博碩士論文 992204016 詳細資訊




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姓名 張倚嘉(Yi-Chia Chang)  查詢紙本館藏   畢業系所 生命科學系
論文名稱 利用豬糞作為原料探討高溫厭氧消化系統生產沼氣之微生物菌相
(Characterization of microbial communities from a thermophilic anaerobic digester running onswine manure)
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摘要(中) 厭氧消化槽為一廣泛使用於有機廢棄物之生物處理方法,如動物糞便或有機固態廢棄物皆可由此法處理並產生生質沼氣。沼氣是甲烷與二氧化碳的混合氣且為一種再生能源。厭氧消化槽產生沼氣的代謝途徑主要有三步驟:水解(hydrolysis)、產酸(acidogenesis)和產甲烷作用(methanogenesis)。本研究目的利用可培養及不可培養之方法,研究以豬糞為料源,探討在55°C高溫厭氧消化槽中微生物菌群結構及功能。根據16S rRNA 基因親緣演化樹分析結果顯示,以可培養微生物方式鑑定出細菌菌群包含95%厚壁菌門(Firmicutes) 和5%變形菌門(Proteobacteria)。以克隆庫(clone libraries)鑑定細菌菌群有54%變形菌門、38%無法培養之細菌及7%厚壁菌門;古生菌菌群有79%甲烷桿菌科(Methanobacteriaceae)、17%甲烷八疊球菌科(Methanosarcinaceae)及4%無法培養之古生菌。以denaturing gradient gel electrophoresis (DGGE)基因指紋方法鑑定13個優勢細菌帶其中含50%厚壁菌門、40%變形菌門及 10%無法培養之細菌; 7個優勢古生菌帶有14%甲烷桿菌科。其中在多樣性微生物中厚壁菌門和變形菌門負責分解豬糞中複雜的有機物質,並在水解和產酸作用中扮演重要角色。而甲烷桿菌科和甲烷八疊球菌科具有氫氣及二氧化碳轉化成甲烷的能力,另外甲烷八疊球菌科可將醋酸轉化成甲烷。本研究提供以豬糞作為唯一料源在高溫厭氧消化槽中生產沼氣之微生物菌相之訊息。
摘要(英) Anaerobic digestion (AD) is a biological treatment using a wide range of organic wastes, such as animal manure and organic solid waste to produce biogas. Biogas, a mixture of methane and carbon dioxide, is a renewable source of energy. AD can be divided into three major stages: hydrolysis, acidogenesis and methanogenesis. This study was aimed to research structures and functions, using cultivation-dependent and cultivation-independent (clone library and DGGE) methods, of the microbial community in AD at 55°C using pig manure. Based on phylogenetic analysis of 16S rRNA genes, the isolated microbes include 95% Firmicutes, 5% Proteobacteria. The clone libraries indicated that the bacterial community was composed of 54% Proteobacteria, 38% unclassified bacteria and 7% Firmicute. The archaeal community was composed of 79% Methanobacteriaceae, 17% Methanosarcinaceae and 4% unclassified Euryarchaea. The denaturing gradient gel electrophoresis (DGGE) revealed 13 dominant bacterial bands that belonged to the bacteria phyla 50% Firmicute, 40% Proteobacteria and 10% unclassified bacteria. The 7 dominant archaeal bands were composed of 14% Methanobacteriaceae. The diverse species from the phyla Firmicutes and Proteobacteria play key roles in the hydrolysis and acidogenesis stages of degrading the complex organic matters in swine manure. Species from Methanobacteriaceae and Methanosarcinaceae are proved to be able of using H2 and CO2 to produce methane. In addition, Methanosarcinaceae species also use acetate as a substrate to produce methane. This study provides information on the microbial community in thermophilic AD using swine manure as the sole feedstock for the biosynthesis of biogas.
