Chemical Industry and Engineering Progress ›› 2017, Vol. 36 ›› Issue (04): 1395-1403.DOI: 10.16085/j.issn.1000-6613.2017.04.032
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LI Xiaoshu, ZHANG Lin, GAO Dacheng, SHI Wenjing, FAN Yachao
Received:
2016-09-10
Revised:
2016-11-17
Online:
2017-04-05
Published:
2017-04-05
李晓姝, 张霖, 高大成, 师文静, 樊亚超
通讯作者:
李晓姝
作者简介:
李晓姝(1984-),女,硕士,工程师,从事生物基化学品研究开发工作。E-mail:lixiaoshu.fshy@sinopec.com。
CLC Number:
LI Xiaoshu, ZHANG Lin, GAO Dacheng, SHI Wenjing, FAN Yachao. Progress on the production of 1,3-propanediol by fermentation[J]. Chemical Industry and Engineering Progress, 2017, 36(04): 1395-1403.
李晓姝, 张霖, 高大成, 师文静, 樊亚超. 发酵法生产1,3-丙二醇的研究进展[J]. 化工进展, 2017, 36(04): 1395-1403.
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URL: https://hgjz.cip.com.cn/EN/10.16085/j.issn.1000-6613.2017.04.032
[1] 谢家明,徐泽辉,夏蓉晖,等. 1,3-丙二醇制备工艺的研究进展[J]. 合成纤维,2005,48(2):13-16. XIE J M,XU Z H,XIA R H,et al. Research progress on the technology for producing 1,3-propanediol[J]. Synthetic Fiber in China, 2005,48(2):13-16. [2] 朱春杰,方柏山. 微生物转化法生产1,3-丙二醇的研究进展[J]. 华侨大学学报(自然科学版),2009,30(5):481-486. ZHU C J,FANG B S. Progress on the production of 1,3-propanediol by microbial conversion[J]. Journal of Huaqiao University(Natural Science),2009,30(5):481-486. [3] Polyurethanes Magazine International:PU Magazine. 1,3-propanediol market worth USD 621. 2 million by the year 2021[EB/OL]. 2015[2016-09-10]. www. pu-magazine. com. [4] VLYSIDIS A,BINNS M,WEBB C. Glycerol utilisation for the production of chemicals:conversion to succinic acid,a combined experimental and computational study[J]. Biochemical Engineering Journal,2001,58(14):1-11. [5] BELKA A,BELLOU S,MAVROU M,et al. Biotechnological conversions of biodiesel derived waste glycerol by yeast and fungal species[J]. Energy,2011,36(2):1097-1108. [6] LIU H J,XU Y Z,ZHENG Z M. 1,3-Propanediol and its copolymers:research,development and industrialization[J]. Biotechnology Journal:Healthcare,Nutrition,Technology,2010,5(11):1137-1148. [7] 齐向辉,齐一琳,吴君华,等. 微生物发酵粗甘油生成1,3-丙二醇的研究进展[J]. 食品安全质量检测学报,2015,6(10):3923-3927. QI X H,QI Y L,WU J H,et al. Research progress on the microbial fermentation of 1,3-propandiol from crude glycerol[J]. Journal of Food Safety and Quality,2015,6(10):3923-3927. [8] KAUR G,SRIVASTAVA A K,CHAND S. Advances in biotechnological production of 1,3-propanediol[J]. Biochemical Engineering Journal,2012,64:106-118. [9] UMARE S S,CHANDURE A S,PANDEY R A. Synthesis,characterization and biodegradable studies of 1,3-propanediol based polyesters[J]. Polymer Degradation and Stability,2007,92(3):464-479. [10] 刘德华,刘宏娟,程可可.微生物发酵法生产l,3-丙二醇研究进展[J]. 