综述

利用微生物发酵马铃薯淀粉渣的研究进展

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  • 1. 中国农业大学工学院,北京 100083;
    2. 中国农业大学动物科技学院,北京 100193
雷 恒(1985-),男,湖北崇阳人,博士研究生,研究方向为生物质资源开发与利用。E-mail: leihengcom@gmail.com

收稿日期: 2011-05-16

  网络出版日期: 2011-11-21

基金资助

国家现代农业产业技术体系专项经费资助(CARS-38);"十二五"国家科技支撑计划课题"优质牧草资源开发与多元化草产品加工利用关键技术研究与集成示范"(2011BAD17B02)

Potato Starch Residue as a Substrate for Microbial Fermentation

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  • 1. College of Engineering, China Agricultural University, Beijing 100083, China;
    2. College of Animal Science and Technology, China Agricultural University, Beijing 100193, China

Received date: 2011-05-16

  Online published: 2011-11-21

摘要

生物技术的进步为马铃薯淀粉渣等食品工业加工副产品的有效利用提供了新的技术手段。马铃薯淀粉渣是马铃薯淀粉生产过程中产生的主要副产物,因其蛋白质含量较低,纤维素、半纤维素和果胶等含量高,所以作为动物饲料利用时营养价值较低。马铃薯淀粉渣来源丰富,可作为微生物发酵生产诸如酶、蛋白质饲料、有机酸以及膳食纤维等高附加值产品的理想基质。发酵技术用于马铃薯淀粉渣的生物转化备受人们的关注,微生物预处理过程不仅改进了底物的利用,而且能解决废弃物带来的环境污染问题。本文综述了近期通过生物技术手段开发马铃薯淀粉渣的高附加值产品及其工艺的研究进展。

本文引用格式

雷恒, 曹兵海, 杨富裕, 徐春城 . 利用微生物发酵马铃薯淀粉渣的研究进展[J]. 动物营养学报, 2011 , 23(11) : 1891 -1897 . DOI: 10.3969/j.issn.1006-267x.2011.11.007

Abstract

Potato starch residue is the major by-product of the potato starch processing industry. It has low nutritive value because of its low protein content and high amounts of cellulose, hemicelluloses and pectin. Due to the abundant output of by-product, it can be used as an ideal substrate for microbial fermentation to product value-added products such as enzyme preparation, protein-enriched animal feed, organic acid and dietary fiber etc. Application of microbial fermentation technology can be an attractive possibility for such bioconversions. The processing by microbial fermentation has not only improving substrate utilization, but also helping to solve environmental pollution problems. This article reviews the recent research progress on the development of value-added products and techniques of potato starch residue by biotechnological means.

参考文献

[1] FAO. International year of the potato . . http://www.potato2008.org/en/world/index.html.

[2] MAYER F, HILLEBRANDT J O. Potato pulp: microbiological characterization, physical modification, and application of this agricultural waste product[J]. Applied Microbiology and Biotechnology, 1997, 48(4):435-440.  

[3] TURQUOIS T, RINAUDO M, TARAVEL F R, et al. Extraction of highly gelling pectic substances from sugar beet pulp and potato pulp: influence of extrinsic parameters on their gelling properties[J]. Food Hydrocolloids, 1999, 13(3):255-262.  

[4] LARKE H N, MEYER A S, KAACK K V, et al. Soluble fiber extracted from potato pulp is highly fermentable but has no effect on risk markers of diabetes and cardiovascular disease in Goto-Kakizaki rats[J]. Nutrition Research, 2007, 27(3):152-160.  

[5] KAACK K, LAERKE H N, MEYER A S. Liver pate enriched with dietary fibre extracted from potato fibre as fat substitutes[J]. European Food Research and Technology, 2006, 223(2):267-272.  

[6] KAACK K, PEDERSEN L. Low-energy and high-fibre liver pate processed using potato pulp[J]. European Food Research and Technology, 2005, 220(3/4):278-282.

[7] KAACK K, PEDERSEN L. Application of by-products from industrial processing of potato flour and yellow peas as ingredients in low-fat high-fibre sausages[J]. European Food Research and Technology, 2005, 221(3/4):313-319.

[8] KAACK K, PEDERSEN L, LAERKE H N, et al. New potato fibre for improvement of texture and colour of wheat bread[J]. European Food Research and Technology, 2006, 224(2):199-207.  

[9] DHILLON G S, BRAR S K, VERMA M, et al. Enhanced solid-state citric acid bio-production using apple pomace waste through surface response methodology[J]. Journal of Applied Microbiology, 2011, 110(4):1045-1055.

[10] EL-NAGGAR N E, EL-HERSH M S. Organic acids associated with saccharification of cellulosic wastes during solid-state fermentation[J]. Journal of Microbiology, 2011, 49(1):58-65.  

[11] ECONOMOU C N, MAKRI A, AGGELIS G, et al. Semi-solid state fermentation of sweet sorghum for the biotechnological production of single cell oil[J]. Bioresource Technology, 2010, 101(4):1385-1388.  

[12] MURTHY P S, NAIDU M M, SRINIVAS P. Production of alpha-amylase under solid-state fermentation utilizing coffee waste[J]. Journal of Chemical Technology and Biotechnology, 2009, 84(8):1246-1249.  

[13] DINIS M J, BEZERRA R M F, NUNES F, et al. Modification of wheat straw lignin by solid state fermentation with white-rot fungi[J]. Bioresource Technology, 2009, 100(20):4829-4835.  

