Cupp-Vickery Jill R, Peterson John C, Ta Dennis T, Vickery Larry E
Department of Physiology and Biophysics, University of California, Irvine, CA 92697, USA.
J Mol Biol. 2004 Sep 24;342(4):1265-78. doi: 10.1016/j.jmb.2004.07.025.
HscA, a specialized bacterial Hsp70-class molecular chaperone, interacts with the iron-sulfur cluster assembly protein IscU by recognizing a conserved LPPVK sequence motif. We report the crystal structure of the substrate-binding domain of HscA (SBD, residues 389-616) from Escherichia coli bound to an IscU-derived peptide, ELPPVKIHC. The crystals belong to the space group I222 and contain a single molecule in the asymmetric unit. Molecular replacement with the E.coli DnaK(SBD) model was used for phasing, and the HscA(SBD)-peptide model was refined to Rfactor=17.4% (Rfree=21.0%) at 1.95 A resolution. The overall structure of HscA(SBD) is similar to that of DnaK(SBD), although the alpha-helical subdomain (residues 506-613) is shifted up to 10 A relative to the beta-sandwich subdomain (residues 389-498) when compared to DnaK(SBD). The ELPPVKIHC peptide is bound in an extended conformation in a hydrophobic cleft in the beta-subdomain, which appears to be solvent-accessible via a narrow passageway between the alpha and beta-subdomains. The bound peptide is positioned in the reverse orientation of that observed in the DnaK(SBD)-NRLLLTG peptide complex placing the N and C termini of the peptide on opposite sides of the HscA(SBD) relative to the DnaK(SBD) complex. Modeling of the peptide in the DnaK-like forward orientation suggests that differences in hydrogen bonding interactions in the binding cleft and electrostatic interactions involving surface residues near the cleft contribute to the observed directional preference.
HscA是一种特殊的细菌Hsp70类分子伴侣,它通过识别保守的LPPVK序列基序与铁硫簇组装蛋白IscU相互作用。我们报道了来自大肠杆菌的HscA底物结合结构域(SBD,残基389 - 616)与IscU衍生肽ELPPVKIHC结合的晶体结构。晶体属于空间群I222,不对称单元中包含一个分子。使用大肠杆菌DnaK(SBD)模型进行分子置换来确定相位,HscA(SBD)-肽模型在1.95 Å分辨率下精修至R因子 = 17.4%(R自由 = 21.0%)。HscA(SBD)的整体结构与DnaK(SBD)相似,尽管与DnaK(SBD)相比,α - 螺旋亚结构域(残基506 - 613)相对于β - 三明治亚结构域(残基389 - 498)向上移动了多达10 Å。ELPPVKIHC肽以伸展构象结合在β - 亚结构域的疏水裂缝中,该裂缝似乎可通过α和β - 亚结构域之间的狭窄通道与溶剂接触。结合的肽的定位方向与在DnaK(SBD)-NRLLLTG肽复合物中观察到的相反,使肽的N和C末端相对于DnaK(SBD)复合物位于HscA(SBD)的相对两侧。在类似DnaK的正向方向上对肽进行建模表明,结合裂缝中氢键相互作用的差异以及涉及裂缝附近表面残基的静电相互作用导致了观察到的方向偏好。