DOI QR코드

DOI QR Code

초고온성 고세균 Thermococcus onnurineus의 개미산으로부터 바이오수소 생산을 위한 통계적 배지 최적화

Statistical Optimization of Medium for Formate-driven Bio-hydrogen Production by the Hyperthermophilic Archaeon, Thermococus onnurineus

  • 이성목 (한국해양과학기술원 해양생명공학연구센터) ;
  • 김태완 (전남대학교 생물공학과) ;
  • 이현숙 (한국해양과학기술원 해양생명공학연구센터) ;
  • 이정현 (한국해양과학기술원 해양생명공학연구센터) ;
  • 강성균 (한국해양과학기술원 해양생명공학연구센터)
  • 투고 : 2017.09.29
  • 심사 : 2017.12.01
  • 발행 : 2017.12.30

초록

Medium compositions for the hyperthermophilic archaeon, Thermococcus onnurineus NA1 was statistically optimized to enhance formate-driven hydrogen ($H_2$) production by using response surface methodology. From the Plackett-Burman design-based experiment, it was confirmed that among the minor components of medium such as KCl, $MgSO_4$, $NH_4Cl$, Cystein-HCl, trace elements, Fe-EDTA and $CaCl_2$, the trace elements were screened as the only positively effective components with respect to $H_2$ production. Subsequently, the optimal concentrations of the trace elements and the major components of a medium such as NaCl, yeast extract and sodium formate were determined from the five-level central composite design (CCD)-based experiment. The resulting quadratic model predicted the maximum $H_2$ production of 46.6 mmol/L in serum bottle and it was validated experimentally using the optimal medium initially supplemented with 26.70 g/L of NaCl, 9.81 g/L of sodium formate, 3.50 g/L of yeast extract and 4.59 mL/L of trace elements. From the duplicate batch cultivations in the fermentor using the optimized medium, the a maximum $H_2$ production rate up to 71.8 mmol/L/h could be obtained, which was a 65% enhanced value compared with that obtained using the control medium, showing the high efficiency of the optimized medium.