關鍵字(中) ★ 甲烷菌
★ 甲烷氣
★ 微生物菌相
★ 沼氣
★ 高溫厭氧消化槽
★ 豬糞
關鍵字(英) ★ methanogen
★ Biogas
★ pig manure
★ methane
★ microbial community
★ thermophilic anaerobic digestion
論文目次 中文摘要 ................................................................................................................................... I
Abstract ................................................................................................................................... II
Table of Contents ................................................................................................................... III
List of Figures ........................................................................................................................ VI
List of Tables ......................................................................................................................... VII
List of Abbreviations .......................................................................................................... VIII
Instrument .............................................................................................................................. IX
Chemicals ................................................................................................................................ X
Chapter 1: Introduction ........................................................................................................... 1
1.1 Sample Source ................................................................................................................. 1
1.2 Anaerobic Digestion ....................................................................................................... 1
1.2.1 Hydrolysis ................................................................................................................. 2
1.2.2 Acidogenesis ............................................................................................................. 2
1.2.3 Methanogenesis ........................................................................................................ 3
1.3 Microbial Community Distribution in the Environment and Anaerobic Digesters . 3
1.4 Biogas ............................................................................................................................... 5
1.4.1 Biogas Compositions ............................................................................................... 5
1.4.2 Applications and Potential of Biogas ..................................................................... 5
1.5 Applications of Microbial Techniques .......................................................................... 5
1.6 Molecular diversity analysis of environmental samples by using different primer sets ......................................................................................................................................... 7
IV
1.7 Research Aims ................................................................................................................ 9
1.8 Study Outline ................................................................................................................ 10
Chapter 2: Materials and Methods ....................................................................................... 11
2.1 Sample Source and the Operation of the Thermophilic Digester ............................ 11
2.2 Cultivation-Dependent of Microbial Isolation ........................................................... 11
2.2.1 Sample Preparation ............................................................................................... 11
2.2.2 Serial Dilutions ....................................................................................................... 12
2.2.3 Culture Medium Preparation ............................................................................... 12
2.2.3.1 Nutrient Agar (NA) Plate ............................................................................... 12
2.2.3.2 Nutrient Broth (NB) ....................................................................................... 12
2.2.4 Identification of Bacteria ...................................................................................... 12
2.2.4.1 Sequence and Phylogenetic Analysis of Culture Sample ............................ 12
2.3 Culture-Independent .................................................................................................... 13
2.3.1 DNA Extraction ..................................................................................................... 13
2.3.2 Polymerase Chain Reaction (PCR) Amplification of 16S rRNA ....................... 14
2.3.2.1 PCR Amplification of Bacteria V6-V8 16S rRNA ....................................... 14
2.3.2.2 PCR Amplification of Archaea V3-V5 16S rRNA ....................................... 14
2.3.3 PCR-DGGE analysis of Bacteria and Archaea Primer ...................................... 15
2.3.4 Cloning and Sequencing Analysis of PCR-DGGE Fragments .......................... 15
2.3.5 Cloning and Sequencing Analysis of Bacteria and Archaea of 16S rRNA ....... 16
Chapter 3: Results .................................................................................................................. 17
3.1 Performance of the Thermophilic Anaerobic Digester ............................................. 17
3.2 Analysis of the Cultivation-Dependent Bacterial Community ................................. 17
3.3 PCR-DGGE Analysis of the Dynamics of Thermophilic Anaerobic Digester using
V
Pig Manure as Feedstock Microbial Community ............................................................ 19
3.3.1 Analysis of Bacteria Community by DGGE ........................................................ 19
3.3.2 Analysis of Archaeal Community by DGGE ....................................................... 20
3.4 16S rRNA Gene Clone Library and Phylogenetic ..................................................... 21
3.4.1 16S rRNA Gene Clone Library of Bacteria Community ................................... 21
3.4.2 16S rRNA Gene Clone Library of Archaea community .................................... 22
Chapter4: Discussion .............................................................................................................. 23
4.1 Performance of the Thermophilic Anaerobic Digester ............................................. 24
4.2 The Bacteria Involved in Hydrolysis and Acidogenesis during the Thermphilic Anaerobic Digestion ........................................................................................................... 24
4.3 The Methanogenic Archaea Involved in Methanogenesis during the Thermophilic Anaerobic Digestion ................................................................................... 29
4.4 Metaproteomic Analysis of the Functional Microbial Community Present in a Thermophilic Anaerobic Digestion Running on Swine Manure .................................... 32
Chapter 5: Conclusion ............................................................................................................ 36
References: .............................................................................................................................. 38
Appendix Ⅰ. Microbial isolation using cultivation-dependent method and identification of 16S rRNA gene sequencing ........................................................................ 74
Appendix Ⅱ. Cultivation-independent method of DGGE analysis and identification of 16S rRNA gene sequencing .................................................................................................. 209
Appendix Ⅲ. Cultivation-independent method of Clone library analysis and identification of 16S rRNA gene sequencing ...................................................................... 214
參考文獻 Abram, F., Enright, A. M., O’Reilly, J., Botting, C. H., Collins, G., O’Flaherty, V., 2011. A metaproteomic approach gives functional insights into anaerobic digestion. Journal of Applied Microbiology, 110, 6, 1550-1556.
Alenius, H., Pakarinen, J., Saris, O., Andersson, M. A., Leino, M., Sirola, K., Majuri, M. L., Niemela, J., Matikainen, S., Wolff, H., Hertzen, V. L., Makela, M., Haahtela, T., Salkinoja, S. M., 2009. Contrasting immunological effects of two disparate dusts -preliminary observations. International Archives of Allergy and Immunology, 149, 1, 81-90.
Angelidaki, I., Ellegaard, L., Ahring, B. K., 1993. A mathematical model for dynamic simulation of anaerobic digestion of complex substrates: focusing on ammonia inhibition. Biotechnology and Bioengineering, 42, 2, 159-166.
