The estimation of glutaminyl deamidation and aspartyl cleavage rates in glucagon

被引:24
作者
Joshi, AB [1 ]
Kirsch, LE [1 ]
机构
[1] Univ Iowa, Coll Pharm, Div Pharmaceut, Iowa City, IA 52242 USA
关键词
deamidation; aspartyl cleavage; glucagon; hydrolysis;
D O I
10.1016/j.ijpharm.2004.01.006
中图分类号
R9 [药学];
学科分类号
1007 ;
摘要
The major hydrolytic degradation pathways of glucagon under acidic conditions are cleavage at Asp-9, Asp-15, and Asp-21, and deamidation at Gln-3, Gin-20, Gln-24, and Asn-28. The rate constants for these pathways were determined in the pH range 1-2.4 at 60degreesC by kinetic data analysis of substrate and degradation product concentration-time profiles. Deamidation kinetics were determined using penta-peptide fragments of glucagon containing the labile amide residue. The accurate determination of the cleavage rate constants was confounded by the complexity of the degradation scheme of glucagon. Peptide cleavage kinetics were determined by degradation of glucagon and its cleavage fragments under identical conditions and the use of area-under-the-curve (AUC) and nonlinear regression methods of analysis. Glucagon degradation was first-order with respect to time and concentration in the range of 31-00 muM. Glutaminyl deamidation rate constants were first-order with respect to hydronium ion concentration and were similar for all three residues indicating a lack of sequence effects. The rate constants for Asp cleavage were not first-order with respect to hydronium ion concentration and cleavage at Asp-21 was slower than cleavage at Asp-9 and Asp-15 over the studied pH range. (C) 2004 Elsevier B.V. All rights reserved.
引用
收藏
页码:213 / 219
页数:7
相关论文
共 12 条
[1]   FORMATION AND STRUCTURE OF GELS AND FIBRILS FROM GLUCAGON [J].
BEAVEN, GH ;
GRATZER, WB ;
DAVIES, HG .
EUROPEAN JOURNAL OF BIOCHEMISTRY, 1969, 11 (01) :37-&
[2]   H-1 NMR-STUDIES OF MOLECULAR-CONFORMATION OF MONOMERIC GLUCAGON IN AQUEOUS-SOLUTION [J].
BOESCH, C ;
BUNDI, A ;
OPPLIGER, M ;
WUTHRICH, K .
EUROPEAN JOURNAL OF BIOCHEMISTRY, 1978, 91 (01) :209-214
[3]  
Connors K. A., 1990, CHEM KINETICS STUDY
[4]   A CONFORMATIONAL STUDY OF GLUCAGON [J].
GRATZER, WB ;
BEAVEN, GH ;
RATTLE, HWE ;
BRADBURY, EM .
EUROPEAN JOURNAL OF BIOCHEMISTRY, 1968, 3 (03) :276-&
[5]   The relative rates of glutamine and asparagine deamidation in glucagon fragment 22-29 under acidic conditions [J].
Joshi, AB ;
Kirsch, LE .
JOURNAL OF PHARMACEUTICAL SCIENCES, 2002, 91 (11) :2332-2345
[6]   The degradation pathways of glucagon in acidic solutions [J].
Joshi, AB ;
Rus, E ;
Kirsch, LE .
INTERNATIONAL JOURNAL OF PHARMACEUTICS, 2000, 203 (1-2) :115-125
[7]   TERTIARY STRUCTURE IS A PRINCIPAL DETERMINANT TO PROTEIN DEAMIDATION [J].
KOSSIAKOFF, AA .
SCIENCE, 1988, 240 (4849) :191-194
[8]   KINETICS AND MECHANISMS OF DEGRADATION OF ANTILEUKEMIC AGENT 5-AZACYTIDINE IN AQUEOUS-SOLUTIONS [J].
NOTARI, RE ;
DEYOUNG, JL .
JOURNAL OF PHARMACEUTICAL SCIENCES, 1975, 64 (07) :1148-1157
[9]   CHEMICAL PATHWAYS OF PEPTIDE DEGRADATION .3. EFFECT OF PRIMARY SEQUENCE ON THE PATHWAYS OF DEAMIDATION OF ASPARAGINYL RESIDUES IN HEXAPEPTIDES [J].
PATEL, K ;
BORCHARDT, RT .
PHARMACEUTICAL RESEARCH, 1990, 7 (08) :787-793
[10]   CIRCULAR DICHROISM OF GLUCAGON SOLUTIONS [J].
SRERE, PA ;
BROOKS, GC .
ARCHIVES OF BIOCHEMISTRY AND BIOPHYSICS, 1969, 129 (02) :708-&