Shifting the pH profile of Aspergillus niger PhyA phytase to match the stomach pH enhances its effectiveness as an animal feed additive

被引:74
作者
Kim, Taewan
Mullaney, Edward J.
Porres, Jesus M.
Roneker, Karl R.
Crowe, Sarah
Rice, Sarah
Ko, Taegu
Ullah, Abul H. J.
Daly, Catherine B.
Welch, Ross
Lei, Xin Gen [1 ]
机构
[1] Cornell Univ, Dept Anim Sci, Ithaca, NY 14853 USA
[2] USDA ARS, So Reg Res Ctr, New Orleans, LA 70124 USA
[3] USDA, Soil & Nutr Lab, Ithaca, NY 14853 USA
关键词
D O I
10.1128/AEM.02612-05
中图分类号
Q81 [生物工程学(生物技术)]; Q93 [微生物学];
学科分类号
071005 ; 0836 ; 090102 ; 100705 ;
摘要
Environmental pollution by phosphorus from animal waste is a major problem in agriculture because simple-stomached animals, such as swine, poultry, and fish, cannot digest phosphorus (as phytate) present in plant feeds. To alleviate this problem, a phytase from Aspergillus niger PhyA is widely used as a feed additive to hydrolyze phytate-phosphorus. However, it has the lowest relative activity at the pH of the stomach (3.5), where the hydrolysis occurs. Our objective was to shift the pH optima of PhyA to match the stomach condition by substituting amino acids in the substrate-binding site with different charges and polarities. Based on the crystal structure of PhyA, we prepared 21 single or multiple mutants at Q50, K91, K94, E228, D262, K300, and K301 and expressed them in Pichia pastoris yeast. The wild-type (WT) PhyA showed the unique bihump, two-pH-optima profile, whereas 17 mutants lost one pH optimum or shifted the pH optimum from pH 5.5 to the more acidic side. The mutant E228K exhibited the best overall changes, with a shift of pH optimum to 3.8 and 266% greater (P < 0.05) hydrolysis of soy phytate at pH 3.5 than the WT enzyme. The improved efficacy of the enzyme was confirmed in an animal feed trial and was characterized by biochemical analysis of the purified mutant enzymes. In conclusion, it is feasible to improve the function of PhyA phytase under stomach pH conditions by rational protein engineering.
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页码:4397 / 4403
页数:7
相关论文
共 42 条
[1]   A potential phosphate crisis [J].
Abelson, PH .
SCIENCE, 1999, 283 (5410) :2015-2015
[2]  
Augspurger NR, 2003, J ANIM SCI, V81, P474
[3]  
Bisswanger H., 2002, Enzyme and kinetics principles and methods, P51
[4]   THE SOLE LYSINE RESIDUE IN PORCINE PEPSIN WORKS AS A KEY RESIDUE FOR CATALYSIS AND CONFORMATIONAL FLEXIBILITY [J].
COTTRELL, TJ ;
HARRIS, LJ ;
TANAKA, T ;
YADA, RY .
JOURNAL OF BIOLOGICAL CHEMISTRY, 1995, 270 (34) :19974-19978
[5]   Protein engineering of Aspergillus awamori glucoamylase to increase its pH optimum [J].
Fang, TY ;
Ford, C .
PROTEIN ENGINEERING, 1998, 11 (05) :383-388
[6]   Crystallographic and mutational analyses of an extremely acidophilic and acid-stable xylanase: biased distribution of acidic residues and importance of Asp37 for catalysis at low pH [J].
Fushinobu, S ;
Ito, K ;
Konno, M ;
Wakagi, T ;
Matsuzawa, H .
PROTEIN ENGINEERING, 1998, 11 (12) :1121-1128
[7]   Pigs expressing salivary phytase produce low-phosphorus manure [J].
Golovan, SP ;
Meidinger, RG ;
Ajakaiye, A ;
Cottrill, M ;
Wiederkehr, MZ ;
Barney, DJ ;
Plante, C ;
Pollard, JW ;
Fan, MZ ;
Hayes, MA ;
Laursen, J ;
Hjorth, JP ;
Hacker, RR ;
Phillips, JR ;
Forsberg, CW .
NATURE BIOTECHNOLOGY, 2001, 19 (08) :741-745
[8]  
Han YM, 1999, APPL ENVIRON MICROB, V65, P1915
[9]   Hydrogen bonding and catalysis: A novel explanation for how a single amino acid substitution can change the pH optimum of a glycosidase [J].
Joshi, MD ;
Sidhu, G ;
Pot, I ;
Brayer, GD ;
Withers, SG ;
McIntosh, LP .
JOURNAL OF MOLECULAR BIOLOGY, 2000, 299 (01) :255-279
[10]  
KOSTERIN OE, 1999, NASEKOMYE DAURII SOP, V2, P5