48: 115-146.
  • 8Huber, T., Faulkner, G. and Hugenholtz, P. 2004. Bellerophon: a program to detect chimeric sequences in multiple sequence alignments. Bioinforraatics. 20: 2317-2319.
  • 9Kuzyakov, Y. 2006. Sources of CO2 effiux from soil and review of partitioning methods. Soil Biol. Biochem. 38: 425-448.
  • 10Lal, R. 2004. Soil carbon sequestration impacts on global climate chane and food securitv. Science. 304: 1623-1627.

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