Das Aditi, Rajagopalan Lavanya, Mathura Venkatarajan S, Rigby Samuel J, Mitra Sankar, Hazra Tapas K
Sealy Center for Molecular Science and Department of Human Biological Chemistry and Genetics, University of Texas Medical Branch, Galveston, Texas 77555-1079, USA.
J Biol Chem. 2004 Nov 5;279(45):47132-8. doi: 10.1074/jbc.M406224200. Epub 2004 Aug 31.
The recently identified human NEIL2 (Nei-like-2) protein, a DNA glycosylase/AP lyase specific for oxidatively damaged bases, shares structural features and reaction mechanism with the Escherichia coli DNA glycosylases, Nei and Fpg. Amino acid sequence analysis of NEIL2 suggested it to have a zinc finger-like Nei/Fpg. However, the Cys-X2-His-X16-Cys-X2-Cys (CHCC) motif present near the C terminus of NEIL2 is distinct from the zinc finger motifs of Nei/Fpg, which are of the C4 type. Here we show the presence of an equimolar amount of zinc in NEIL2 by inductively coupled plasma mass spectrometry. Individual mutations of Cys-291, His-295, Cys-315, and Cys-318, candidate residues for coordinating zinc, inactivated the enzyme by abolishing its DNA binding activity. H295A and C318S mutants were also shown to lack bound zinc, and a significant change in their secondary structure was revealed by CD spectra analysis. Molecular modeling revealed Arg-310 of NEIL2 to be a critical residue in its zinc binding pocket, which is highly conserved throughout the Fpg/Nei family. A R310Q mutation significantly reduced the activity of NEIL2. We thereby conclude that the zinc finger motif in NEIL2 is essential for its structural integrity and enzyme activity.
最近发现的人类NEIL2(类Nei-2)蛋白是一种对氧化损伤碱基具有特异性的DNA糖基化酶/AP裂解酶,它与大肠杆菌DNA糖基化酶Nei和Fpg具有结构特征和反应机制。对NEIL2的氨基酸序列分析表明它具有类似锌指结构的Nei/Fpg。然而,NEIL2 C末端附近存在的Cys-X2-His-X16-Cys-X2-Cys(CHCC)基序与Nei/Fpg的锌指基序不同,后者属于C4类型。在这里,我们通过电感耦合等离子体质谱法显示NEIL2中存在等摩尔量的锌。参与锌配位的候选残基Cys-291、His-295、Cys-315和Cys-318的单个突变通过消除其DNA结合活性使酶失活。H295A和C318S突变体也显示缺乏结合的锌,并且通过圆二色光谱分析揭示了它们二级结构的显著变化。分子建模显示NEIL2的Arg-310是其锌结合口袋中的关键残基,在整个Fpg/Nei家族中高度保守。R310Q突变显著降低了NEIL2的活性。因此,我们得出结论,NEIL2中的锌指基序对其结构完整性和酶活性至关重要。