|本期目录/Table of Contents|

[1]赵丽红,陈威,高艳娇,等.基因组重排技术在微生物育种中的应用研究进展[J].江苏农业科学,2018,46(18):1-5.
 Zhao Lihong,et al.Application and research progress of genome shuffling in microorganism breeding[J].Jiangsu Agricultural Sciences,2018,46(18):1-5.
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基因组重排技术在微生物育种中的应用研究进展(PDF)
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《江苏农业科学》[ISSN:1002-1302/CN:32-1214/S]

卷:
第46卷
期数:
2018年第18期
页码:
1-5
栏目:
专论与综述
出版日期:
2018-09-20

文章信息/Info

Title:
Application and research progress of genome shuffling in microorganism breeding
作者:
赵丽红 陈威 高艳娇 肖静
辽宁工业大学土木建筑工程学院,辽宁锦州 121001
Author(s):
Zhao Lihonget al
关键词:
基因组重排技术原生质体融合微生物育种工程菌
Keywords:
-
分类号:
Q784
DOI:
-
文献标志码:
A
摘要:
基因组重排技术是在传统诱变技术和细胞融合技术基础上发展而来的,是对整个微生物基因组的重排,来选育具有优良性状菌株的新型育种技术。基因组重排技术在无须了解工程菌遗传背景的情况下通过多亲本原生质体递归融合,可以使工程菌快速得到优良表型。综述了基因组重排技术的原理、优势以及微生物育种及获得代谢产物等方面应用的研究现状,并展望了基因组重排技术的发展前景。
Abstract:
-

参考文献/References:

[1]Zhang Y X,Perry K,Vinci V A,et al. Genome shuffling leads to rapid phenotypic improvement in bacteria[J]. Nature,2002,415(6872):644-646.
[2]王丽宁,赵妍,奚丽萍,等. 基因组重排技术及其在真菌育种中的应用[J]. 食品工业科技,2014,35(18):362-365.
[3]Gong J X,Zheng H J,Wu Z J,et al. Genome shuffling:progress and applications for phenotype improvement[J]. Biotechnology Advances,2009,27(6):996-1005.
[4]刘源慧. 应用基因组改组技术选育真菌α-淀粉酶高产菌株[D]. 福州:福建师范大学,2011:41-54.
[5]Skelley A M,Kirak O,Suh H,et al. Microfluidic control of cell pairing and fusion[J]. Nature Methods,2009,6(2):147-152.
[6]Imada C,Ikemoto Y,Kobayashi T,et al. Isolation and characterization of the interspecific fusants from Streptomycetes obtained using a liquid regeneration method[J]. Fisheris Science,2002,68(2):395-402.
[7]John R P,Gangadharan D,Nampoothiri K M. Genome shuffling of Lactobacillus delbrueckii mutant and Bacillus amyloliquefaciens through protoplasmic fusion for L-lactic acid production from starchy wastes[J]. Bioresource Technology,2008,99(17):8008-8015.
[8]Dai M,Ziesman S,Ratcliffe T,et al. Visualization of protoplast fusion and quantitation of recombination in fused protoplasts of auxotrophic strains of Escherichia coli[J]. Metabolic Engineering,2005,7(1):45-52.
[9]Kang J X,Chen X J,Chen W R,et al. Enhanced production of pullulan in Aureobasidium pullulans by a new process of genome shuffling[J]. Process Biochemistry,2011,46(3):792-795.
[10]李荣杰. 微生物诱变育种方法研究进展[J]. 河北农业科学,2009,13(10):73-76,78.
[11]吴帅,陈叶福,沈楠,等. 高耐性酿酒酵母的杂交育种[J]. 酿酒科技,2006(10):20-26.
[12]宋春艳,刘德云,尚晓冬,等. 香菇杂交新品种“中香16号”的选育及示范推广[J]. 食用菌学报,2010,17(4):11-14.
[13]Yamashita F,Hotta K,Kursawa S,et al. New antibiotic-producing Streptomycetes,Selected by antibiotic resistance as a marker. Ⅰ. New antibiotic production generated by protoplast fusi on treatment between Streptomyces griseus and S.tenjimariensis[J]. The Journal of Antibiotics,1985,38(1):58-63.
[14]王航,杨君,薛薇,等. 利用抗生素抗性筛选技术和基因组重排技术选育剌糖多孢菌提高多杀菌素产量[J]. 上海农业学报,2015,31(1):5-10.
[15]El-Gendy M M A ,EL-Bondkly A M A . Genome shuffling of marine derived bacterium Nocardia sp. ALAA 2000 for improved ayamycin production[J]. Antonie van Leeuwenhoek,2011,99(4):773-780.
[16]Zheng P,Zhang K K,Yan Q,et al. Enhanced succinic acid production by Actinobacillus succinogenes after genome shuffling[J]. Journal of Industrial Microbiology & Biotechnology,2013,40(8):831-840.
[17]Chalopagorn P,Charoenpanich J,Choowongkomon K. Genome shuffling enhances lipase production of thermophilic Geobacillus sp.[J]. Applied Biochemistry and Biotechnology,2014,174(4):1444-1454.
[18]Hiroyuki H,Takashi Y,Yashuiro Y. Genome shuffling of Streptomyces sp.U121 for improved production of hydroxycitric acid[J]. Applied Microbiology & Biotechnology,2007,73(6):1387-1393.
[19]赵凯,平文祥,张丽娜,等. 用Genome shuffling技术选育紫杉醇高产菌株[J]. 中国科学,2008,38(3):221-229.
[20]Xu F,Jin H J,Li H M,et al. Genome shuffling of Trichoderma viride for enhanced cellulase production[J]. Annals of Microbiology,2012,62(2):509-515.
[21]朱岩,宋欣怡,黄小池,等. 基因组重排选育麦迪霉素高产菌株[J]. 沈阳药科大学学报,2011,28(10):830-834.
[22]Wang H K,Zhang J,Wang X J,et al. Genome shuffling improves production of the low-temperature alkalophilic lipase by Acinetobacter johnsonii[J]. Biotechnology Letters,2012,34(1):145-151.
[23]Yu G H,Hu Y S,Hui M,et al. Genome shuffling of Streptomyces roseosporus for improving daptomycin production[J]. Applied Biochemistry and Biotechnology,2014,172(5):2661-2669.
[24]Li W,Chen G G,Gu L L,et al. Genome shuffling of Aspergillus niger for improving transglycosylation activity[J]. Applied Biochemistry and Biotechnology,2014,172(1):50-61.
[25]Wang Q L,Zhang D,Li Y D,et al. Genome shuffling of Lactobacillus brevis for enhanced production of thymidine phosphorylase[J]. Applied Biochemistry and Biotechnology,2014,173(6):1553-1563.
[26]夏燕春,王超,陈园,等. 基于基因组重排技术的多杀菌素高产菌株选育[J]. 化工学报,2014,65(9):3577-3582.
[27]Li H M,Xue F,Wang W J,et al. Genome shuffling of Lactobacillus brevis for enhanced production of thymidine phosphorylase[J]. Biotechnology and Bioprocess Engineering,2015,20(2):333-340.
[28]Wang H,Xue W,He Y M,et al. Improvement of the ability to produce spinosad in Saccharopolyspora spinosa through the acquisition of drug resistance and genome shuffling[J]. Annals of Microbiology,2015,65(2):771-777.
[29]Zhang G Q,Lin Y P,Qi X N,et al. Genome shuffling of the nonconventional yeast Pichia anomala for improved sugar alcohol production[J]. Microbial Cell Factories,2015,14(1):1-10.
[30]Patnaik R,Louie S,Gavrilovic V,et al. Genome shuffling of Lactobacillus for improved acid tolerance[J]. Nature Biotechnology,2002,20(7):707-712.
[31]Dai M H,Copley S D. Genome shuffling improves degradation of the anthropogenic pesticide pentachlorophenol by Sphingobium chlorophenolicum ATTC 39723[J]. Applied and Environmental Microbiology,2004,70(4):2391-2397.
[32]王立梅,齐斌. 基因组改组技术对L-乳酸产生菌耐热性的影响[J]. 食品科学,2008,29(10):395-398.
[33]Cao X H,Song Q,Wang C L,et al. Genome shuffling of Hansenula anomala to improve flavor formation of soy sauce[J]. World Journal of Microbiology and Biotechnology,2012,28(5):1857-1862.
[34]Zheng D Q,Wu X C,Wang P M,et al. Drug resistance marker-aided genome shuffling to improve acetic acid tolerance in Saccharomyces cerevisiae[J]. Journal of Industrial Microbiology and Biotechnology,2011,38(3):415-422.
[35]Zheng P,Liu M,Liu X D,et al. Genome shuffling improves thermotolerance and glutamic acid production of Corynebacteria glutamicum[J]. World Journal of Microbiology and Biotechnology,2012,28(3):1035-1043.
[36]黄俊,黎贞崇,吴仁智,等. 基因组重排技术选育乙醇高产菌株. 中国生物工程杂志,2014,34(7):56-62.
[37]Li S B,Qian Y,Liang Z W,et al. Enhanced butanol production from cassava with Clostridium acetobutylicum by genome shuffling[J]. World Journal of Microbiology and Biotechnology,2016,32(4):1-10.
[38]Zhao M,Dai C C,Guan X Y,et al. Genome shuffling amplifies the carbon source spectrum and improves arachidonic acid production in Diasporangium sp.[J]. Enzyme and Microbial Technology,2009,45(6-7):419-425.
[39]Kang J X,Chen X J,Chen W R,et al. Enhanced production of pullulan in Aureobasidium pullulans by a new process of genome shuffling[J]. Process Biochemistry,2011,46(3):792-795.
[40]Zhou Y P,Ren X D,Wang L,et al. Enhancement of ε-poly-lysine production in ε-poly-lysine-tolerant Streptomyces sp. by genome shuffling[J]. Bioprocess and Biosystems Engineering,2015,38(9):1705-1713.
[41]Wang M Z,Liu S S,Li Y Y,et al. Protoplast mutation and genome shuffling induce the endophytic fungus Tubercularia sp.TF5 to produce new compounds[J]. Current Microbiology,2010,61(4):254-260.
[42]Cao X H,Hou L H,Lu M F,et al. Genome shuffling of Zygosaccharomyces rouxii to accelerate and enhance the flavour formation of soy sauce[J]. Journal of the Science of Food and Agriculture,2010,90(2):281-285.

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备注/Memo

备注/Memo:
收稿日期:2017-05-11
基金项目:国家自然科学基金(编号:51408290)。
作者简介:赵丽红(1974—),女,辽宁锦州人,博士,教授,从事污水生物处理研究。E-mail:zhaolh05@163.com。
更新日期/Last Update: 2018-09-20