Ash, C., Priest, F. G., Collins, M. D., 1993. Molecular identification of rRNA group 3 bacilli (Ash, Farrow, Wallbanks and Collins) using a PCR probe test. Antonie van Leeuwenhoek, 64, 3-4, 253-260.
Bergey, D. H., Holt, J. G., Krieg, N. R., 2001. Bergey’s manual of systematic bacteriology, 2ed, Springer: New York, Vol. 1.
Bonmati, A., Flotats, X., Mateu, L., Campos, E., 2001. Study of the thermal hydrolysis as a pretreatment to mesophilic anaerobic digestion of pig slurry. Water Science and Technology, 44, 4, 109-116.
Bonndorf, D., Vogt, C., Jehmlich, N., Schmidt, Y., Thomas, H., Woffendin, G., Shevchenko, A., Richnow, H. H., von Bergen, M., 2009. Improving protein extraction and separation methods for investigating the metaproteome of anaerobic benzene communities within sediments. Biodegradation, 20, 6, 737-750.
Boopathy, R., 1988. Biological treat of swine waste using anaerobic baffled reactors.
39
Bioresource Technology, 64, 1, 1-6.
Bryant, M. P., Boone, D. R., 1987. Isolation and Characterization of Methanobacterium forrnicicum MF. International Journal of Systematic Bacteriology, 37, 2, 171.
Chen, W. C., Chen, W. C., Geng, D. S., 2008. The strategy and bioenergy potential for kitchen waste recycling in Taiwan. Journal of Environmental Engineering Management, 18, 4, 281-287.
Chan, O. C., Wolf, M., Hepperle, D., Casper, P., 2002. Methanogenic archaeal community in the sediment of an artificially partitioned acidic bog lake. FEMS Microbiology Ecology, 42, 1, 119-129.
Chaban, B., Ng, S. Y., Jarrell, K. F., 2006. Archaeal habitats- from the extreme to the ordinary. Canadian Journal of Microbiology, 52, 2, 73-116.
Cheng, Y. F., Mao, S. Y., Liu, J. X., Zhu, W. Y., 2009. Molecular diversity analysis of rumen methanogenic archaea from goat in eastern China by DGGE methods using different primer pairs. Applied Microbiology, 48, 585-592.
Cherif, H., Ouzari, H., Marzorati, M., Brusetti, L., Jedidi, N., Hassen, A., Daffonchio, D., 2008. Bacterial community diversity assessment in municipal solid waste compost amended soil using DGGE and ARISA fingerprinting methods. World Journal of Microbiology and Biotechnology, 24, 1159-1167.
Chiou, S. F., Kou, J., Wong, T. Y., Fan, T. Y., Tew, K. S., Liu, J. K., 2010. Analysis of the coral associated bacterial community structures in healthy and diseased corals from off-shore of southern Taiwan. Journal of Environmental Science and Health Part B, 45, 408-415.
Chouari, R., Le Paslier, D., Daegelen, P., Ginestet, P., Weissenbach, J., Sghir, A., 2005. Novel predominant archaeal and bacterial groups revealed by molecular analysis of an anaerobic sludge digester. Environmental Microbiology, 7, 8,
40
1104-1115.
Combet, Y., Ollivier, B., Streicher, C., Patel, B. K. C., Dwivedi, P, P., Pot, B., Prensier, G., Garcia, J. L., 1995. Bacillus thermoamylovorans sp. nov., a moderately thermophilic and amylolytic bacterium. International Journal of Systematic Bacteriology, 45, 1, 9-16.
Coolen, M. J. L., Hopmans, E. C., Rijpstra, W. I. C., Muyzer, G., Schouten, S., Volkman, J. K., Damsté, J. S. S. D., 2004. Evolution of the methane cycle in Ace Lake (Antarctica) during the Holocene: response of methanogens and methanotrophs to environmental change. Organic Geochemistry, 35, 1151-1167.
Cotta, M. A., Whitehead, T. R., Zeltwanger, R. L., 2003. Isolation, characterization and comparison of bacterial from swine feces and manure storage pits. Environmental Microbiology, 5, 9, 737-745.
Dai, J., Liu, Y., Lei, Y., Gao, Y., Han, F., Xiao, Y., Peng, H., 2011. A new subspecies of Anoxybacillus flavithermus ssp. yunnanensis ssp. nov. with very high ethanol tolerance. FESM Microbial Letter, 320, 1, 72-78.
Dong, X., Reddy, G., 2010. Soil bacterial communities in constructed wetlands treated with swine wastewater using PCR-DGGE technique. Bioresource Technology, 101, 1175-1182.
Dubernet, S.H., Desmasuress, N., Gueguen, M., 2004. Culture-dependent and culture-independent methods for molecular analysis of the diversity of
lactobacilli in ‘‘Camembert de Normandie” cheese. Lait, 84, 179-189. Duc, L. M. T., Dekas, A., Osman, S., Moissl, C., Newcombe, D., Venkateswaran, K., 2007. Isolation and characterization of bacteria capable of tolerating the extreme conditions of clean room environments. Applied and Environmental Microbiology, 73, 8, 2600-2611.
