$\require{mediawiki-texvc}$

연합인증

연합인증 가입 기관의 연구자들은 소속기관의 인증정보(ID와 암호)를 이용해 다른 대학, 연구기관, 서비스 공급자의 다양한 온라인 자원과 연구 데이터를 이용할 수 있습니다.

이는 여행자가 자국에서 발행 받은 여권으로 세계 각국을 자유롭게 여행할 수 있는 것과 같습니다.

연합인증으로 이용이 가능한 서비스는 NTIS, DataON, Edison, Kafe, Webinar 등이 있습니다.

한번의 인증절차만으로 연합인증 가입 서비스에 추가 로그인 없이 이용이 가능합니다.

다만, 연합인증을 위해서는 최초 1회만 인증 절차가 필요합니다. (회원이 아닐 경우 회원 가입이 필요합니다.)

연합인증 절차는 다음과 같습니다.

최초이용시에는
ScienceON에 로그인 → 연합인증 서비스 접속 → 로그인 (본인 확인 또는 회원가입) → 서비스 이용

그 이후에는
ScienceON 로그인 → 연합인증 서비스 접속 → 서비스 이용

연합인증을 활용하시면 KISTI가 제공하는 다양한 서비스를 편리하게 이용하실 수 있습니다.

[국내논문] 미강을 이용한 해양미생물 Bacillus atrophaeus LBH-18 유래의 carboxymethylcellulase 생산의 최적화
Enhanced Production of Carboxymethylcellulase by a Newly Isolated Marine Microorganism Bacillus atrophaeus LBH-18 Using Rice Bran, a Byproduct from the Rice Processing Industry 원문보기

생명과학회지 = Journal of life science, v.22 no.10 = no.150, 2012년, pp.1295 - 1306  

김이준 (동아대학교 대학원 의생명과학과) ,  고와 (동아대학교 대학원 의생명과학과) ,  이유정 (동아대학교 대학원 의생명과학과) ,  이상운 (동아대학교 대학원 의생명과학과) ,  정정한 (동아대학교 생명공학과) ,  이진우 (동아대학교 BK21 생물자원 실버바이오사업 인력양성단)

초록
AI-Helper 아이콘AI-Helper

Carboxymethylcellulase를 생산하는 미생물을 해수에서 분리하여 16S rDNA의 염기서열을 분석하고 계통 발생학 방법으로 비교한 결과, Bacillus atrophaeus로 확인되었다. 이 해양 미생물을 B. atrophaeus LBH-18로 명명하였으며 response surface method (RSM)를 사용하여 carboxymethylcellulase의 생산 조건을 최적화하였다. 이 균주의 생육에 최적인 미강, 펩톤 및 배지의 초기 pH는 68.1 g/l, 9.1 g/l 및 7.0이었으나, carboxymethylcellulase의 생산에 최적인 조건은 각각 55.2 g/l, 6.6 g/l 및 7.1이었다. 이 균주의 생육과 carboxymethylcellulase의 생산에 최적인 온도는 $30^{\circ}C$이었다. 이 균주의 생육에 최적인 생물배양기의 교반속도 및 통기량은 324 rpm 및 0.9 vvm이었으나, carboxymethylcellulase의 생산에 최적인 조건은 각각 343 rpm 및 0.6 vvm이었다. 파이롯트 규모의 생물배양기를 사용하여 실험한 결과, 이 균주의 생육과 carboxymethylcellulase의 생산에 최적인 내압은 0.06 MPa이었다. 최적 조건의 내압으로 배양한 결과, 이 균주의 carboxymethylcellulase의 생산성은 127.5 U/ml이었으며, 이 결과는 내압을 가하지 않고 배양한 경우에 비하여 1.32배 향상된 것이다. 본 연구를 통하여 쌀 도정 공정의 부산물인 미강을 기질로 개발하였으며 해양 미생물을 사용하여 carboxymethylcellulase의 생산기간을 7~10일에서 3일로 단축시켰다.

Abstract AI-Helper 아이콘AI-Helper

A microorganism producing carboxymethylcellulase (CMCase) was isolated from seawater and identified as Bacillus atrophaeus. This species was designated as B. atrophaeus LBH-18 based on its evolutionary distance and the phylogenetic tree resulting from 16S rDNA sequencing and the neighbor-joining met...

주제어

AI 본문요약
AI-Helper 아이콘 AI-Helper

* AI 자동 식별 결과로 적합하지 않은 문장이 있을 수 있으니, 이용에 유의하시기 바랍니다.