키워드

참고문헌

  1. Acar C, Dincer I (2015) Review and evaluation of hydrogen production methods for better sustainability. Int J Hydrogen Energ 40(34):11094-11111 https://doi.org/10.1016/j.ijhydene.2014.12.035
  2. Bae SS, Kim TW, Lee HS, Kwon KK, Kim YJ, Kim MS, Lee JH, Kang SG (2012) $H_{2}$ production from CO, formate or starch using the hyperthermophilic archaeon, Thermococcus onnurineus. Biotechnol Lett 34(1):75-79 https://doi.org/10.1007/s10529-011-0732-3
  3. Bae SS, Kim YJ, Yang SH, Lim JK, Jeon JH, Lee HS, Kang SG, Kim S-J, Lee J-H (2006) Thermococcus onnurineus sp. nov., a hyperthermophilic archaeon isolated from a deep-sea hydrothermal vent area at the PACMANUS field. J Microbiol Biotech 16(11):1826-1831
  4. Bae SS, Lee HS, Jeon JH, Lee JH, Kang SG, Kim TW (2015) Enhancing bio-hydrogen production from sodium formate by hyperthermophilic archaeon, Thermococcus onnurineus NA1. Bioproc Biosyst Eng 38(5):989-993 https://doi.org/10.1007/s00449-014-1336-9
  5. Balch WE, Wolfe RS (1976) New approach to the cultivation of methanogenic bacteria: 2-mercaptoethanesulfonic acid (HSCoM)-dependent growth of Methanobacterium ruminantium in a pressureized atmosphere. Appl Environ Microb 32:781-791
  6. Berndes G, Hoogwijk M, Broek R (2003) The contribution of biomass in the future global energy supply: a review of 17 studies. Biomass Bioenerg 25(1):1-28 https://doi.org/10.1016/S0961-9534(02)00185-X
  7. Bundhoo MAZ, Mohee R (2016) Inhibition of dark fermentative bio-hydrogen production: a review. Int J Hydrogen Energ 41(16):6713-6733 https://doi.org/10.1016/j.ijhydene.2016.03.057
  8. Ferry JG (1990) Formate dehydrogenase. FEMS Microbiol Rev 7(3-4):377-382 https://doi.org/10.1111/j.1574-6968.1990.tb04940.x
  9. Hay JXW, Wu TY, Juan JC, Jahim JM (2013) Biohydrogen production through photo fermentation or dark fermentation using waste as a substrate: overview, economics, and future prospects of hydrogen usage. Biofuels Bioprod Biorefining 7:334-352 https://doi.org/10.1002/bbb.1403
  10. Holden JF, Takai K, Summit M, Bolton S, Zyskowski J, Baross JA (2001) Diversity among three novel groups of hyperthermophilic deep-sea Thermococcus species from three sites in the northeastern Pacific Ocean. FEMS Microbiol Ecol 36(1):51-60 https://doi.org/10.1111/j.1574-6941.2001.tb00825.x
  11. Kim YJ, Lee HS, Kim ES, Bae SS, Lim JK, Matsumi R, Lebedinsky AV, Sokolova TG, Kozhevnikova DA, Cha SS, Kim SJ, Kwon KK, Imanaka T, Atomi H, Bonch-Osmolovskaya EA, Lee JH, Kang SG (2010) Formatedriven growth coupled with $H_{2}$ production. Nature 467(7313):352-355 https://doi.org/10.1038/nature09375
  12. Lee HS, Kang SG, Bae SS, Lim JK, Cho Y, Kim YJ, Jeon JH, Cha SS, Kwon KK, Kim HT, Park CJ, Lee HW, Kim SI, Chun J, Colwell RR, Kim SJ, Lee JH (2008) The complete genome sequence of Thermococcus onnurineus NA1 reveals a mixed heterotrophic and carboxydotrophic metabolism. J Bacteriol 190(22):7491-7499 https://doi.org/10.1128/JB.00746-08
  13. Levin DB, Pitt L, Love M (2004) Biohydrogen production: prospects and limitations to practical application. Int J Hydrogen Energ 29(2):173-185 https://doi.org/10.1016/S0360-3199(03)00094-6
  14. Mota CS, Rivas MG, Brondino CD, Moura I, Moura JJ, Gonzalez PJ, Cerqueira NM (2011) The mechanism of formate oxidation by metal-dependent formate dehydrogenases. J Biol Inorg Chem 16(8):1255-1268 https://doi.org/10.1007/s00775-011-0813-8
  15. Nguyen NT, Yatabe T, Yoon KS, Ogo S (2014) Molybdenum-containing membrane-bound formate dehydrogenase isolated from Citrobacter sp. S-77 having high stability against oxygen, pH, and temperature. J Biosci Bioeng 118(4):386-391 https://doi.org/10.1016/j.jbiosc.2014.03.011
  16. Nguyen TAD, Kim JP, Kim MS, Oh YK, Sim SJ (2008) Optimization of hydrogen production by hyperthermophilic eubacteria, Thermotoga maritima and Thermotoga neapolitana in batch fermentation. Int J Hydrogen Energ 33(5):1483-1488 https://doi.org/10.1016/j.ijhydene.2007.09.033
  17. Patel PD, Lakdawala A, Chourasia S, Patel RN (2016) Bio fuels for compression ignition engine: a review on engine performance, emission and life cycle analysis. Renew Sustain Energy Rev 65:24-43 https://doi.org/10.1016/j.rser.2016.06.010
  18. Sharmaa YC, Kumara A, Prasad R, Upadhyay SN (2017) Ethanol steam reforming for hydrogen production: latest and effective catalyst modification strategies to minimize carbonaceous deactivation. Renew Sustain Energy Rev 74:89-103 https://doi.org/10.1016/j.rser.2017.02.049
  19. Sin J-H, Park TH (2006) Biological hydrogen production processes. Korean Chem Eng Res 44(1):16-22
  20. Sokolova TG, Jeanthon C, Kostrikina NA, Chernyh NA, Lebedinsky AV, Stackebrandt E, Bonch-Osmolovskaya EA (2004) The first evidence of anaerobic CO oxidation coupled with $H_{2}$ production by a hyperthermophilic archaeon isolated from a deep-sea hydrothermal vent. Extremophiles 8(4):317-323 https://doi.org/10.1007/s00792-004-0389-0
  21. Suleman F, Dincer I, Agelin-Chaab M (2015) Environmental impact assessment and comparison of some hydrogen production options. Int J Hydrogen Energ 40(21):6976-6987 https://doi.org/10.1016/j.ijhydene.2015.03.123
  22. Yadav VS, Sharma D, Soni SL (2015) Performance and combustion analysis of hydrogen-fuelled C.I. engine with EGR. Int J Hydrogen Energ 40(12):4382-4391 https://doi.org/10.1016/j.ijhydene.2015.01.162
  23. Zhang D, Wang J, Lin Y, Si Y, Huang C, Yang J, Huang B, Li W (2017) Present situation and future prospect of renewable energy in China. Renew Sust Energ Rev 76:865-871 https://doi.org/10.1016/j.rser.2017.03.023