Fang, H. H. P., Zhang, T., Liu, H., 2002. Microbial diversity of a mesophilic
41
hydrogen-producing sludge. Applied Microbiology and Biotechnology, 58, 112-118.
Fang, H. H. P., Zhang, T., Liu, Y., 2002. Characterization of an acetate-degrading sludge without intracellular accumulation of polyphosphate and glycogen. Water Research, 36, 13, 3211-3218.
Ferry, J. G., Wolfe, R. S., 1976. Anaerobic degradation of benzoate to methane by a microbial consortium. Archives of Microbiology, 107, 1, 33-40.
Fu, L., Xin, M., 2009.Ecological diversity and industrial application of methanogens. Chinese Journal of Applied and Environmental Biology, 15, 4, 574-578. Gao,W., Bao,Y., Liu,Y., Zhang, X., Wang, J., An, L., 2009. Characterization of thermo-stable endoinulinase from a new strain Bacillus smithii T7. Applied Biochemistry and Biotechnology, 157, 3, 498-506. Gannoun, H., Bouallagui, H, Okbi, A., Sayadi, S., Hamdi, M., 2009. Mesophilic and thermophilic anaerobic digestion of biologically pretreated abattoir wastewaters in an up-flow anaerobic filter. Journal of Hazardous Materials, 170, 1, 263-271.
Goberna, M., Insam, H., Whittle, F. I. H., 2009. Effect of biowaste sludge maturation on the diversity of thermophilic bacteria and archaea in an anaerobic reactor. Applied and Environmental Microbiology, 75, 8, 2566-2572.
Gosbell, I. B., Johnson, C. G., Newton, P. J., Jelfs, J., 1996. Clostridium tertium bacteria: 2 cases and review. Pathology, 28, 1, 70-73.
Grobe, K., Sartori, B., Traving, C., Schauer, R., Roggentin, P., 1998. Enzymatic and Molecular Properties of the Clostridium tertium Sialidase. Journal of Biochemistry, 124, 6, 1101-1110.
He, J., Zheng, Y., Chen, C., He, Y., Zhang, L., 2008. Microbial composition and
42
diversity of an upland red soil under long-term fertilization treatments as revealed by culture-dependent and culture-independent approaches. Journal of Soils and Sediments, 8, 349-358.
Hoyles, L., Honda, H., Logan, N. A., Halket, G., Ragione, R. M. L., McCartney, A. L., 2012. Recognition of greater diversity of Bacillus species and related bacteria in human feces. Research in Microbiology, 163, 1, 3-13.
Hori, T., Haruta, S., Ueno, Y., Ishii, M., Igarashi, Y., 2006. Dynamic transition of a methanogenic population in response to the concentration of volatile fatty acids in a thermophilic anaerobic digester. Applied and Environmental Microbiology, 72, 2, 1623-1630.
Iannotti, E. L., Fischer, J. R., Sievers, D. M., 1982. Characterisation of bacteria from a swine manure digester. Applied and Environmental Microbiology, 43, 1, 136-143.
Ogier, J. C., Son, O., Gruss, A., Tailliez, P., Delacroix-Buchet, A., 2002. Identification of the bacterial microflora in dairy products by temporal temperature gradient gel electrophoresis. Applied Environmental Microbiology, 68, 3691-3701. Ohnishi, A., 2003. Low G+C Gram-positive bacterium isolate from compost. Patel, M. A., Ou, M. S., Harbrucker, R., Aldrich, H. C., Buszko, M. L., Ingram, L. O. Shanmugam, K. T., 2006. Isolation and characterization of acid-tolerant, thermophilic bacteria for effective fermentation of biomass-derived sugars to lactic acid. Applied Environmental Microbiology, 72, 5, 3228-3235. Partanen, P., Hultman, J., Paulin, L., Auvinen, P., Romantschuk, M., 2010. Bacterial diversity at different stages of the composting process. Biomedcentral Microbiology, 10, 94.
Park, Y., Hong, F., Cheon, J., Hidaka, T., Tsuno, H., 2008. Comparison of
43
thermophilic anaerobic digestion characteristics between single-phase and two-phase systems for kitchen garbage treatment. Journal of Bioscience and Bioengineering, 105, 1, 48-54.
Pennings, J. A., Keltjens, J. T., Vogels, G. D., 1998. Isolation and Characterization of Methanobacterium thermoautotrophicum △H mutants unable to grow under hydrogen-deprived conditions. Journal of Bacteriology, 108, 10, 2676-2681.
