Biotechnological production and applications of phytases

被引:0
作者
Stefan Haefner
Anja Knietsch
Edzard Scholten
Joerg Braun
Markus Lohscheidt
Oskar Zelder
机构
[1] BASF Aktiengesellschaft,
来源
Applied Microbiology and Biotechnology | 2005年 / 68卷
关键词
Phytic Acid; Inositol Phosphate; Phytase Product; Phytic Acid Content; Monogastric Animal;
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中图分类号
学科分类号
摘要
Phytases decompose phytate, which is the primary storage form of phosphate in plants. More than 10 years ago, the first commercial phytase product became available on the market. It offered to help farmers reduce phosphorus excretion of monogastric animals by replacing inorganic phosphates by microbial phytase in the animal diet. Phytase application can reduce phosphorus excretion by up to 50%, a feat that would contribute significantly toward environmental protection. Furthermore, phytase supplementation leads to improved availability of minerals and trace elements. In addition to its major application in animal nutrition, phytase is also used for processing of human food. Research in this field focuses on better mineral absorption and technical improvement of food processing. All commercial phytase preparations contain microbial enzymes produced by fermentation. A wide variety of phytases were discovered and characterized in the last 10 years. Initial steps to produce phytase in transgenic plants were also undertaken. A crucial role for its commercial success relates to the formulation of the enzyme solution delivered from fermentation. For liquid enzyme products, a long shelf life is achieved by the addition of stabilizing agents. More comfortable for many customers is the use of dry enzyme preparations. Different formulation technologies are used to produce enzyme powders that retain enzyme activity, are stable in application, resistant against high temperatures, dust-free, and easy to handle.
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页码:588 / 597
页数:9
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[1]  
Berridge MJ(1984)Inositol trisphosphate, a novel second messenger in cellular signal transduction Nature 312 315-321
[2]  
Irvine RF(1998)A comparative study on permeabilization treatments for in situ determination of phytase of Lett Appl Microbiol 27 336-340
[3]  
Bindu S(2003)Optimization of phytase production by solid substrate fermentation J Ind Microbiol Biotech 30 183-189
[4]  
Somashekar D(2003)Production of phytase by Biotechnol Prog 19 312-319
[5]  
Joseph R(2000) in solid-state fermentation Mol Breed 6 195-206
[6]  
Bogar B(1991)Generation of transgenic wheat ( J Nutr 121 1374-1381
[7]  
Szakacs G(1992) L.) for constitutive accumulation of an J Agric Food Chem 40 43-46
[8]  
Tengerdy RP(2004) phytase J Biotechnol 110 313-322
[9]  
Linden JC(2002)Inhibitory effect of dietary soybean protein vs. casein on magnesium absorption in rats Issue Paper 21 1-16
[10]  
Pandey A(2004)Effect of calcium and phytic acid on the activation of trypsinogen and the stability of trypsin Enzyme Microb Technol 35 315-320