Laurent V, Loisel T P, Harbeck B, Wehman A, Gröbe L, Jockusch B M, Wehland J, Gertler F B, Carlier M F
Dynamique du Cytosquelette, Laboratoire d'Enzymologie et Biochimie Structurales, CNRS, 91198 Gif-sur-Yvette, France.
J Cell Biol. 1999 Mar 22;144(6):1245-58. doi: 10.1083/jcb.144.6.1245.
Intracellular propulsion of Listeria monocytogenes is the best understood form of motility dependent on actin polymerization. We have used in vitro motility assays of Listeria in platelet and brain extracts to elucidate the function of the focal adhesion proteins of the Ena (Drosophila Enabled)/VASP (vasodilator-stimulated phosphoprotein) family in actin-based motility. Immunodepletion of VASP from platelet extracts and of Evl (Ena/VASP-like protein) from brain extracts of Mena knockout (-/-) mice combined with add-back of recombinant (bacterial or eukaryotic) VASP and Evl show that VASP, Mena, and Evl play interchangeable roles and are required to transform actin polymerization into active movement and propulsive force. The EVH1 (Ena/VASP homology 1) domain of VASP is in slow association-dissociation equilibrium high-affinity binding to the zyxin-homologous, proline-rich region of ActA. VASP also interacts with F-actin via its COOH-terminal EVH2 domain. Hence VASP/ Ena/Evl link the bacterium to the actin tail, which is required for movement. The affinity of VASP for F-actin is controlled by phosphorylation of serine 157 by cAMP-dependent protein kinase. Phospho-VASP binds with high affinity (0.5 x 10(8) M-1); dephospho-VASP binds 40-fold less tightly. We propose a molecular ratchet model for insertional polymerization of actin, within which frequent attachment-detachment of VASP to F-actin allows its sliding along the growing filament.
单核细胞增生李斯特菌的细胞内推进是依赖肌动蛋白聚合的最易理解的运动形式。我们利用血小板提取物和脑提取物中李斯特菌的体外运动分析,来阐明埃娜(果蝇埃娜蛋白)/血管舒张刺激磷蛋白(VASP)家族的粘着斑蛋白在基于肌动蛋白的运动中的功能。从血小板提取物中免疫去除VASP,从Mena基因敲除(-/-)小鼠的脑提取物中免疫去除Evl(埃娜/血管舒张刺激磷蛋白样蛋白),再添加重组(细菌或真核)VASP和Evl,结果表明VASP、Mena和Evl发挥可互换的作用,并且是将肌动蛋白聚合转化为主动运动和推进力所必需的。VASP的EVH1(埃娜/血管舒张刺激磷蛋白同源结构域1)结构域与ActA的富含脯氨酸的zyxin同源区域处于缓慢缔合-解离平衡的高亲和力结合状态。VASP还通过其COOH末端的EVH2结构域与F-肌动蛋白相互作用。因此,VASP/埃娜/Evl将细菌与运动所需的肌动蛋白尾相连。VASP对F-肌动蛋白的亲和力受cAMP依赖性蛋白激酶对丝氨酸157磷酸化的控制。磷酸化的VASP以高亲和力(0.5×10⁸ M⁻¹)结合;去磷酸化的VASP结合力则低40倍。我们提出了一个肌动蛋白插入聚合的分子棘轮模型,其中VASP与F-肌动蛋白频繁的附着-脱离使其能够沿着生长的细丝滑动。