제안 방법

  • ) were used as a dependent output variable. The interrelationships of the variables were determined by fitting the second degree polynomial equation to data obtained from 20 experiments using mean values of the triplicates of each experiment conducted trice at different occasions. The maximum values of cell growth and production of CMCase were taken as the responses of the design experiment.
  • 0% (w / v) agarose gel, excised from the gel, and purified. The purified products were cloned into a pGEM-T Easy vector (Promega Co., Madison, USA) and subsequently sequenced using an ALF Red automated DNA sequencer (Pharmacia, Sweden). The 16S rDNA sequence of the isolate was aligned with those in the GenBank database.

대상 데이터

  • 0 g/l glucose, fructose, maltose, sucrose, rice bran, and rice hulls. Nitrogen sources tested were 2.5 g/l malt extract, peptone, tryptone, yeast extract, ammonium sulfate, and ammonium nitrate. Initial pH of the medium before sterilization was adjusted to 6.

데이터처리

  • Statistical analysis of the model was performed to evaluate the analysis of variance (ANOVA). A multiple regression analysis of the data was carried out with the statistical software, Design-Expert (Version 7.1.6, Stat-Ease Inc., Minneapolis, USA).
  • The maximum values of cell growth and production of CMCase were taken as the responses of the design experiment. Statistical analysis of the model was performed to evaluate the analysis of variance (ANOVA). A multiple regression analysis of the data was carried out with the statistical software, Design-Expert (Version 7.

이론/모형

  • The 16S rDNA sequence of the isolate was aligned with those in the GenBank database. Multiple alignments of sequences and calculations of levels of sequence similarity were performed by using CLUSTAL W [33]. Neighbor-joining phylogenetic analysis was carried out with MEGA program [20].
본문요약 정보가 도움이 되었나요?

참고문헌 (39)

  1. Alam, M. Z., Muyibi, S. A. and Wahid, R. 2008. Statistical optimization of process conditions for cellulase production by liquid state bioconversion of domestic wastewater sludge. Bioresour. Technol. 99, 4709-4716. 

  2. Blumer-Schuette, S. E., Kataeva, I., Westpheling, J., Adams, M. W. W. and Kelly, R. M. 2008. Extremely thermophilic microorganisms for biomass conversion: status and prospects. Curr. Opin. Biotechnol. 19, 210-217. 

  3. Chen, M., Zhao, J. and Xia, L. 2008. Enzymatic hydrolysis of maize straw polysaccharides for the production of reducing sugars. Carbohydr. Polym. 71, 411-415. 

  4. Domingues, F. C., Queiroz, J. A., Cabral, J. M. S. and Fonseca, L. P. 2000. The influence of culture conditions on mycelial structure and cellulase production by Trichoderma reesei Rut C-30. Enzyme Microb. Technol. 26, 394-401. 

  5. Elibol, M. and Ozer, D. 2000. Influence of oxygen transfer on lipase production by Rhizopus arrhizus. Process Biochem. 36, 325-329. 

  6. Emtiazi, G. and Nahvi, I. 2000. Multi-enzyme production by Cellulomonas sp. grown on wheat straw. Biomass Bioenergy 19, 31-37. 

  7. Feng, Y., He, Z., Ong, S. L., Hu, J., Zhang, Z. and Ng, W. J. 2003. Optimization of agitation, aeration, and temperature conditions for maximum $\beta$ -mannanase production. Enzyme Microb. Technol. 32, 282-289. 

  8. Gao, W., Kim, Y. J., Chung, C. H., Li, J. and Lee, J. W. 2010. Pilot-scale optimization of parameters related to dissolved oxygen for mass production of pullulan by Aureobasidium pullulans HP-2001. J. Life Sci. 20, 1433-1442. 

  9. Howard, R. L., Abotsi, E., Jansen von Rensburg, E. L. and Howard, S. 2003. Lignocellulose biotechnology: issues of bioconversion and enzyme production. Afr. J. Biotechnol. 2, 602-619. 

  10. Jo, K. I., Lee, Y. J., Kim, B. K., Lee, B. H., Chung, C. H., Nam, S. W., Kim, S. K. and Lee, J. W. 2008. Pilot-scale production of carboxymethylcellulase from rice hull by Bacillus amyloliquefaciens DL-3. Biotechnol. Bioprocess Eng. 13, 182-188. 