合成纤维,2005,34(9):11-15. LIU D H,LIU H J,CHENG K K. Research progress on the production of l,3-propanediol by fermentation[J].Synthetic Fiber in China,2005,34(9):11-15. [11] NAKARNURA C E,WHITED G M.Metabolic engineering for the microbial production of 1,3-propanediol[J].Curr. Opin. Biotechnol. 2003,14(5):454-459. [12] 綦文涛,修志龙.甘油生物歧化为1,3-丙二醇过程的代谢和基因调控机理研究进展[J]. 中国生物工程杂志,2003,23(2):64-68. QI W T,XIU Z L. A study progress in metabolic mechanism and gene regulation in bioconversion of glycerol to 1,3-propanediol[J]. Journal of Chinese Biotechnology,2003,23(2):64-68. [13] O'BRIEN J R,RAYNAUD C,CROUX C,et a1.Insight into the mechanism of the B12-independent glycerol dehydratase from Clostridium butyricum:preliminary biochemical and structural characterization[J].Biochemistry,2004,43(16):4635-4644. [14] 王扬,方慧英,诸葛斌,等. 1,3-丙二醇产生菌的诱变育种及培养基优化[J]. 工业微生物,2010,40(4):13-17. WANG Y,FANG H Y,ZHU G B,et al. Improvement of 1,3-propanediol producing strains by mutation and optimization of its culture medium[J]. Industrial Microbiology,2010,40(4):13-17. [15] 董晓宇,腾虎,修志龙. 高产1,3-丙二醇的等离子体诱变菌株选育及发酵动力学分析[J]. 过程工程学报,2011,11(2):304-311. DONG X Y,TENG H,XIU Z L. Selection of strain exposed under plasma discharge with enhanced 1,3-propanediol production and kinetic analysis of batch fermentation[J]. The Chinese Journal of Process Engineering,2011,11(2):304-311. [16] 朱晓丽,南南,修志龙. 以粗甘油为原料高产1,3-丙二醇菌株的等离子体复合诱变[J]. 过程工程学报,2011,11(6):1030-1037. ZHU X L,NAN N,XIU Z L. Complex mutation of Klebsiella pneumoniae producing 1,3-propanediol from biodiesel-derived glycerol[J]. The Chinese Journal of Process Engineering,2011,11(6):1030-1037. [17] ZHOU S,LI L L,PERSEKE M,et al. Isolation and characterization of a Klebsiella pneumonia strain from mangrove sediment for efficient biosynthesis of 1,3-propanediol[J]. Science China Press,2015,60(5):511-521. [18] REIMANN A,BIEBL H,DECKER W D. Influence of iron,phosphate and methyl viologen on glycerol fermentation of Closwidium butyricum[J]. Appl. Microbiol. Biotechnol. A,1996,45:47-50. [19] 陈利飞,李猛,马春玲,等.克雷伯氏菌产1,3-丙二醇ldhA基因缺失菌株的构建[J].生物技术通报,2015,31(3):121-126. CHEN L F,LI M,MA C L,et al. Construction a metabolic engineering strain to produce 1,3-propanediol from Klebsiella pneumoniae by ldhA gene deletion mutation[J]. Biotechnology Bulletin,2015,31(3):121-126. [20] 刘陈才,葛喜珍,田平芳. 过表达生长相关基因对肺炎克雷伯氏菌甘油代谢的影响[J].北京化工大学学报(自然科学版),2016,43(2):53-57. LIU C C,GE X Z,TIAN P F. Effects of growth-related gene overexpression on glycerol metabolism in Klebsiella pneumoniae[J].Journal of Beijing University of Chemical Technology(Natural Science),2016,43(2):53-57. [21] 付晓萌,诸葛斌,陆信曜,等.异源表达木糖异构酶基因对克雷伯氏菌合成1,3-丙二醇的影响[J].