Correlation of the sweetness of variants of the protein brazzein with patterns of hydrogen bonds detected by NMR spectroscopy

被引:23
作者
Assadi-Porter, FM [1 ]
Abildgaard, F [1 ]
Blad, H [1 ]
Markley, JL [1 ]
机构
[1] Univ Wisconsin, Dept Biochem, Natl Magnet Resonance Facil, Madison, WI 53706 USA
关键词
D O I
10.1074/jbc.M302663200
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
In sequence-function investigations, approaches are needed for rapidly screening protein variants for possible changes in conformation. Recent NMR methods permit direct detection of hydrogen bonds through measurements of scalar couplings that traverse hydrogen bonds (transhydrogen bond couplings). We have applied this approach to screen a series of five single site mutants of the sweet protein brazzein with altered sweetness for possible changes in backbone hydrogen bonding with respect to wild-type. Long range, three-dimensional data correlating connectivities among backbone H-1(N), N-15, and C-13' atoms were collected from the six brazzein proteins labeled uniformly with carbon-13 and nitrogen-15. In wild-type brazzein, this approach identified 17 backbone hydrogen bonds. In the mutants, altered magnitudes of the couplings identified hydrogen bonds that were strengthened or weakened; missing couplings identified hydrogen bonds that were broken, and new couplings indicated the presence of new hydrogen bonds. Within the series of brazzein mutants investigated, a pattern was observed between sweetness and the integrity of particular hydrogen bonds. All three "sweet" variants exhibited the same pattern of hydrogen bonds, whereas all three "non-sweet" variants lacked one hydrogen bond at the middle of the alpha-helix, where it is kinked, and one hydrogen bond in the middle of beta-strands II and III, where they are twisted. Two of the non-sweet variants lack the hydrogen bond connecting the N and C termini. These variants showed greater mobility in the Nand C-terminal regions than wild-type brazzein.
引用
收藏
页码:31331 / 31339
页数:9
相关论文
共 52 条
[1]   NMR of hydrogen bonding in cold-shock protein A and an analysis of the influence of crystallographic resolution on comparisons of hydrogen bond lengths [J].
Alexandrescu, AT ;
Snyder, DR ;
Abildgaard, F .
PROTEIN SCIENCE, 2001, 10 (09) :1856-1868
[2]   Sweetness determinant sites of brazzein, a small, heat-stable, sweet-tasting protein [J].
Assadi-Porter, FM ;
Aceti, DJ ;
Markley, JL .
ARCHIVES OF BIOCHEMISTRY AND BIOPHYSICS, 2000, 376 (02) :259-265
[3]   Efficient production of recombinant brazzein, a small, heat-stable, sweet-tasting protein of plant origin [J].
Assadi-Porter, FM ;
Aceti, DJ ;
Cheng, H ;
Markley, JL .
ARCHIVES OF BIOCHEMISTRY AND BIOPHYSICS, 2000, 376 (02) :252-258
[4]   THE PROGRAM XEASY FOR COMPUTER-SUPPORTED NMR SPECTRAL-ANALYSIS OF BIOLOGICAL MACROMOLECULES [J].
BARTELS, C ;
XIA, TH ;
BILLETER, M ;
GUNTERT, P ;
WUTHRICH, K .
JOURNAL OF BIOMOLECULAR NMR, 1995, 6 (01) :1-10
[5]   REMOVAL OF F1-BASE-LINE DISTORTION AND OPTIMIZATION OF FOLDING IN MULTIDIMENSIONAL NMR-SPECTRA [J].
BAX, A ;
IKURA, M ;
KAY, LE ;
ZHU, G .
JOURNAL OF MAGNETIC RESONANCE, 1991, 91 (01) :174-178
[6]   REFINED STRUCTURE OF CHARYBDOTOXIN - COMMON MOTIFS IN SCORPION TOXINS AND INSECT DEFENSINS [J].
BONTEMS, F ;
ROUMESTAND, C ;
GILQUIN, B ;
MENEZ, A ;
TOMA, F .
SCIENCE, 1991, 254 (5037) :1521-1523
[7]   Rapid protein fold determination using secondary chemical shifts and cross-hydrogen bond 15N-13C′ scalar couplings (3hbJNC′) [J].
Bonvin, AMJJ ;
Houben, K ;
Guenneugues, M ;
Kaptein, R ;
Boelens, R .
JOURNAL OF BIOMOLECULAR NMR, 2001, 21 (03) :221-233
[8]  
Caldwell J, 1999, J CHEM SOC PAKISTAN, V21, P268
[9]   Solution structure of the thermostable sweet-tasting protein brazzein [J].
Caldwell, JE ;
Abildgaard, F ;
Dzakula, Z ;
Ming, D ;
Hellekant, G ;
Markley, JL .
NATURE STRUCTURAL BIOLOGY, 1998, 5 (06) :427-431
[10]   Complete 1H and partial 13C resonance assignments at 37 and 22 °C for brazzein, an intensely sweet protein [J].
Caldwell, JE ;
Abildgaard, F ;
Ming, D ;
Hellekant, G ;
Markley, JL .
JOURNAL OF BIOMOLECULAR NMR, 1998, 11 (02) :231-232