Iakoucheva L M, Kimzey A L, Masselon C D, Bruce J E, Garner E C, Brown C J, Dunker A K, Smith R D, Ackerman E J
Pacific Northwest National Laboratory, Molecular Biosciences Department, Richland, WA 99352, USA.
Protein Sci. 2001 Mar;10(3):560-71. doi: 10.1110/ps.29401.
The DNA-repair protein XPA is required to recognize a wide variety of bulky lesions during nucleotide excision repair. Independent NMR solution structures of a human XPA fragment comprising approximately 40% of the full-length protein, the minimal DNA-binding domain, revealed that one-third of this molecule was disordered. To better characterize structural features of full-length XPA, we performed time-resolved trypsin proteolysis on active recombinant Xenopus XPA (xXPA). The resulting proteolytic fragments were analyzed by electrospray ionization interface coupled to a Fourier transform ion cyclotron resonance mass spectrometry and SDS-PAGE. The molecular weight of the full-length xXPA determined by mass spectrometry (30922.02 daltons) was consistent with that calculated from the sequence (30922.45 daltons). Moreover, the mass spectrometric data allowed the assignment of multiple xXPA fragments not resolvable by SDS-PAGE. The neural network program Predictor of Natural Disordered Regions (PONDR) applied to xXPA predicted extended disordered N- and C-terminal regions with an ordered internal core. This prediction agreed with our partial proteolysis results, thereby indicating that disorder in XPA shares sequence features with other well-characterized intrinsically unstructured proteins. Trypsin cleavages at 30 of the possible 48 sites were detected and no cleavage was observed in an internal region (Q85-I179) despite 14 possible cut sites. For the full-length xXPA, there was strong agreement among PONDR, partial proteolysis data, and the NMR structure for the corresponding XPA fragment.
DNA修复蛋白XPA在核苷酸切除修复过程中需要识别多种大体积损伤。包含全长蛋白约40%的人XPA片段(最小DNA结合结构域)的独立核磁共振溶液结构显示,该分子的三分之一是无序的。为了更好地表征全长XPA的结构特征,我们对活性重组非洲爪蟾XPA(xXPA)进行了时间分辨胰蛋白酶蛋白水解。通过与傅里叶变换离子回旋共振质谱联用的电喷雾电离接口和SDS-PAGE分析所得的蛋白水解片段。通过质谱测定的全长xXPA的分子量(30922.02道尔顿)与根据序列计算的分子量(30922.45道尔顿)一致。此外,质谱数据允许对SDS-PAGE无法分辨的多个xXPA片段进行归属。应用于xXPA的神经网络程序天然无序区域预测器(PONDR)预测了具有有序内部核心的延伸无序N端和C端区域。这一预测与我们的部分蛋白水解结果一致,从而表明XPA中的无序与其他特征明确的内在无序蛋白具有共同的序列特征。在48个可能位点中的30个位点检测到胰蛋白酶切割,尽管有14个可能的切割位点,但在内部区域(Q85-I179)未观察到切割。对于全长xXPA,PONDR、部分蛋白水解数据和相应XPA片段的核磁共振结构之间有很强的一致性。