Piñar, G., Saiz-Jimenez, C., Schabereiter-Gurtner, C., Blanco-Varela, M. T. B., Lubitz, W., Rölleke, S., 2001. Archaeal communities in two disparate deteriorated ancient wall paintings: detection, identification and temporal monitoring by denaturing gradient gel electrophoresis. FEMS Microbiology Ecology, 37, 45-54.
Kan, J., Hanson, T. E., Ginter, J. M., Wang, K., Chen, F., 2005. Metaproteomic analysis of Chesapeake bay microbial communities. Saline System, 1, 7.
Kashyap, D. R., Dadhich, K. S., Sharma, S. K., 2003. Biomethanation under psychrophilic conditions: a review. Bioresource Technology, 87, 2, 147-153. Kato, S., Haruta, S., Cui, Z. J., Ishii, M., Igarashi, Y., 2004. Effective cellulose degradation by a mixed-culture system composed of a cellulolytic Clostridium and aerobic non-cellulolytic bacteria. FEMS Microbiolology Ecology, 51, 1, 133-142.
Khanh, D., Quan, L., Zhang, W., Hira, D., Furukawa, K., 2011. Effect of temperature on low-strength wastewater treatment by UASB reactor using poly (vinyl alcohol)-gel carrier. Bioresource Technology, 102, 24, 11147-11154. Kim, B. Y., Lee, S. Y., Weon, H. Y., Kwon, S. W., Go, S. J., Park, Y. K., Schumann, P. , Fritze, D., 2006. Ureibacillus suwonensis sp. nov., isolated from cotton waste composts. International Journal of Systematic and Evolutionary Microbiology, 56, 3, 663-666.
Kim, J. J., Kim, H. N., Masui, R., Kuramitsu, S., Seo, J. H., Kim, K., 2008. Isolation
44
of uncultivable anaerobic thermophiles of the family Clostridiaceae requiring growth-supporting factors. Journal of Microbiology and Biotechnology, 18, 4, 611-615.
Kim, W., Lee, S., Shin, S. G., Lee, C., Hwang, K., Hwang, S., 2010. Methanogenic community shift in anaerobic batch digesters treating swine wastewater. Water Research, 44, 17, 4900-4907.
Kim, W., Hwang, K., Shin, S. G., Lee, C., Hwang, S., 2010. Effect of high temperature on bacterial community dynamics in anaerobic acidogenesis using mesophilic sludge inoculums. Bioresource Technology, 101, 1, S17-22.
Kim, M. D., Song, M., Jo, M., Shin, S. G., Khim, J. H., Hwang, S., 2010. Growth condition and bacterial community for maximum hydrolysis of suspended organic materials in anaerobic digestion of food waste-recycling wastewater. Applied Microbiology and Biotechnology, 85, 5, 1611-1618.
Kotay, S. M., Das, D., 2007. Microbial hydrogen production with Bacillus coagulans IIT-BT S1isolated from anaerobic sewage sludge. Bioresource Technology, 98, 6, 1183-1190.
Krugel, S., Nemeth, L., Peddle, C., 1998. Extended thermophilic anaerobic digestion for producing class a bio-solids at the great vancouver regional distreict’s annacis island wastewater treatment plant. Water Science and Technology, 38, 409-416.
Lacerda, C. M., Choe, L. H., Reardon, K. F., 2007. Metaproteomic analysis of a bacterial community response to cadmium exposure. Journal Proteome Research, 6, 3, 1145-1152. Ley, R. E., Turnbaugh, P. J., Klein, S., Gordon, J. I., 2006. Microbial ecology: human gut microbes associated with obesity. Nature, 444, 7122, 1022-1023.
Lee, C., Kim, J., Shin, S. G., Hwang, S., 2008. Monitoring bacterial and archaeal community shifts in a mesophilic anaerobic batch reactor treating a
45
high-strength organic wastewater. Federation of European Microbiological Societies, 65, 3, 544-554.
Lee, C., Kim, J., Hwang, K., O’Flaherty, V., Hwang, S., 2009. Quantitative analysis of methanogenic community dynamics in three anaerobic batch digesters treating different wastewaters. Water Research, 43, 157-165.
Li, Y., Park, S. Y., Zhu, J., 2011. Solid-state anaerobic digestion for methane production from organic waste. Renewable and Sustainable Energy Reviews, 15, 1, 821-826.
Lyberatos, G., Skiadas I. V., 1999. Modelling of anaerobic digestion- a review. Global Nest, 1, 2, 63-76.
Ludwig, W., Kirchof, G., Klugbauer, N., Weizenegger, M., Betzl, D., Ehrmann, M., Hertel, C., Jilg, S., Tatzel, R., Zitzelsberger, H., Liebl, S., Hochberger, M., Shah, J., Lane, D., Wallnoef, P. R., 1992. Complete 23S ribosomal RNA sequences of gram-positive bacteria with a low DNA G+C content. Journal Systematic and Applied Microbiology, 15, 4, 487-501. Masomian, M., Raja, A., Rah, R. N. Z., Salleh, A. B., Basri , M., 2010. A unique thermostable and organic solvent tolerant lipase from newly isolated Aneurinibacillus thermoaerophilus strain HZ: physical factor studies. World Journal of Microbiology Biotechnology, 26, 9, 1693-1701.