  11. Jung, I. S., Kim, Y. J., Song, H. J., Gal, S. W. and Choi, Y. J. 2008. Purification and properties of a novel extracellular agarase from marine bacterium, Sphingomonas paucimobilis AS-1. J. Life Sci. 18, 103-108. 

  12. Kang, S., Park, W, Y. S., Lee, J. S., Hong, S. I. and Kim, S. W. 2004. Production of cellulase and hemicellulases by Aspergillus niger KK2 from lignocellulosic biomass. Bioresour. Technol. 91, 153-156. 

  13. Khambhaty, Y., Mody, K. and Jha, B. 2007. Purification and characterization of $\kappa$ -carrageenase from a novel $\gamma$ -proteobacterium, Pseudomonas elongate (MTCC 5261) syn. Microbulbifer elongates comb. Nov. Biotechnol. Bioproccess Eng. 12, 668-675. 

  14. Kim, B. K., Lee, B. H., Y. J. Lee, Y. J., Jin, I. H., Chung, C. H. and Lee, J. W. 2009. Purification and characterization of carboxymethylcellulase isolated from a marine bacterium, Bacillus subtilis subsp. subtilis A-53. Enzyme Microb. Technol. 44, 411-416. 

  15. Kim, H. J., Lee, Y. J., Gao, W., Chung, C. H. and Lee, J. W. 2012. Optimization of salts in medium for production of carboxymethylcellulase by a psychrophilic marine bacterium, Psychrobacter aquimaris LBH-10 using two statistical method. Kor. J. Chem. Eng. 12, 384-391. 

  16. Kim, H. J., Gao, W., Lee, Y. J., Chung, C. H. and Lee, J. W. 2010. Characterization of acidic carboxymethylcellulase produced by a marine microorganism, Psychrobacter aquimaris LBH-10. J. Life Sci. 20, 487-495. 

  17. Kim, H. J., Lee, Y. J., Gao, W., Chung, C. H., Son, C. W. and Lee, J. W. 2011. Statistical optimization for fermentation conditions and comparison of their influences on production of cellulases by a psychrophilic marine bacterium, Psychrobacter aquimaris LBH-10 using an orthogonal array method. Biotechnol. Bioprocess. Eng. 16, 542-548. 

  18. Kim, H. J., Gao, W., Chung, C. H. and Lee, J. W. 2011. Statistical optimization for production of carboxymethylcellulase from rice hulls by a newly isolated marine microorganism Bacillus licheniformis LBH-52 using response surface method. J. Life Sci. 21, 1083-1093. 

  19. Krishna, C. 1999. Production of bacterial cellulases by a solid state bioprocessing of banana wastes. Bioresour. Technol. 69, 231-239. 

  20. Kumar, S., Tamura, K. and Nei, N. 1993. MEGA: Molecular evolutionary genetic analysis. Version 1.01, The Pennsylvania State University, University Park, USA. 

  21. Latifian, M., Hamidi-Esfahani Z. and Barzegar, M. 2007. Evaluation of culture conditions for cellulase production by two Trichoderma reesei mutants under solid-state fermentation conditions. Bioresour. Technol. 98, 3634-3637. 

  22. Lee, B. H., Kim, B. K., Lee, Y. J., Chung, C. H. and Lee, J. W. 2010. Industrial scale of optimization for the production of carboxymethylcellulase from rice bran by a marine bacterium, Bacillus subtilis subsp. subtilis A-53. Enzyme Microbiol. Technol. 46, 38-42. 

  23. Lee, Y. J., Kim, H. J., Gao, W., Chung, C. H. and Lee, J. W. 2011. Comparison of statistical methods for optimization of salts in medium for production of carboxymethylcellulase by Bacillus amyloliquefaciens DL-3 by a recombinant E. coli JM109/DL-3. J. Life Sci. 21, 1205-1213. 

  24. Lee, Y. J., Kim, H. J., Gao, W., Chung, C. H. and Lee, J. W. 2012. Statistical optimization for production of carboxymethylcellulase of Bacillus amyloliquefaciens DL-3 by a recombinant Escherichia coli JM109/DL-3 from rice bran using response surface method. Biotechnol. Bioprocess Eng. 17, 227-235. 

  25. Lee, S. M. and Koo, Y. M. 2001. Pilot-scale production of cellulose using Trichoderma reesei Rut C-30 in fed-batch mode. J. Microbiol. Biotechnol. 11, 229-233. 

