Raman spectroscopic study on the copper(II) binding mode of prion octapeptide and its pH dependence

被引:246
作者
Miura, T [1 ]
Hori-i, A [1 ]
Mototani, H [1 ]
Takeuchi, H [1 ]
机构
[1] Tohoku Univ, Grad Sch Pharmaceut Sci, Sendai, Miyagi 9808578, Japan
关键词
D O I
10.1021/bi9909389
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
The cellular form of prion protein is a precursor of the infectious isoform, which causes fatal neurodegenerative diseases through intermolecular association. One of the characteristics of the prion protein is a high affinity for Cu(II) ions, The site of Cu(II) binding is considered to be the N-terminal region, where the octapeptide sequence PHGGGWGQ repeats 4 times in tandem. We have examined the Cu(II) binding mode of the octapeptide motif and its pH dependence by Raman and absorption spectroscopy. At neutral and basic pH, the single octapeptide PHGGGWGQ forms a 1:1 complex with Cu(II) by coordinating via the imidazole N-pi atom of histidine together with two deprotonated main-chain amide nitrogens in the triglycine segment. A similar 1:1 complex is formed by each octapeptide unit in (PHGGGWGQ)(2) and (PHGGGWGQ)(4). Under weakly acidic conditions (pH similar to 6), however, the Cu(II)amide(-) linkages are broken and the metal binding site of histidine switches from N-pi to N-tau to share a Cu(II) ion between two histidine residues of different peptide chains. The drastic change of the Cu(II) binding mode on going from neutral to weakly acidic conditions suggests that the micro-environmental pH in the brain cell regulates the Cu(II) affinity of the prion protein, which is supposed to undergo pH changes in the pathway from the cell surface to endosomes, The intermolecular His(N-tau)-Cu(II)-His(N-tau) bridge may be related to the aggregation of prion protein in the pathogenic form.
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页码:11560 / 11569
页数:10
相关论文
共 47 条
[41]   INTERACTIONS OF HISTIDINE AND OTHER IMIDAZOLE DERIVATIVES WITH TRANSITION-METAL IONS IN CHEMICAL AND BIOLOGICAL-SYSTEMS [J].
SUNDBERG, RJ ;
MARTIN, RB .
CHEMICAL REVIEWS, 1974, 74 (04) :471-517
[42]  
TARABOULOS A, 1991, FASEB J, V5, pA1177
[43]   RAMAN STUDIES OF L-HISTIDINE AND RELATED-COMPOUNDS IN AQUEOUS-SOLUTIONS [J].
TASUMI, M ;
HARADA, I ;
TAKAMATSU, T ;
TAKAHASHI, S .
JOURNAL OF RAMAN SPECTROSCOPY, 1982, 12 (02) :149-151
[44]  
TASUMI M, 1979, INFRARED RAMAN SPECT, P225
[45]   Altered circadian activity rhythms and sleep in mice devoid of prion protein [J].
Tobler, I ;
Gaus, SE ;
Deboer, T ;
Achermann, P ;
Fischer, M ;
Rulicke, T ;
Moser, M ;
Oesch, B ;
McBride, PA ;
Manson, JC .
NATURE, 1996, 380 (6575) :639-642
[46]   PURIFICATION AND PROPERTIES OF THE CELLULAR AND SCRAPIE HAMSTER PRION PROTEINS [J].
TURK, E ;
TEPLOW, DB ;
HOOD, LE ;
PRUSINER, SB .
EUROPEAN JOURNAL OF BIOCHEMISTRY, 1988, 176 (01) :21-30
[47]   Copper binding to the prion protein: Structural implications of four identical cooperative binding sites [J].
Viles, JH ;
Cohen, FE ;
Prusiner, SB ;
Goodin, DB ;
Wright, PE ;
Dyson, HJ .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1999, 96 (05) :2042-2047