Madigan, M. T., Martinko, J. M., Parker, J., 2003. Brock biology of microorganisms. 10th ed. Pearson Education.
Messner, P., Scheberi, A., Schweigkofler, W., Hollaus, F., Rainey, F. A., 1997. Taxonomic comparison of different thermophilic sugar beet isolates with glycosylated surface layer (S-Layer) proteins and their affiliation to Bacillus smithii. Systematic and Applied Microbiology, 20, 4, 559-565.
Merlino, G., Rizzi, A., Villa, F., Sorlini, C., Brambilla, M., Navarotto, P., Bertazzoni,
46
B., Zagni, M., Araldi, F., Daffonchio, D., 2012. Shifts of microbial community structure during anaerobic digestion of agro-industrial energetic crops and food industry byproducts. Journal of Chemical Technology and Biotechnology, DOI 10, 1002.
Mohamed, R. A., Salleh, A. B., Rahman, R. N. Z. R. A., Basri, M., Leow, T. C., 2012. Isolation of the encoding gene for a thermostable α-glucosidase from Geobacillus stearothermophilus strain RM and its expression in Escherichia coli. African Journal of Microbiology Research, 6, 12, 2909-2917.
Myers, R. M., Fischer, S. G., Lermani, L. S., Maniatis, T., 1985. Nearly all single base substitutions in DNA fragments joined to a GC-clamp can be detected by
denaturing gradient gel electrophoresis. Nucleic Acids Research, 13, 9.
Nakasaki, K., Tran, L. T. H., Idemoto, Y., Abe, M., Rollon, A. P., 2009. Comparison of organic matter degradation and microbial community during thermophilic composting of two different types of anaerobic sludge. Bioresource Technology, 100, 2, 676-682. Rainey, F. A., Fritze, D., Stackebrandt, E., 1994. The phylogenetic diversity of thermophilic members of the genus Bacillus as revealed by 16S rDNA analysis. FEMS Microbiology Letters, 115, 2-3, 205-211. Ramos-Padron, E., Bordenave, S., Lin, S., Bhaskar, I. M., Dong, X., Sensen, C. W., Fournier, J., Voordouw, G., Gieg, L. M., 2011. Carbon and sulfur cycling by microbial communities in a gypsum-treated oil sands tailings pond. Environmental Science Technology, 45, 2, 439-446.
Rahman, R. N. Z. R. A., Masomian, M., Salleh, A. B., Basri, M., 2009. A new thermostable lipase by Aneurinibacillus thermoaerophilus strain HZ: nutritional studies. Annals of Microbiology, 59, 1, 133-139.
Reysenbach, A. L., Longnecker, K., Kirshtein, J., 2000. Novel bacterial and archaeal
47
lineages from an in situ growth chamber deployed at a mid-atlantic ridge hydrothermal vent. Applied and Environmental Microbiology, 66, 9, 3798-3806.
Reddy, G. S. N., Matsumoto, G. I., Shivaji, S., 2003. Sporosarcina macmurdoensis sp. nov., from a cyanobacterial mat sample from a pond in the McMurdo Dry Valleys, Antarctica. International Journal of Systematic and Evolutionary Microbiology, 53, 1363-1367.
Peu, P., Dabert, P., Pourcher, A. M., Godon, J. J., Delgenes, J. P., 2004. Molecular analysis of the microbial community dynamics in pig slurry during storage and after soil application. Water Contaminants, 69-72.
Rubia, M. A., Perez, M. P., Romero, L. I., Sales, D., 2006. Effect of solids retention time (SRT) on pilot scale anaerobic thermophilic sludge digestion. Process Biochemistry, 41, 1, 79-86. Rueckert, A., Ronimus, R. S., Morgan, H. W., 2005. Development of a rapid detection and enumeration method for thermophilic bacilli in milk powders. Journal Microbiology Methods, 60, 2, 155-167.
Salanitro, J. P., Blake, I. G., Muirhead, P. A., 1977. Isolation and identification of fecal bacteria from adult swine. Applied and Environmental Microbiology, 33, 1, 79-84.
Sasaki, K., Haruta, S., Tatara, M., Yamazawa, A., Ueno, Y., Ishii, M., Igarashi, Y., 2006. Microbial community in methanogenic packed-bed reactor successfully operating at short hydraulic retention time. Journal of Bioscience and Bioengineering, 101, 3, 271-273.
Sasaki, K., Haruta, S., Ueno, Y., Ishii, M., Igarashi, Y., 2007. Microbial population in the biomass adhering to supporting material in a packed-bed reactor degrading organic solid waste. Applied Microbiolology Biotechnology, 75, 941-952.
