Alanine scanning mutagenesis of insulin

被引:186
作者
Kristensen, C
Kjeldsen, T
Wiberg, FC
Schaffer, L
Hach, M
Havelund, S
Bass, J
Steiner, DF
Andersen, AS
机构
[1] NOVO NORDISK AS,DEPT CELL TECHNOL,DK-2880 BAGSVAERD,DENMARK
[2] NOVO NORDISK AS,DEPT PROT CHEM,DK-2880 BAGSVAERD,DENMARK
[3] UNIV CHICAGO,HOWARD HUGHES MED INST,CHICAGO,IL 60637
[4] UNIV CHICAGO,DEPT BIOCHEM & MOL BIOL,CHICAGO,IL 60637
[5] UNIV CHICAGO,DEPT MED,ENDOCRINOL SECT,CHICAGO,IL 60637
关键词
D O I
10.1074/jbc.272.20.12978
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
Alanine scanning mutagenesis has been used to identify specific side chains of insulin which strongly influence binding to the insulin receptor. A total of 21 new insulin analog constructs were made, and in addition 7 high pressure liquid chromatography-purified analogs were tested, covering alanine substitutions in positions B1, B2, B3, B4, B8, B9, B10, B11, B12, B13, B16, B17, B18, B20, B21, B22, B26, A4, A8, A9, A12, A13, A14, A15, A16, A17, A19, and A21. Binding data on the analogs revealed that the alanine mutations that were most disruptive for binding were at positions TyrA19, GlyB8, LeuB11, and GluB13, resulting in decreases in affinity of 1,000-, 33-, 14-, and 8-fold, respectively, relative to wild-type insulin. In contrast, alanine substitutions at positions GlyB20, ArgB22, and SerA9 resulted in an increase in affinity for the insulin receptor. The most striking finding is that B20Ala insulin retains high affinity binding to the receptor. GlyB20 is conserved in insulins from different species, and in the structure of the B-chain it appears to be essential for the shift from the alpha-helix B8-B19 to the beta-turn B20-B22. Thus, replacing GlyB20 with alanine most likely modifies the structure of the B-chain in this region, but this structural change appears to enhance binding to the insulin receptor.
引用
收藏
页码:12978 / 12983
页数:6
相关论文
共 34 条
[1]   STRUCTURE OF RHOMBOHEDRAL 2 ZINC INSULIN CRYSTALS [J].
ADAMS, MJ ;
BLUNDELL, TL ;
DODSON, EJ ;
DODSON, GG ;
VIJAYAN, M ;
BAKER, EN ;
HARDING, MM ;
HODGKIN, DC ;
RIMMER, B ;
SHEAT, S .
NATURE, 1969, 224 (5218) :491-&
[2]   CHANGING THE INSULIN-RECEPTOR TO POSSESS INSULIN-LIKE GROWTH FACTOR-I LIGAND SPECIFICITY [J].
ANDERSEN, AS ;
KJELDSEN, T ;
WIBERG, FC ;
CHRISTENSEN, PM ;
RASMUSSEN, JS ;
NORRIS, K ;
MOLLER, KB ;
MOLLER, NPH .
BIOCHEMISTRY, 1990, 29 (32) :7363-7366
[3]   COYPU INSULIN - PRIMARY STRUCTURE, CONFORMATION AND BIOLOGICAL PROPERTIES OF A HYSTRICOMORPH RODENT INSULIN [J].
BAJAJ, M ;
BLUNDELL, TL ;
HORUK, R ;
PITTS, JE ;
WOOD, SP ;
GOWAN, LK ;
SCHWABE, C ;
WOLLMER, A ;
GLIEMANN, J ;
GAMMELTOFT, S .
BIOCHEMICAL JOURNAL, 1986, 238 (02) :345-351
[4]   THE STRUCTURE OF 2ZN PIG INSULIN CRYSTALS AT 1.5-A RESOLUTION [J].
BAKER, EN ;
BLUNDELL, TL ;
CUTFIELD, JF ;
CUTFIELD, SM ;
DODSON, EJ ;
DODSON, GG ;
HODGKIN, DMC ;
HUBBARD, RE ;
ISAACS, NW ;
REYNOLDS, CD ;
SAKABE, K ;
SAKABE, N ;
VIJAYAN, NM .
PHILOSOPHICAL TRANSACTIONS OF THE ROYAL SOCIETY OF LONDON SERIES B-BIOLOGICAL SCIENCES, 1988, 319 (1195) :369-&
[5]  
BASS J, 1996, J BIOL CHEM, V371, P19367
[6]   MONOMERIC INSULINS OBTAINED BY PROTEIN ENGINEERING AND THEIR MEDICAL IMPLICATIONS [J].
BRANGE, J ;
RIBEL, U ;
HANSEN, JF ;
DODSON, G ;
HANSEN, MT ;
HAVELUND, S ;
MELBERG, SG ;
NORRIS, F ;
NORRIS, K ;
SNEL, L ;
SORENSEN, AR ;
VOIGT, HO .
NATURE, 1988, 333 (6174) :679-682
[7]  
Chou P Y, 1978, Adv Enzymol Relat Areas Mol Biol, V47, P45
[8]  
COSMATOS A, 1978, J BIOL CHEM, V253, P6586
[9]   THE STRUCTURAL BASIS OF INSULIN AND INSULIN-LIKE GROWTH-FACTOR-I RECEPTOR-BINDING AND NEGATIVE COOPERATIVITY, AND ITS RELEVANCE TO MITOGENIC VERSUS METABOLIC SIGNALING [J].
DEMEYTS, P .
DIABETOLOGIA, 1994, 37 :S135-S148
[10]   INSULIN INTERACTIONS WITH ITS RECEPTORS - EXPERIMENTAL EVIDENCE FOR NEGATIVE COOPERATIVITY [J].
DEMEYTS, P ;
ROTH, J ;
NEVILLE, DM ;
GAVIN, JR ;
LESNIAK, MA .
BIOCHEMICAL AND BIOPHYSICAL RESEARCH COMMUNICATIONS, 1973, 55 (01) :154-161