微生物学通报,2015,42(11):2079-2086. FU X M,ZHUGE B,LU X Z,et al. Impact of the heterologous expression of xylose isomerase gene on the biosynthesis of 1,3-propanediol by Klebsiella pneumoniae[J].Microbiology China,2015,42(11):2079-2086. [22] SILVA G P,MACK M,CONTIERO J. Glycerol:a promising and abundant carbon source for industrial microbiology[J].Biotechnology Advances,2009,27(1):30-39. [23] LEE S M,HONG W K,HEO W Y,et al.Enhancement of 1,3-propanediol production by expression of pyruvate decarboxylase and aldehyde dehydrogenase from Zymomonas mobilis in the acetolactate-synthase-deficient mutant of Klebsiella pneumoniae[J]. Journal of Industrial Microbiology & Biotechnology,2014,41(8):1259-1266. [24] WU Z,WANG Z,WANG G Q,et al. Improved 1,3-propanediol production by engineering the 2,3-butanediol and formic acid pathways in integrative recombinant Klebsiella pneumoniae[J]. Journal of Biotechnology,2013,168(2):194-200. [25] LIANG Q F,ZHANG H J,LI S N,et al.Construction of stress-induced metabolic pathway from glucose to 1,3-propanediol in Escheeichia coli[J].Applied Microbiology and Biotechnology,2011,89(1):57-62. [26] 饶志明,马正,沈微,等.以葡萄糖为底物产1,3-丙二醇重组酿酒酵母的构建方法:101130782A[P]. 2008-02-27. YAO Z M,MA Z,SHEN W,et al. Construction method of recombinant Saccharomyces cerevisiae producing 1,3-propanediol from glucose:101130782A[P]. 2008-02-27. [27] NAKAMURA C E,WHITED G M. Metabolic engineering for the microbial production of 1,3-propanediol[J].Current Opinion in Biotechnology,2003,14(5):454-459. [28] 薛学东,李志敏,李伟,等.补料分批发酵过程中两阶段发酵生产1,3-丙二醇[J]. 工业微生物,2011,41(3):7-11. XUE X D,LI Z M,LI W,et al. Production of 1,3-propanediol in fed-batch fermentation using two-stage strategy[J].Industrial Microbiology,2011,41(3):7-11. [29] WILKENS E,RINGEL A K,HORTIG D,et al. High-level production of 1,3-propanediol from crude glycerol by Clostridium butyricum AKR102a[J].Appl. Microbiol. Biotechnol.,2012,93(3):1057-1063. [30] CHATZIFRAGKOU A,PAPANIKOLAOU S,DIETZ D,et al. Production of 1,3-propanediol by Clostridium butyricum growing on biodiesel-derived crude glycerol through a non-sterilized fermentation process[J].Appl. Microbiol. Biotechnol.,2011,91:101-112. [31] 贺璐,赵雪冰,孙燕,等.Klebsiella pneumonia 连续发酵生产1,3-丙二醇的工艺优化[J].食品与发酵工业,2012,38(8):23-28. HE L,ZHAO X B,SUN Y,et al. Optimization of continuous fermentative production of 1,3-propanediol by Klebsiella pneumonia[J]. Food and Fermentation Industries,2012,38(8):23-28. [32] PAJUELO M G,ANDRADE J C,VASCONCELOS I. Production of 1,3-propanediol by Clostridium butyricum VPI 3266 in continuous cultures with high yield and productivity[J].Microbiol. Biotechnol.,2005,32:391-396. [33] GUNGORMUSLER M,GONEN C,AZBAR N. Effect of cell immobilization on the production of 1,3-propanediol[J]. New Biotechnology,2013,30(6):623-628. [34] 杨博,曹禺,吕黎兵,等. 1,3-丙二醇的生物膜固定化发酵法:201010285458. 8[P]. 2011-01-12. YANG B,CAN Y,LV L B,et al. Biofilm immobilized fermentation of 1,3-propanediol:201010285458. 8[P]. 