  26. Malinowska, E., Krzyczkowski, W., Lapienis, G. and Herold, F. 2009. Improved simultaneous production of mycelial biomass and polysaccharides by submerged culture of Hericium erinaceum: optimization using a central composite rotatable design (CCRD). J. Ind. Microbiol. Biotechnol. 36, 1513-1527. 

  27. Mawadza, C., Hatti-Kaul, R., Zvauya, R. and Mattiasson, B. 2000. Purification and characterization of cellulases produced by two Bacillus strains. J. Biotechnol. 83, 177-87. 

  28. Roboson, L. M. and Chambliss, G. H. 1989. Celluases of bacterial origin. Enzyme Microb. Technol. 11, 626-644. 

  29. Ryu, D. D. Y. and Mandels, M. 1980. Cellulase: biosynthesis and applications. Enzyme Microb. Technol. 2, 91-102. 

  30. Saitous, N. and Nei, M. 1987. The neighbor-joining method: a new method for reconstructing phylogenetic trees. Mol. Biol. Evol. 4, 406-425. 

  31. Sukumaran, R. K., Singhania, R. R., Mathew, G. M. and Pandey, A. 2009. Cellulase production using biomass feed stock and its application in lignocellulose saccharification for bio-ethanol production. Renew. Energy 34, 421-424. 

  32. Tao, S., Beihui, L., Zuohu, L. and Deming, L. 1999. Effects of air pressure amplitude on cellulase productivity by Trichoderma viride SL-1 in periodic pressure solid state fermenter. Process Biochem. 34, 25-29. 

  33. Thompson, J. D., Higgins, D. G.. and Gibson, T. J. 1994. CLUSTAL W: Improving the sensitivity of progressive multiple sequence alignment through sequence weighting, positions- specific gap penalties and weight matrix choice. Nucleic Acids Res. 22, 4673-4680. 

  34. Tobias, H. J., Pitesky, M. E., Fergenson, D. P., Steele, P. T., Horn, J., Frank, M. and Gard, E. E. 2006. Following the biochemical and morphological changes of Bacillus atrophaeus cells during the sporulation process using bioaerosol mass spectrometry. J. Microbiol. Meth. 67, 56-63. 

  35. Tomas-Pejo, E., Carcia-Aparicio, M., Negr, M. J., Oliva, J. M. and Ballesteros, M. 2009 Effect of different cellulase dosage on cell viability and ethanol production by Kluyveromeces marxianus in SSF process. Bioresour. Technol. 100, 890-895. 

  36. Wei, G. Y., Gao, W., Jin, I. H., Yoo, S. Y., Lee, J. H., Chung, C. H. and Lee, J. W. 2009. Pretreatment and saccharification of rice hulls for the production of fermentable sugars. Biotechnol. Bioprocess Eng. 14, 828-834. 

  37. Weisburg, W. G., Barns, S. M., Pelletire, D. A. and Lane, D. J. 1991. 16S ribosomal DNA amplication for phylogenetic study. J. Bacteriol. 173, 697-703. 

  38. Yi, J. C., Sandra, J. C., John, A. B. and Shu, T. C. 1999. Production and distribution of endoglucanase, cellobiohydrolase, and $\beta$ -glucosidase components of the cellulolytic system of Volvariella volvacea, the edible straw mushroom. Appl. Environ. Microbiol. 65, 553-559. 

  39. Yu, X. B., Nam, J. H., Yun, H. S. and Koo, Y. M. 1998. Optimization of cellulose production in batch fermentation by Trichoderma reesei. Biotechnol. Bioprocess Eng. 3, 44-47. 

저자의 다른 논문 :

LOADING...

관련 콘텐츠

오픈액세스(OA) 유형

FREE

Free Access. 출판사/학술단체 등이 허락한 무료 공개 사이트를 통해 자유로운 이용이 가능한 논문

이 논문과 함께 이용한 콘텐츠

유발과제정보 저작권 관리 안내
섹션별 컨텐츠 바로가기

AI-Helper ※ AI-Helper는 오픈소스 모델을 사용합니다.

AI-Helper 아이콘
AI-Helper
안녕하세요, AI-Helper입니다. 좌측 "선택된 텍스트"에서 텍스트를 선택하여 요약, 번역, 용어설명을 실행하세요.
※ AI-Helper는 부적절한 답변을 할 수 있습니다.

선택된 텍스트

맨위로