Sekine Y, Okada Y, Noda Y, Kondo S, Aizawa H, Takemura R, Hirokawa N
Department of Anatomy and Cell Biology, School of Medicine, University of Tokyo, Japan.
J Cell Biol. 1994 Oct;127(1):187-201. doi: 10.1083/jcb.127.1.187.
To understand the mechanisms of transport for organelles in the axon, we isolated and sequenced the cDNA encoding KIF4 from murine brain, and characterized the molecule biochemically and immunocytochemically. Complete amino acid sequence analysis of KIF4 and ultrastructural studies of KIF4 molecules expressed in Sf9 cells revealed that the protein contains 1,231 amino acid residues (M(r) 139,550) and that the molecule (116-nm rod with globular heads and tail) consists of three domains: an NH2-terminal globular motor domain, a central alpha-helical stalk domain and a COOH-terminal tail domain. KIF4 protein has the property of nucleotide-dependent binding to microtubules, microtubule-activated ATPase activity, and microtubule plus-end-directed motility. Northern blot analysis and in situ hybridization demonstrated that KIF4 is strongly expressed in juvenile tissues including differentiated young neurons, while its expression is decreased considerably in adult mice except in spleen. Immunocytochemical studies revealed that KIF4 colocalized with membranous organelles both in growth cones of differentiated neurons and in the cytoplasm of cultured fibroblasts. During mitotic phase of cell cycle, KIF4 appears to colocalize with membranous organelles in the mitotic spindle. Hence we conclude that KIF4 is a novel microtubule-associated anterograde motor protein for membranous organelles, the expression of which is regulated developmentally.
为了解轴突中细胞器的运输机制,我们从鼠脑分离并测序了编码KIF4的cDNA,并对该分子进行了生化和免疫细胞化学特性分析。KIF4的完整氨基酸序列分析以及在Sf9细胞中表达的KIF4分子的超微结构研究表明,该蛋白质含有1231个氨基酸残基(分子量139,550),且该分子(具有球状头部和尾部的116纳米杆状结构)由三个结构域组成:一个氨基末端球状运动结构域、一个中央α螺旋茎结构域和一个羧基末端尾部结构域。KIF4蛋白具有与微管核苷酸依赖性结合、微管激活的ATP酶活性以及微管正端定向运动的特性。Northern印迹分析和原位杂交表明,KIF4在包括分化的年轻神经元在内的幼年组织中强烈表达,而在成年小鼠中其表达除在脾脏外显著降低。免疫细胞化学研究显示,KIF4在分化神经元的生长锥和培养成纤维细胞的细胞质中均与膜性细胞器共定位。在细胞周期的有丝分裂期,KIF4似乎与有丝分裂纺锤体中的膜性细胞器共定位。因此我们得出结论,KIF4是一种新型的与微管相关的膜性细胞器顺行运动蛋白,其表达受发育调控。