Distinct structural changes detected by X-ray fiber diffraction in stabilization of F-actin by lowering pH and increasing ionic strength

被引:43
作者
Oda, T
Makino, K
Yamashita, I
Namba, K
Maéda, Y
机构
[1] Matsushita Elect Ind Co Ltd, Int Inst Adv Res, Kyoto 6190237, Japan
[2] RIKEN, Harima Inst, Lab Struct Biochem, Mikazuki, Hyogo 6795148, Japan
[3] JST, ERATO, Proton Nanomachine Project, Kyoto 6190237, Japan
关键词
D O I
10.1016/S0006-3495(01)76063-8
中图分类号
Q6 [生物物理学];
学科分类号
071011 ;
摘要
Lowering pH or raising salt concentration stabilizes the F-actin structure by increasing the free energy change associated with its polymerization, To understand the F-actin stabilization mechanism, we studied the effect of pH, salt concentration, and cation species on the F-actin structure. X-ray fiber diffraction patterns recorded from highly ordered F-actin sols at high density enabled us to detect minute changes of diffraction intensities and to precisely determine the helical parameters. F-actin in a solution containing 30 mM NaCl at pH 8 was taken as the control. F-actin at pH 8, 30 to 90 mM NaCl or 30 mM KCl showed a helical symmetry of 2.161 subunits per turn of the 1-start helix (12.988 subunits/6 turns). Lowering pH from 8 to 6 or replacing NaCl by LiCl altered the helical symmetry to 2.159 subunits per turn (12.952/6). The diffraction intensity associated with the 27-Angstrom meridional layer-line increased as the pi-i decreased but decreased as the NaCl concentration increased. None of the solvent conditions tested gave rise to significant changes in the pitch of the left-handed 1-start helix (similar to 59.8 Angstrom). The present results indicate that the two factors that stabilize F-actin, relatively low pH and high salt concentration, have distinct effects on the F-actin structure. Possible mechanisms will be discussed to understand how F-actin is stabilized under these conditions.
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收藏
页码:841 / 851
页数:11
相关论文
共 48 条
[1]   The yeast V159N actin mutant reveals roles for actin dynamics in vivo [J].
Belmont, LD ;
Drubin, DG .
JOURNAL OF CELL BIOLOGY, 1998, 142 (05) :1289-1299
[2]   THE STRUCTURAL BASIS FOR THE INTRINSIC DISORDER OF THE ACTIN FILAMENT - THE LATERAL SLIPPING MODEL [J].
BREMER, A ;
MILLONIG, RC ;
SUTTERLIN, R ;
ENGEL, A ;
POLLARD, TD ;
AEBI, U .
JOURNAL OF CELL BIOLOGY, 1991, 115 (03) :689-703
[3]  
CARLIER MF, 1988, J BIOL CHEM, V263, P817
[4]  
CARLIER MF, 1991, J BIOL CHEM, V266, P1
[5]  
CASPAR DLD, 1963, ADV PROTEIN CHEM, V18, P37
[6]   YEAST ACTIN WITH A MUTATION IN THE HYDROPHOBIC PLUG BETWEEN SUBDOMAIN-3 AND SUBDOMAIN-4 (L(266)D) DISPLAYS A COLD-SENSITIVE POLYMERIZATION DEFECT [J].
CHEN, X ;
COOK, RK ;
RUBENSTEIN, PA .
JOURNAL OF CELL BIOLOGY, 1993, 123 (05) :1185-1195
[7]  
COCHRAN W, 1952, ACTA CRYSTALLOGR, V5, P777
[8]   LITHIUM INCREASES ACTIN POLYMERIZATION RATES BY ENHANCING THE NUCLEATION STEP [J].
COLOMBO, R ;
MILZANI, A ;
DONNE, ID .
JOURNAL OF MOLECULAR BIOLOGY, 1991, 217 (03) :401-404
[9]   PH-DEPENDENCE OF ACTIN SELF-ASSEMBLY [J].
FEI, W ;
SAMPOGNA, RV ;
WARE, BR .
BIOPHYSICAL JOURNAL, 1989, 55 (02) :293-298
[10]   STRUCTURE OF F-ACTIN AND OF ACTIN FILAMENTS ISOLATED FROM MUSCLE [J].
HANSON, J ;
LOWY, J .
JOURNAL OF MOLECULAR BIOLOGY, 1963, 6 (01) :46-&