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Original Articles

Thermophilic Fermentative Biohydrogen Production From Xylan by Anaerobic Mixed Cultures in Elephant Dung

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References

  • Akil, K. and S. Jayanthi. 2014. The biohydrogen potential of distillery wastewater by dark fermentation in an anaerobic sequencing batch reactor. International Journal of Green Energy 11:28–39.
  • Azbar, N., F. T. Cetinkaya Dokgoz, T. Keskin, R. Eltem, K. S. Korkmaz, Y. Gezgin, Z. Akbal, et al. 2009b. Comparative evaluation of bio-hydrogen production from cheese whey wastewater under thermophilic and mesophilic anaerobic conditions. International Journal of Green Energy 6:192–200.
  • Azbar, N., F. T. Cetinkaya Dokgoz, and Z. Peker. 2009a. Optimization of basal medium for fermentative hydrogen production from cheese whey wastewater. International Journal of Green Energy 6:371–80.
  • Biely, P. 1985. Microbial xylanolytic systems. Trends Biotechnology 3:286–91.
  • Bizani, D. and A. Brandelli. 2002. Characterization of a bacteriocin produced by a newly isolated Bacillus sp. Strain 8A. Journal of Applied Microbiology 93:512–19.
  • Boussarsar, H., B. Rogé, and M. 2009. Mathlouthi. Optimization of sugarcane bagasse conversion by hydrothermal treatment for the recovery of xylose. Bioresource Technology 100:6537–42.
  • Chong, M. L., V. Sabaratnam, Y. Shirai, and M. A. Hassan. 2009. Biohydrogen production from biomass and industrial wastes by dark fermentation. International Journal of Hydrogen Energy 34:3277–87.
  • Endo, G., T. Noike, and T. Matsumoto. 1982. Characteristics of cellulose and glucose decomposition in acidogenic phase of anaerobic digestion. Proceedings of the Society of Civil Engineering 325:61–68.
  • Fakhrul-Razi, A., A. A. A. Yassin, S. E. Lyuke, M. A. Ngan, and M. Morimoto. 2005. Biohydrogen synthesis from wastewater by anaerobic fermentation using microflora. International Journal of Green Energy 2:387–96.
  • Fan, Y. T., C. L., Li., J. J. Lay, H. W. Hou, and G. S., Zhang. 2004. Optimization of initial substrate and pH levels for germination of sporing hydrogen-producing anaerobes in cow dung compost. Bioresource Technology 91:189–93.
  • Fan, Y. T., Y. H., Zhang, S. F., Zhang, H. W., Hou, and B. Z., Ren. 2006. Efficient conversion of wheat straw wastes into biohydrogen gas by cow dung compost. Bioresource Technology 97:500–05.
  • Fang, H. H. P. and H. Liu. 2002. Effect of pH on hydrogen production from glucose by mixed culture. Bioresource Technology 82:87–93.
  • Fangkum, A. and A. Reungsang. 2011a. Biohydrogen production from mixed xylose/arabinose at thermophilic temperature by anaerobic mixed culture in elephant dung. International Journal of Hydrogen Energy 36:13928–38.
  • Fangkum, A. and A. Reungsang. 2011b. Biohydrogen production from sugarcane bagasse hydrolysate by elephant dung: Effects of initial pH and substrate concentration. International Journal of Hydrogen Energy 36:8687–96.
  • Gavala, H. N., I. V. Skiadas, and B. K. Ahring. 2006. Biological hydrogen production in suspended and attached growth anaerobic systems. International Journal of Hydrogen Energy 31:1164–75.
  • Gilbert, H. J. and G. P. Hazlewood. 1993. Bacterial cellulases and xylanases. Journal of General Microbiology 139:187–94.
  • Guo, X. M., E. Trably, E. Latrille, H. Carréré, and J. P. Steyer. 2010. Hydrogen production from agricultural waste by dark fermentation: A review. International Journal of Hydrogen Energy 35:10660–73.
  • Hallenbeck, P. C. and D. Ghosh. 2009. Advances in fermentative biohydrogen production: The way forward. Trends Biotechnology 27:287–97.
  • Ivanova, G., G. Ra´khely, and K. L. Kova´cs. 2009. Thermophilic biohydrogen production from energy plants by Caldicellulosiruptor saccharolyticus and comparison with related studies. International Journal of Hydrogen Energy 34:3659–70.
  • Jayasinghearachchi, H. S., S. Singh, P. M. Sarma, A. Aginihotri, and B. Lal. 2010. Fermentative hydrogen production by new marine Clostridium amygdalinum strain C9 isolated from offshore crude oil pipeline. International Journal of Hydrogen Energy 35:6665–73.
  • Karadag, D., A. E. Makinen, E. Efimova, and J. A. Puhakka. 2009. Thermophilic biohydrogen production by an anaerobic heat treated-hot spring culture. Bioresource Technology 100:5790–95.
  • Kuhad, R. C. and A. Singh. 1993. Lignocellulose biotechnology: Current and future prospects. Critical Review in Biotechnology 13:151–72.
  • Lee, K. S., Y. F. Hsu, Y. C. Lo, P. J. Lin, C. Y. Lin, and J.S Chang. 2008. Exploring optimal environmental factor for fermentative hydrogen production from starch using mixed anaerobic microflora. International Journal of Hydrogen Energy 33:1565–72.
  • Levin, D. B., L. Pitt, and M. Love. 2004. Biohydrogen production: Prospects and limitations to practical application. International Journal of Hydrogen Energy 29:173–85.
