EVIDENCE THAT THE STALK OF DROSOPHILA KINESIN HEAVY-CHAIN IS AN ALPHA-HELICAL COILED COIL

被引:99
作者
DECUEVAS, M
TAO, T
GOLDSTEIN, LSB
机构
[1] HARVARD UNIV,SCH MED,DEPT NEUROL,BOSTON,MA 02115
[2] BOSTON BIOMED RES INST,DEPT MUSCLE RES,BOSTON,MA 02114
关键词
D O I
10.1083/jcb.116.4.957
中图分类号
Q2 [细胞生物学];
学科分类号
071009 ; 090102 ;
摘要
Kinesin is a mechanochemical enzyme composed of three distinct domains: a globular head domain, a rodlike stalk domain, and a small globular tail domain. The stalk domain has sequence features characteristic of alpha-helical coiled coils. To gain insight into the structure of the kinesin stalk, we expressed it from a segment of the Drosophila melanogaster kinesin heavy chain gene and purified it from Escherichia coli. When observed by EM, this protein formed a rodlike structure 40-55 nm long that was occasionally bent at a hingelike region near the middle of the molecule. An additional EM study and a chemical crosslinking study showed that this protein forms a parallel dimer and that the two chains are in register. Finally, using circular dichroism spectroscopy, we showed that this protein is approximately 55-60% alpha-helical in physiological aqueous solution at 25-degrees-C, and approximately 85-90% alpha-helical at 4-degrees-C. From these results, we conclude that the stalk of kinesin heavy chain forms an alpha-helical coiled coil structure. The temperature dependence of the circular dichroism signal has two major transitions, at 25-30-degrees-C and at 45-50-degrees-C, which suggests that a portion of the alpha-helical structure in the stalk is less stable than the rest. By producing the amino-terminal (coil 1) and carboxy-terminal (coil 2) halves of the stalk separately in E. coli, we showed that the region that melts below 30-degrees-C lies within coil 1, while the majority of coil 2 melts above 45-degrees-C. We suggest that this difference in stability may play a role in the force-generating mechanism or regulation of kinesin.
引用
收藏
页码:957 / 965
页数:9
相关论文
共 28 条
[1]  
AMOS LA, 1987, J CELL SCI, V87, P105
[2]   NATIVE STRUCTURE AND PHYSICAL-PROPERTIES OF BOVINE BRAIN KINESIN AND IDENTIFICATION OF THE ATP-BINDING SUBUNIT POLYPEPTIDE [J].
BLOOM, GS ;
WAGNER, MC ;
PFISTER, KK ;
BRADY, ST .
BIOCHEMISTRY, 1988, 27 (09) :3409-3416
[3]   THE MICROTUBULE-DEPENDENT FORMATION OF A TUBULOVESICULAR NETWORK WITH CHARACTERISTICS OF THE ER FROM CULTURED-CELL EXTRACTS [J].
DABORA, SL ;
SHEETZ, MP .
CELL, 1988, 54 (01) :27-35
[4]  
DUBREUIL RR, 1991, J BIOL CHEM, V266, P7189
[5]  
Fraser R. D. B., 1973, CONFORMATION FIBROUS
[6]   EFFECT OF CROSS-LINKS ON MOBILITY OF PROTEINS IN DODECYL SULFATE POLYACRYLAMIDE GELS [J].
GRIFFITH, IP .
BIOCHEMICAL JOURNAL, 1972, 126 (03) :553-+
[8]   SUBMOLECULAR DOMAINS OF BOVINE BRAIN KINESIN IDENTIFIED BY ELECTRON-MICROSCOPY AND MONOCLONAL-ANTIBODY DECORATION [J].
HIROKAWA, N ;
PFISTER, KK ;
YORIFUJI, H ;
WAGNER, MC ;
BRADY, ST ;
BLOOM, GS .
CELL, 1989, 56 (05) :867-878
[9]   THE MOLECULAR-STRUCTURE OF ADRENAL-MEDULLA KINESIN [J].
HISANAGA, S ;
MUROFUSHI, H ;
OKUHARA, K ;
SATO, R ;
MASUDA, Y ;
SAKAI, H ;
HIROKAWA, N .
CELL MOTILITY AND THE CYTOSKELETON, 1989, 12 (04) :264-272
[10]   INHIBITION OF KINESIN-DRIVEN MICROTUBULE MOTILITY BY MONOCLONAL-ANTIBODIES TO KINESIN HEAVY-CHAINS [J].
INGOLD, AL ;
COHN, SA ;
SCHOLEY, JM .
JOURNAL OF CELL BIOLOGY, 1988, 107 (06) :2657-2667