Mücke Norbert, Wedig Tatjana, Bürer Andrea, Marekov Lyuben N, Steinert Peter M, Langowski Jörg, Aebi Ueli, Herrmann Harald
Division of Biophysics of Macromolecules, German Cancer Research Center, Im Neuenheimer Feld 280, D-69120 Heidelberg, Germany.
J Mol Biol. 2004 Jun 25;340(1):97-114. doi: 10.1016/j.jmb.2004.04.039.
We have developed an assembly protocol for the intermediate filament (IF) protein vimentin based on a phosphate buffer system, which enables the dynamic formation of authentic IFs. The advantage of this physiological buffer is that analysis of the subunit interactions by chemical cross-linking of internal lysine residues becomes feasible. By this system, we have analyzed the potential interactions of the coiled-coil rod domains with one another, which are assumed to make a crucial contribution to IF formation and stability. We show that headless vimentin, which dimerizes under low salt conditions, associates into tetramers of the A(22)-type configuration under assembly conditions, indicating that one of the effects of increasing the ionic strength is to favor coil 2-coil 2 interactions. Furthermore, in order to obtain insight into the molecular interactions that occur during the first phase of assembly of full-length vimentin, we employed a temperature-sensitive variant of human vimentin, which is arrested at the "unit-length filament" (ULF) state at room temperature, but starts to elongate upon raising the temperature to 37 degrees C. Most importantly, we demonstrate by cross-linking analysis that ULF formation predominantly involves A(11)-type dimer-dimer interactions. The presence of A(22) and A(12) cross-linking products in mature IFs, however, indicates that major rearrangements do occur during the longitudinal annealing and radial compaction steps of IF assembly.
我们基于磷酸盐缓冲系统开发了一种用于中间丝(IF)蛋白波形蛋白的组装方案,该方案能够动态形成真实的中间丝。这种生理缓冲液的优势在于,通过对内部赖氨酸残基进行化学交联来分析亚基间相互作用变得可行。利用该系统,我们分析了卷曲螺旋杆状结构域之间的潜在相互作用,这些相互作用被认为对中间丝的形成和稳定性起着关键作用。我们发现,在低盐条件下二聚化的无头波形蛋白,在组装条件下会缔合形成A(22)型构象的四聚体,这表明增加离子强度的一个作用是促进螺旋2 - 螺旋2相互作用。此外,为了深入了解全长波形蛋白组装第一阶段发生的分子相互作用,我们采用了人波形蛋白的温度敏感变体,该变体在室温下停滞在“单位长度细丝”(ULF)状态,但在温度升至37摄氏度时开始伸长。最重要的是,我们通过交联分析证明,ULF的形成主要涉及A(11)型二聚体 - 二聚体相互作用。然而,成熟中间丝中存在A(22)和A(12)交联产物,这表明在中间丝组装的纵向退火和径向压实步骤中确实发生了重大重排。