2011-01-12. [35] GONEN C,GUNGORMUSLER M,AZBAR N. Continuous production of 1,3-propanediol using waste glycerol with Clostridium beijerinckii NRRL B-593 immobilized on glass beads and glass rushing rings[J]. Chemical and Biochemical Engineering Quarterly,2013,27(2):227-234. [36] GUNGORMUSLER M,GONEN C,AZBAR N. Continuous production of 1,3-propanediol using raw glycerol with immobilized Clostridium beijerinckii NRRL B-593 in comparison to suspended culture[J].Bioprocess and Biosystems Engineering,2011,34(6):727-733. [37] 郭玲,杜丽琴,韦宇拓,等.混合菌发酵1,3-丙二醇的初步研究[J].生物技术通报,2010,11:238-241. GUO L,DU L Q,WEI Y T,et al. Preliminary study on production of 1,3-propanediol by mixed bacterias[J].Biotechnology Bulletin,2010,11:238-241. [38] PACHAPUR V L,SARMA S J,BRAR S K,et al. Evidence of metabolic shift on hydrogen,ethanol and 1,3-propanediol production from crude glycerol by nitrogen sparging under micro-aerobic conditions using co-culture of Enterobater aerogenes and Clostridium butyricum[J].International Journal of Hydrogen Energy,2015,40(28):8669-8676. [39] BIZUKOJC M,DIETZ D,SUN J,et al. Metabolic modeling of syntrophic-like growth of a 1,3-propanediol producer,Clostridium butyricum,and a methanogenic archeon,Methanosarcina mazei,under anaerobic conditions[J].Bioprocess and Biosystems Engineering,2010,33(4):507-523. [40] 郑宗明,陈珍,孙燕,等. pH对克雷伯氏菌1,3-丙二醇合成关键酶酶活及发酵特性的影响[J].工业微生物,2010,40(3):48-52. ZHENG Z M,CHEN Z,SUN Y,et al. Effects of pH on activities of key enzymes and 1,3-propanediol fermentation properties with Klebsiella pneumoniae[J]. Industrial Microbiology,2010,40(3):48-52. [41] 董晓宇,刘婷婷,窦少华,等.大气压介质阻挡放电等离子体强化克雷伯氏菌发酵的研究[J].高校化学工程学报,2015,29(4):881-889. DONG X Y,LIU T T,DOU S H,et al. Enhanced fermentation of Klebsiella pneumoniae using dielectric barrier discharge plasma under atmospheric pressure[J]. Journal of Chemical Engineering of Chinese Universities,2015,29(4):881-889. [42] WOJTUSIK M,RODRIGUEZ A,RIPOLL V,et al. 1,3-propanediol production by Klebsiella oxytoca NRRL-B199 from glycerol. Medium composition and operational conditions[J].Biotechnology Reports,2015,6(4):100-107. [43] 宋志远,腾虎,修志龙.基于生长代谢耦联的1,3-丙二醇发酵过程底物流加控制策略[J].过程工程学报,2012,12(6):996-1001. SONG Z Y,TENG H,XIU Z L. Coupled-feeding strategy based on the cell growth and metabolism during 1,3-propanediol fermentation[J]. The Chinese Journal of Process Engineering,2012,12(6):996-1001. [44] 黄金海,陈振,孙燕,等.克雷伯氏肺炎杆菌LDH526产1,3-丙二醇的甘油自动流加策略[J].生物工程学报,2015,31(10):1520-1527. HUANG J H,CHEN Z,SUN Y,et al. Automatically feeding strategy for 1,3-propanediol fermentation of Klebsiella Pneumoniae LDH526[J].Chinese Journal of Biotechnology,2015,31(10):1520-1527. [45] CHATZIFRAGKOU A,PAPANIKOLAOU S,KOPSAHELIS N,et al.Biorefinery development through utilization of biodiesel industry by-products as sole fermentation feedstock for 1,3-propanediol production[J].Bioresource Technology,2014,159(18):167-175. [46] 龚燕,戴玲妹,唐宇,等. 1,3-丙二醇发酵液电渗析脱盐中离子膜影响的实验研究[J].