[14] AJILA C M, BRAR S K, VERMA M, et al. Solid-state fermentation of apple pomace using Phanerocheate chrysosporium-Liberation and extraction of phenolic antioxidants[J]. Food Chemistry, 2011, 126(3):1071-1080.  

[15] SHARMA A, VIVEKANAND V, SINGH R P. Solid-state fermentation for gluconic acid production from sugarcane molasses by Aspergillus niger ARNU-4 employing tea waste as the novel solid support[J]. Bioresource Technology, 2008, 99(9):3444-3450.  

[16] VENDRUSCOLO F, ALBUQUERQUE P M, STREIT F, et al. Apple pomace: a versatile substrate for biotechnological applications[J]. Critical Reviews in Biotechnology, 2008, 28(1):1-12.  

[17] PANDEY A, SOCCOL C R, NIGAM P, et al. Biotechnological potential of agro-industrial residues. Ⅰ: sugarcane bagasse[J]. Bioresource Technology, 2000, 74(1):69-80.  

[18] MITCHELL D A, KRIEGER N, STUART D M, et al. New developments in solid-state fermentation Ⅱ. Rational approaches to the design, operation and scale-up of bioreactors[J]. Process Biochemistry, 2000, 35(10):1211-1225.  

[19] GROBBEN N G, EGGINK G, CUPERUS F P, et al. Production of acetone, butanol and ethanol (ABE) from potato wastes-fermentation with integrated membrane extraction[J]. Applied Microbiology and Biotechnology, 1993, 39(4/5):494-498.

[20] GUTIERREZ N A, MADDOX I S, SCHUSTER K C, et al. Strain comparison and medium preparation for the acetone-butanol-ethanol (ABE) fermentation process using a substrate of potato[J]. Bioresource Technology, 1998, 66(3):263-265.  

[21] RUSENDI D, SHEPPARD J D. Hydrolysis of potato processing waste for the production of poly-beta-hydroxybutyrate[J]. Bioresource Technology, 1995, 54(2):191-196.  

[22] HAAS R, JIN B, ZEPF F T. Production of poly (3-hydroxybutyrate) from waste potato starch[J]. Bioscience Biotechnology and Biochemistry, 2008, 72(1):253-256.  

[23] KLINGSPOHN U, BADER J, KRUSE B, et al. Utilization of potato pulp from potato starch processing[J]. Process Biochemistry, 1993, 28(2):91-98.  

[24] KLINGSPOHN U, PAPSUPULETI P V, SCHUGERL K. Production of enzymes from potato pulp using batch operation of bioreactor[J]. Journal of Chemical Technology and Biotechnology, 1993, 58(1):19-25.

[25] KLINGSPOHN U, SCHUGERL K. Integrated enzyme-production in continuous operation by utilization of potato pulp[J]. Journal of Biotechnology, 1993, 29(1/2):109-119.

[26] SCHUGERL K, ROSEN W. Investigation of the use of agricultural byproducts for fungal protein production[J]. Process Biochemistry, 1997, 32(8):705-714.  

[27] GELINAS P, BARRETTE J. Protein enrichment of potato processing waste through yeast fermentation[J]. Bioresource Technology, 2007, 98(5):1138-1143.  

[28] AZIZ N H, MOHSEN G I. Bioconversion of acid- and gamma-ray treated sweet potato residue to microbial protein by mixed cultures[J]. Journal of Industrial Microbiology & Biotechnology, 2002, 29(5):264-267.  

[29] YANG S S. Protein enrichment of sweet-potato residue with amylolytic yeasts by solid-state fermentation[J]. Biotechnology and Bioengineering, 1988, 32(7):886-890.  

[30] 赵凤敏,李树君,方宪法,等.马铃薯薯渣固态发酵制作蛋白饲料的工艺研究[J].农业机械学报,2006,37(8):49-51.

[31] 赵凤敏,李树君,方宪法,等.中心组合设计法优化马铃薯薯渣固态发酵工艺[J].农业机械学报,2006,37(8):45-48.

[32] WANG T Y, WU Y H, JIANG C Y, et al. Solid state fermented potato pulp can be used as poultry feed[J]. British Poultry Science, 2010, 51(2):229-234.  

[33] ODA Y, SAITO K, YAMAUCHI H, et al. Lactic acid fermentation of potato pulp by the fungus Rhizopus oryzae[J]. Current Microbiology, 2002, 45(1):1-4.  

[34] OKINE A, HANADA A, AIBIBULA Y, et al. Ensiling of potato pulp with or without bacterial inoculants and its effect on fermentation quality, nutrient composition and nutritive value[J]. Animal Feed Science and Technology, 2005, 121(3/4):329-343.

[35] YIN P M, NISHINA N, KOSAKAI Y, et al. Enhanced production of L(+)-lactic acid from corn starch in a culture of Rhizopus oryzae using an air-lift bioreactor[J]. Journal of Fermentation and Bioengineering, 1997, 84(3):249-253.  

[36] CHRISTEN P, BRAMORSKI A, REVAH S, et al. Characterization of volatile compounds produced by Rhizopus strains grown on agro-industrial solid wastes[J]. Bioresource Technology, 2000, 71(3):211-215.  

[37] DAIGLE P, GELINAS P, LEBLANC D, et al. Production of aroma compounds by Geotrichum candidum on waste bread crumb[J]. Food Microbiology, 1999, 16(5):517-522.  
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