Solution structure of human saposin c: pH-dependent interaction with phospholipid vesicles

被引:79
作者
de Alba, E [1 ]
Weiler, S [1 ]
Tjandra, N [1 ]
机构
[1] NHLBI, Biophys Chem Lab, NIH, Bethesda, MD 20892 USA
关键词
D O I
10.1021/bi0301338
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
Saposin C binds to membranes to activate lipid degradation in lysosomes. To get insights into saposin C's function, we have determined its three-dimensional structure by NMR and investigated its interaction with phospholipid vesicles. Saposin C adopts the saposin-fold common to other members of the family. In contrast, the electrostatic surface revealed by the NMR structure is remarkably different. We suggest that charge distribution in the protein surface can modulate membrane interaction leading to the functional diversity of this family. We find that the binding of saposin C to phospholipid vesicles is a pH-controlled reversible process. The pH dependence of this interaction is sigmoidal, with an apparent pK(a), for binding close to 5.3. The pK(a), values of many solvent-exposed Glu residues are anomalously high and close to the binding pK(a). Our NMR data are consistent with the absence of a conformational change prior to membrane binding. All this information suggests that the negatively charged electrostatic surface of saposin C needs to be partially neutralized to trigger membrane binding. We have studied the membrane-binding behavior of a mutant of saposin C designed to decrease the negative charge of the electrostatic surface. The results support our conclusion on the importance of protein surface neutralization in binding. Since saposin C is a lysosomal protein and pH gradients occur in lysosomes, we propose that lipid degradation in the lysosome could be switched on and off by saposin C's reversible binding to membranes.
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页码:14729 / 14740
页数:12
相关论文
共 82 条
[1]   Crystal structure of saposin B reveals a dimeric shell for lipid binding [J].
Ahn, VE ;
Faull, KF ;
Whitelegge, JP ;
Fluharty, AL ;
Privé, GG .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2003, 100 (01) :38-43
[2]   Granulysin crystal structure and a structure-derived lytic mechanism [J].
Anderson, DH ;
Sawaya, MR ;
Cascio, D ;
Ernst, W ;
Modlin, R ;
Krensky, A ;
Eisenberg, D .
JOURNAL OF MOLECULAR BIOLOGY, 2003, 325 (02) :355-365
[3]   Elevated lysosomal pH in Mucolipidosis type IV cells [J].
Bach, G ;
Chen, CS ;
Pagano, RE .
CLINICA CHIMICA ACTA, 1999, 280 (1-2) :173-179
[4]   BACKBONE DYNAMICS OF CALMODULIN STUDIED BY N-15 RELAXATION USING INVERSE DETECTED 2-DIMENSIONAL NMR-SPECTROSCOPY - THE CENTRAL HELIX IS FLEXIBLE [J].
BARBATO, G ;
IKURA, M ;
KAY, LE ;
PASTOR, RW ;
BAX, A .
BIOCHEMISTRY, 1992, 31 (23) :5269-5278
[5]   METHODOLOGICAL ADVANCES IN PROTEIN NMR [J].
BAX, A ;
GRZESIEK, S .
ACCOUNTS OF CHEMICAL RESEARCH, 1993, 26 (04) :131-138
[6]   OPTIMIZED RECORDING OF HETERONUCLEAR MULTIDIMENSIONAL NMR-SPECTRA USING PULSED FIELD GRADIENTS [J].
BAX, A ;
POCHAPSKY, SS .
JOURNAL OF MAGNETIC RESONANCE, 1992, 99 (03) :638-643
[7]   COMPARISON OF DIFFERENT MODES OF 2-DIMENSIONAL REVERSE-CORRELATION NMR FOR THE STUDY OF PROTEINS [J].
BAX, A ;
IKURA, M ;
KAY, LE ;
TORCHIA, DA ;
TSCHUDIN, R .
JOURNAL OF MAGNETIC RESONANCE, 1990, 86 (02) :304-318
[8]  
Bierfreund U, 2000, METHOD ENZYMOL, V311, P255
[9]   NATURAL ABUNDANCE N-15 NMR BY ENHANCED HETERONUCLEAR SPECTROSCOPY [J].
BODENHAUSEN, G ;
RUBEN, DJ .
CHEMICAL PHYSICS LETTERS, 1980, 69 (01) :185-189
[10]  
BRUNNETT B, 1993, SURVEYS MATH IND, V3, P1