膜科学与技术,2005,25(4):21-29. GONG Y,DAI L M,TANG Y,et al.Effect of stretching process on expanded PTFE membrane porous structure[J]. Membrane Science and Technology,2005,25(4):21-29. [47] 郝健,刘德华.1,3-丙二醇发酵液电渗析法脱盐[J].过程工程学报,2005,5(1):36-39. HAO J,LIU D H. Desalination of fermented broth containing 1,3-propanediol by electrodialysis[J].The Chinese Journal of Process Engineering,2005,5(1):36-39. [48] 唐宇,龚燕,王晓琳,等. 1,3-丙二醇发酵液电渗析脱盐的中试研究[J].化工进展,2004,23(1):84-87. TANG Y,GONG Y,WANG X L,et al. Study on electrodialytical desalination of 1,3-propanediol in pilot-plant level[J]. Chemical Industry and Engineering Progress,2004,23(1):84-87. [49] 毕生雷,乔建援,孙沛勇,等. 1,3-丙二醇发酵液除盐的离子交换工艺参数研究[J].河南化工,2014,31(4):27-30. BI S L,QIAO J Y,SUN P Y,et al. Study on the technical parameters of ion exchange at 1,3-propanediol fermentation liquid desaiting[J]. Henan Chemical Industry,2014,31(4):27-30. [50] 侯志强,王崇辉,王领民,等. 1,3-丙二醇发酵液脱盐用离子交换树脂的筛选[J].当代化工,2012,41(11):1198-1200. HOU Z Q,WANG C H,WANG L M,et al. Selection of ion exchange resins for desalination of 1,3-propanediol fermentation broth[J]. Contemporary Chemical Industry,2012,41(11):1198-1200. [51] 王领民,廖莎,乔凯,等. 1,3-丙二醇发酵液离子交换耦联电渗析脱盐的中试研究[J]. 精细化工,2014,31(3):337-341. WANG L M,LIAO S,QIAO K,et al. Studies on the ion exchange coupling with electrodialytical desalination of 1,3-propanediol fermentation broth at pilot-plant Level[J]. Fine Chemicals,2014,31(3):337-341. [52] 徐育烨,徐友海,刘海军,等. 一种1,3-丙二醇发酵液的分离方法:101875598[P]. 2009-04-30. XU Y Y,XU Y H,LIU H J,et al. A method of separation 1,3-propanediol from fermentation broth:101875598[P]. 2009-04-30. [53] 修志龙,李志刚,江波,等.一种从发酵液中分离1,3-丙二醇的双水相萃取方法:101012151[P]. 2007-01-24. XIU Z L,LI Z G,JIANG B,et al. A method of separating 1,3-propanediol from fermentation broth by aqueous two-phase:101012151[P]. 2007-01-24. [54] 修志龙,张代佳,李晓晖. 硫酸铵盐析法从微生物发酵液中提取分离1,3-丙二醇:19874513[P]. 2006-12-08. XIU Z L,ZHANG D J,LI X H. Separating 1,3-propanediol from fermentation broth by salting out method with ammonium sulfate:19874513[P]. 2006-12-08. [55] ADKESSON D M,ALSOP A W,AMES T T,et al. Purification of biologically-produced 1,3-propanediol:US7919658[P]. 2011-04-05. [56] BANIEL AVRAHAM M,JANSEN R P,VITNER A,et al. Process for producing 1,3-propanediol:US0222153[P]. 2004-11-11. [57] 银建中,周丹,徐琴琴,等. 一种超临界微乳/反胶束膜分离提取发酵液中多元醇的方法:101362674[P]. 2008-09-17. YIN J Z,ZHOU D,XU Q Q,et al. A method of supercritical micro emulsion/reverse micelle membrane separating polylol from fermentation broth:101362674[P]. 2008-09-17. [58] 方云进,徐兴军,殷俊. 萃取分离发酵液中1,3-丙二醇的方法:102816048[P]. 2012-09-04. FANG Y J,XU X J,YIN J. Method of extraction 1,3-propanediol from fermentation broth:102816048[P]. 2012-09-04. |
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