48
Sasaki, D., Hori, T., Haruta, S., Ueno, Y., Ishii, M., Igarashi, Y., 2011. Methanogenic pathway and community structure in a thermophilic anaerobic digestion process of organic solid waste. Journal of Bioscience and Bioengineering, 111, 1, 41-46.
Sawayama, S., Tsukahara, K., Yagishita, T., 2006. Phylogenetic description of immobilized methanogenic community using real-time PCR in a fixed-bed anaerobic digester. Bioresource Technology, 97, 69-76.
Schulze, W. X., Gleixner, G., Kaiser, K., Guggenberger, G., Mann, M., Schulze, E. D., 2005. A proteomic fingerprint of dissolved organic carbon and soil partickes. Oecologia, 142, 3, 335-343.
Shepherd, M. L., Swecker, W. S. Jr., Jensen, R. V., Ponder, M. A., 2012. Characterization of the fecal bacteria communities of forage-fed horses by pyrosequencing of 16S rRNA V4 gene amplicons. FEMS Microbiology Letters, 326, 1, 62-68. Shi, P., Tian, J., Yuan, T., Liu, X., Huang, H., Bai, Y., Yang, P., Chen, X., Wu, N. Yao, B., 2010. Paenibacillus sp. strain E18 bifunctional xylanase-glucanase with a single catalytic domain. Applied Environmental Microbiology, 76, 11, 3620-3624.
Song, M., Shin, S. G., Hwang, S., 2010. Methanogenic population dynamics assessed by real-time quantitative PCR in sludge granule in upflow anaerobic sludge blanket treating swine wastewater. Bioresource Technology, 101, 1, S23-28.
Soh, A. L. A., Ralambotiana, H., Ollivier, B., Prensier, G., Tine, E., Garcia, J. L., 1991. Clostridìum thermopalmarìum sp. nov., a Moderately thermophilic butyrate-producing bacterium isolated from Palm Wine in Senegal. Systematic and Applied Microbiology, 14, 135-139.
49
Stackebrandt, E., Kramer, I., Swiderski, J., Hippe, H., 1999. Phylogenetic basis for a taxonomic dissection of the genus Clostridium. FEMS Immunology and Medical Microbiology, 24, 3, 253-258. Staley, B. F., de Los Reyes, F. L. III, Barlaz, M. A., 2011. Effect of Spatial differences in microbial activity, pH, and substrate levels on methanogenesis initiation in refuse. Applied Environmental Microbiology, 77, 7, 2381-2391.
Strevett, K. A., Vieth, R. F., Grasso D., 1995. Chemo-autotrophic biogas purification for methane enrichment: mechanism and kinetics. The Chemical Engineering Journal, 58, 1, 71-79. Supaphol, S., Jenkins, S. N., Intomo, P., Waite, I. S., O’Donnell, A. G., 2011. Microbial community dynamics in mesophilic anaerobic co-digestion of mixed waste. Bioresource Technology, 102, 5, 4021-4027.
Suzuki, Y., Matsui, H., Tsujimoto, Y., Watanabe, K., 2009. Enzymatic degradation of fibroin fiber by a fibroinolytic enzyme of Brevibacillus thermoruber YAS-1. Journal of Bioscience and Bioengineering, 108, 3, 211-215.
Székely, A. J., Sipos, R., Berta, B., Vajna, B., Hajdú, C., Márialigeti, K., 2009. DGGE and T-RFLP Analysis of Bacterial Succession during Mushroom Compost Production and Sequence-aided T-RFLP Profile of Mature Compost. Microbial Ecology, 57, 522–533.
Takashima, Y., Yamaga, Y., Mitsuda, S., 1998. Nitrile hydratase from a thermophilic Bacillus smithii. Journal of Industrial Microbiology and Biotechnology, 20, 3-4, 220-226.
Tang, Y., Shigematsu, T., Morimura, I. S., Kida, K., 2004. The effects of micro-aeration on the phylogeneticdiversity of microorganisms in a thermophilic anaerobic municipal solid-waste digester. Water Research, 38, 10, 2537-2550.
50
Tang, Y. Q., Ji, P., Hayashi, J., Koike, Y., Wu, X. L., Kida, K., 2011. Characteristic microbial community of a dry thermophilic methanogenic digester: its long-term stability and chang with feeding. Applied Microbiology Biotechnology, 91, 5, 1447-1461.
Tang, Y. Q., Matsui, T., Morimura, S., Wu, X. L., Kida, K., 2008. Effect of temperature on microbial community of a glucose-degrading methanogenic consortium under hypermophilic chemostat cultivation. Journal of Bioscience and Bioengineering, 106, 2, 180-187. Tang, M., Lv, L., Jing, S., Zhu, L., He, G., 2010. Bacterial symbionts of the brown planthopper, Nilaparvata lugens (Homoptera: Delphacidae). Applied and Environmental Microbiology, 76, 6, 1740-1745.
