APPLICATION OF EMPIRICAL DESIGN METHODOLOGIES TO THE STUDY OF THE INFLUENCE OF REACTION CONDITIONS AND N-ALPHA-PROTECTING GROUP-STRUCTURE ON THE ENZYMATIC X-PHE-LEU-NH2 DIPEPTIDE SYNTHESIS IN BUFFER DIMETHYLFORMAMIDE SOLVENT SYSTEMS

被引:8
作者
CALVET, S [1 ]
CLAPES, P [1 ]
VIGO, JP [1 ]
XAUS, N [1 ]
JORBA, X [1 ]
MAS, RM [1 ]
TORRES, JL [1 ]
VALENCIA, G [1 ]
SERRALHEIRO, ML [1 ]
CABRAL, JMS [1 ]
EMPIS, JMA [1 ]
机构
[1] Univ Tecn Lisboa, DEPT ENGN QUIM, INST SUPER TECN, ENGN BIOQUIM LAB, P-1096 LISBON, PORTUGAL
关键词
ENZYMATIC PEPTIDE SYNTHESIS; N-TERMINAL PROTECTING GROUPS; ALPHA-CHYMOTRYPSIN; EXPERIMENTAL DESIGN; PARTITION CONSTANT; REACTION RATE; LOG-P; MOLECULAR REFRACTIVITY; RESPONSE SURFACES;
D O I
10.1002/bit.260390509
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
The influence of five different N-terminal protecting groups (For, Ac, Boc, Z, and Fmoc) and reaction conditions (temperature and dimethylformamide content) on the alpha-chymotrypsin-catalyzed synthesis of the dipeptide derivative X-Phe-Leu-NH2 was studied. Groups such as For, Ac, Boc, and Z always rendered good peptide yields (82% to 85%) at low reaction temperatures and DMF concentrations, which depended on the N-alpha protection choice. Boc and Z were the most reactive N-alpha groups and, in addition, the most suitable for peptide synthesis. On the other hand, the use of empirical design methodologies allowed, with minimal experimentation and by multiple regression, to deduce an equation, which correlates the logarithm of the first order kinetic constant (log k') with reaction temperature, DMF concentration, and hydrophobicity (log P values) of the different protecting groups. The predictive value of the equation was tested by comparing the performance of another protective group, such as Aloc, with the performance predicted by said equation. Experimental and calculated k' values were found to be in good agreement.
引用
收藏
页码:539 / 549
页数:11
相关论文
共 25 条
[11]   ACCELERATION OF ENZYME REACTIONS IN ICE [J].
GRANT, NH ;
ALBURN, HE .
NATURE, 1966, 212 (5058) :194-&
[12]   QUANTITATIVE STRUCTURE-ACTIVITY-RELATIONSHIPS OF CHYMOTRYPSIN-LIGAND INTERACTIONS - ANALYSIS OF INTERACTIONS IN RHO-3 SPACE [J].
GRIECO, C ;
HANSCH, C ;
SILIPO, C ;
SMITH, RN ;
VITTORIA, A ;
YAMADA, K .
ARCHIVES OF BIOCHEMISTRY AND BIOPHYSICS, 1979, 194 (02) :542-551
[14]   AROMATIC SUBSTITUENT CONSTANTS FOR STRUCTURE-ACTIVITY CORRELATIONS [J].
HANSCH, C ;
LEO, A ;
UNGER, SH ;
KIM, KH ;
NIKAITANI, D ;
LIEN, EJ .
JOURNAL OF MEDICINAL CHEMISTRY, 1973, 16 (11) :1207-1216
[15]   BASIC PRINCIPLES OF PROTEASE-CATALYZED PEPTIDE-BOND FORMATION [J].
JAKUBKE, HD ;
KUHL, P ;
KONNECKE, A .
ANGEWANDTE CHEMIE-INTERNATIONAL EDITION IN ENGLISH, 1985, 24 (02) :85-93
[16]  
Jakubke HD., 1987, PEPTIDES ANAL SYNTHE, V9, P103
[17]  
KINOSHITA M, 1966, LIEBIGS ANN CHEM, V696, P226
[18]   THE ALLYLOXYCARBONYL (ALOC) MOIETY - CONVERSION OF AN UNSUITABLE INTO A VALUABLE AMINO PROTECTING GROUP FOR PEPTIDE-SYNTHESIS [J].
KUNZ, H ;
UNVERZAGT, C .
ANGEWANDTE CHEMIE-INTERNATIONAL EDITION IN ENGLISH, 1984, 23 (06) :436-437
[19]   RULES FOR OPTIMIZATION OF BIOCATALYSIS IN ORGANIC-SOLVENTS [J].
LAANE, C ;
BOEREN, S ;
VOS, K ;
VEEGER, C .
BIOTECHNOLOGY AND BIOENGINEERING, 1987, 30 (01) :81-87
[20]   ON OPTIMIZING ORGANIC-SOLVENTS IN MULTI-LIQUID-PHASE BIOCATALYSIS [J].
LAANE, C ;
BOEREN, S ;
VOS, K .
TRENDS IN BIOTECHNOLOGY, 1985, 3 (10) :251-252