  • Lo, Y. C., W. M. Chen, C. H. Hung, S. D. Chen, and J. S. Chang. 2008. Dark H2 fermentation from sucrose and xylose using H2-producing indigenous bacteria: Feasibility and kinetic studies. Water Research 42:827–42.
  • Lo, Y. C., W. C. Lu, C. Y. Chen, and J. S. Chang. 2010. Dark fermentative hydrogen production from enzymatic hydrolysate of xylan and pretreated rice straw by Clostridium butyricum CGS5. Bioresource Technology 101:5885–91.
  • Marone, A., G. Massini, C. Patriarca, A. Signorini, C. Varrone, and G. Izzo. 2012. Hydrogen production from vegetable waste by bioaugmentation of indigenous fermentative communities. International Journal of Hydrogen Energy 37:5612–22.
  • Nandi, R. and S. Sengupta. 1998. Microbial production of hydrogen: An overview. Critical Review in Microbiology 24:61–84.
  • Nath, K., A. Kumar, and D. Das. 2006. Effect of some environmental parameters on fermentative hydrogen production by Enterobacter cloacae DM11. Canadian Journal of Microbiology 52:525–32.
  • Nissila, M. E., H. P. Tähti, J. A. Rintala, and J. A. Puhakka. 2011. Effects of heat treatment on hydrogen production potential and microbial community of thermophilic compost enrichment cultures. Bioresource Technology 102:4501–06.
  • O-Thong, S., A. Hniman, P. Prasertsan, and T. Imai. 2011. Biohydrogen production from cassava starch processing wastewater by thermophilic mixed cultures. International Journal of Hydrogen Energy 36:3409–16.
  • O-Thong, S., P. Prasertsan, D. Karakashev, and I. Angelidaki. 2008. Thermophilic fermentative hydrogen production by the newly isolated Thermoanaerobacterium thermosaccharolyticum PSU-2. International Journal of Hydrogen Energy 33:1204–14.
  • Pattra, S., S. Sangyoka, M. Boonmee, and A. Reungsang. 2008. Biohydrogen production from the fermentation of sugarcane bagasse hydrolysate by Clostridium butyricum. International Journal of Hydrogen Energy 33:6058–65.
  • Puls, J. 1997. Chemistry and biochemistry of hemicelluloses: Relationship between hemicellulose structure and enzymes required for hydrolysis. Macromolecular Symposia 120:183–96.
  • Reyhani, S. K. and H. Zilouei. 2013. Enhanced biohydrogen production from wastewater and the influence of operating parameters. International Journal of Green Energy 10:321–36.
  • Sinha, P. and A. Pandey. 2011. An evaluative report and challenges for fermentative biohydrogen production. International Journal of Hydrogen Energy 36:7460–78.
  • Sreela-or, C., T. Imai, P. Plangklang, and A. Reungsang. 2011. Optimization of key factors affecting hydrogen production from food waste by anaerobic mixed cultures. International Journal of Hydrogen Energy 36:14120–33.
  • Taguchi, F., K. Hasegawa, T. Saito-Taki, and K. Hara. 1996. Simultaneous production of using xylan in batch culture of Clostridium sp. strain X53. Journal of Fermentation and Bioengineering 81:178–80.
  • Thungklin, P., A. Reungsang, and S. Sittijunda. 2011. Hydrogen production from sludge of poultry slaughterhouse wastewater treatment plant pretreated with microwave. International Journal of Hydrogen Energy 36:8751–57.
  • Ueno, Y., S. Haruta, M. Ishii, and Y. Igarashi. 2001. Microbial community in anaerobic hydrogen-producing microflora enriched from sludge compost. Applied Microbiology and Biotechnology 7:555–62.
  • Valdez Vazquez, I., E. Rios Leal, F. Esparza Garcia, F. Cecchi, and H. A. Poggi Varaldo. 2005. Semi-continuous solid anaerobic reactors for H2 production from organic waste: Mesophilic versus thermophilic regime. International Journal of Hydrogen Energy 30:1383–91.
  • van Niel, E. M. J., P. A. Claassen, and A. J. Stams. 2003. Substrate and product inhibition of hydrogen production by the extreme thermophile. Caldicellulosiruptor Saccharolyticus. Biotechnology and Bioengineering 81:255–62.
  • Veziroglu, T. N. and F. Barbir. 1992. Hydrogen: The wonder fuel. International Journal of Hydrogen Energy 17:391–404.
  • Weiss, A., V. Jérôme, R. Freitag, and H. K. Mayer. 2008. Diversity of the resident microbiota in a thermophilic municipal biogas plant. Applied Microbiology and Biotechnology 81:163–73.
  • Whistler, R. L., and E. L. Richards. Hemicelluloses. In the Carbohydrates-Chemistry and Biochemistry, 2nd edn., vol. 2A, eds. W. Pigman and D. Horton, New York: Academic Press, pp. 447–69.
  • Wongtanet, J., B. I., Sang, S. M., Lee, and D., Pak. 2007. Biohydrogen production by fermentative process in continuous stirred-tank reactor. International Journal of Green Energy 4:385–95.
  • Yokoyama, H., M. Waki, A. Ogino, H. Ohmori, and Y. Tanaka. 2007. Hydrogen fermentation properties of undiluted cow dung. Journal of Biosciences Bioengineering 104:82–85.
  • Zhang, H., M. A. Bruns, and B. E. Logan. 2006. Biological hydrogen production by Clostridium acetobutylicum in an unsaturated flow reactor. Water Research 40:728–34.
  • Zheng, X. J. and H. Q. Yu. 2005. Inhibitory effects of butyrate on biological hydrogen production with mixed anaerobic cultures. Journal of Environmental Management 74:65–70.

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