Thummes, K., Kämpfer, P., Jäckel, U., 2007. Temporal change of composition and potential activity of the thermophilic archaeal community during the composting of organic material. Systematic and Applied Microbiology, 30, 5, 418-429.
Trabue, S., Kerr, B., Bearson, B., Ziemer, C., 2011. Swine odor analyzed by odor panels and chemical techniques. Journal of Environmental Quality, 40, 5, 1510-1520.
Vavilin, V. A., Rytov, S. V., Lokshina, L.Y., 1996. A description of hydrolysis kinetics in anaerobic digestion of particulate organic matter. Bioresource Technology, 56, 2-3, 229-237.
Wang, C. M., Shyu, C. L., Ho, S. P., Chiou, S. H., 2007. Species diversity and substrate utilization patterns of thermophilic bacterial communities in hot aerobic poultry and cattle manure composts. Microbial Ecology, 54, 1, 1-9.
Wang, H. B., Zhang, Z. X., Li, H., He, H. B., Fang, C. X., Zhang, A. J., Li, Q. S., Chen, T., Lin, R. Y., Peng, X. X., Lin, W. X., 2011. Characterization of
51
metaproteomics in crop rhizospheric soil. Journal Proteome Research, 10, 3, 932-940.
Weiland, P., 2010. Biogas production: current stat and perspectives. Applied Microbiology Biotechnology, 85, 4, 849-860.
Weiss, A., Jerome, V., Burghardt, D., Likke, L., Peiffer, S., Hofstetter, E. M., Gabler, R., Freitag, R., 2009. Investigation of factors influencing biogas production in a large-scale thermophilic municipal biogas plant. Applied Microbiology Biotechnology, 84, 5, 987-1001.
Weiss, A., Jèrôme, V., Freitag, R., Mayer, H. K., 2008. Diversity of the resident microbiota in a thermophilic municipal biogas plant. Applied Microbiology Biotechnology, 81, 1, 163-173.
Werner, J. J., Knight, D., Garcia, M. L., Scalfone, N. B., Smith, S., Yarasheski, K., Cummings, T. A., Beers, A. R., Knight, R., Angenent, L. T., 2011. Bacterial community structures are unique and resilient in full-scale bio-energy systems. Proceedings of the National Academy of Sciences, 108, 10, 4158-4163.
Whitehead, T. R., Cotta, M. A., 1999. Phylogenetic diversity of methanogenic archaea in swine waste storage pits. FEMS Microbiology Letters, 179, 2, 223-226.
Wilmes, P., Wexler, M., Bond, P. L., 2008. Metaproteomics provides function insight into activated sludge wastewater treatment. Plos One, 3, 3, e1778.
Yabu, H., Sakai, C., Fujiwara, T., Nishio, N., Nakashimada, Y., 2011. Thermophilic two-stage dry anaerobic digestion of model garbage with ammonia stripping. Journal of Bioscience and Bioengineering, 111, 3, 312-319.
Yang, K., Yu, Y., Hwang, S., 2003. Selective optimization in thermophilic acidogenesis of cheese-whey wastewater to acetic and butyric acids: partial acidification and methanation. Water Research, 37, 2467-2477.
52
Yu, Z., Morrison, M., 2004. Comparisons of different hypervariable regions if rrs gene for use in fingerprinting of microbial communities by PCR-denaturing gradient gel electrophoresis. Applied and environmental microbiology, 70, 8, 4800-4806.
Zeikus, J. G., Wolfe, R. S., 1972. Methanobacterium thermoautotrophicus sp. n., an anaerobic, autotrophic, extreme thermophile. Journal of Bacteriology, 109, 2, 707-713.
Zhang, R. H., Yin, Y., Sung, S., Dague, R. R.
, 1997. Anaerobic treatment of swine waste by the anaerobic sequencing batch reactor. Transactions of the American Society of Agricultural Engineers, 40, 761-767.
Zhao, X., Yang, L., Yu, Z., Peng, N., Xiao, L., Yin, D., Qin, B., 2008. Characterization of depth-related microbial communities in lake sediment by denaturing gradient gel electrophoresis of amplified 16S rRNA fragments. Journal of Environmental Sciences, 20, 224-230.
Zinder, S. H., Mah, R. A., 1979. Isolation and characterization of a thermophilic strain of Methanosarcina unable to use H2-CO2 for methanogenesis. Applied Microbiology Biotechnology, 38, 5, 996-1008.
Zoetendal, E. G., Wright, A., Vilpponen-Salmela, T., Ben-Amor, K., Akkermans, A. D. L., Willem, M. de Vos., 2002. Mucosa-associated bacteria in the human gastrointestinal tract are uniformly distributed along the colon and differ from the community recovered from feces. Applied and Environmental Microbiology, 68, 7, 3401-3407.
指導教授 黃雪莉(Shir-Ly Huang) 審核日期 2012-8-27
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