Protein-flexible chain polymer interactions to explain protein partition in aqueous two-phase systems and the protein-polyelectrolyte complex formation

被引:23
作者
Boeris, Valeria
Farruggia, Beatriz
Nerli, Bibiana
Romanini, Diana
Pico, Guillermo
机构
[1] Univ Nacl Rosario, Fac Biochem & Pharmaceut Sci, Dept Phys Chem, Bioseparat Lab,FonCyt,CIUNR, Rosario, Argentina
[2] Consejo Nacl Invest Cient & Tecn, Rosario, Argentina
关键词
catalase; chymotrypsin; polyoxide ethylene propylene; polyvinyl sulphonate; polyacrylate;
D O I
10.1016/j.ijbiomac.2007.03.006
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Complexes formation between two model proteins (catalase and chymotrypsin) and polyelectrolytes (polyvinyl sulphonate and polyacrilic acid) and a non-charged flexible chain polymer (PCF) as polyethylene propylene oxide (molecular mass 8400) was studied by a spectroscopy technique combination: UV absorption, fluorescence emission and circular dichroism. All the polymers increase the protein surface hydrophobicity (S-0) parameter value as a proof of the modification of the protein surface exposed to the solvent. Chymotrypsin showed an increase in its biological activity in polymer presence, which suggests a change in the superficial microenvironment. The decrease in the biological activity of catalase might be due to a competition between the polymer and the substrate. This result agrees with the polymer effect on the catalase superficial hydrophobic area. It was found that, when flexible chain polymers increase protein stability and the enzymatic activity they could be used to isolate this enzyme without inducing loss of protein enzymatic activity. Our findings suggest that the interactions are dependent on the protein physico-chemical parameters such as: isoelectric pH, hydrophobic surface area, etc. (c) 2007 Elsevier B.V. All rights reserved.
引用
收藏
页码:286 / 294
页数:9
相关论文
共 20 条
[11]   Hydrophobicity of bovine serum albumin and ovalbumin determined using uncharged (PRODAN) and anionic (ANS-) fluorescent probes [J].
Haskard, CA ;
Li-Chan, ECY .
JOURNAL OF AGRICULTURAL AND FOOD CHEMISTRY, 1998, 46 (07) :2671-2677
[12]  
HUMMEL B, 1959, J BIOCH PHYSL, V37, P1393
[13]   A kinetic analysis of the catalase activity of myeloperoxidase [J].
Kettle, AJ ;
Winterbourn, CC .
BIOCHEMISTRY, 2001, 40 (34) :10204-10212
[14]  
Lakowicz J.R., 2006, Principles of Fluorescence Spectroscopy Springer
[15]   PH-DEPENDENCE OF THE UREA AND GUANIDINE-HYDROCHLORIDE DENATURATION OF RIBONUCLEASE-A AND RIBONUCLEASE-T1 [J].
PACE, CN ;
LAURENTS, DV ;
THOMSON, JA .
BIOCHEMISTRY, 1990, 29 (10) :2564-2572
[16]  
Pico G, 1995, BIOCHEM MOL BIOL INT, V36, P1017
[17]  
Scopes RK, 1988, PROTEIN PURIFICATION
[18]   Effects of surface charge distribution of proteins in their complexation with polyelectrolytes in an aqueous salt-free system [J].
Takahashi, D ;
Kubota, Y ;
Kokai, K ;
Izumi, T ;
Hirata, M ;
Kokufuta, E .
LANGMUIR, 2000, 16 (07) :3133-3140
[19]   Relationship between the protein surface hydrophobicity and its partitioning behaviour in aqueous two-phase systems of polyethyleneglycol-dextran [J].
Tubio, G ;
Nerli, B ;
Picó, G .
JOURNAL OF CHROMATOGRAPHY B-ANALYTICAL TECHNOLOGIES IN THE BIOMEDICAL AND LIFE SCIENCES, 2004, 799 (02) :293-301
[20]   Poly(ethylene glycol): Protein-repulsive or albumin-compatible? [J].
Vert, M ;
Domurado, D .
JOURNAL OF BIOMATERIALS SCIENCE-POLYMER EDITION, 2000, 11 (12) :1307-1317