Eoff Robert L, Irimia Adriana, Angel Karen C, Egli Martin, Guengerich F Peter
Department of Biochemistry and Center in Molecular Toxicology, Vanderbilt University School of Medicine, Nashville, Tennessee 37232-0146, USA.
J Biol Chem. 2007 Jul 6;282(27):19831-43. doi: 10.1074/jbc.M702290200. Epub 2007 Apr 27.
Sulfolobus solfataricus P2 DNA polymerase IV (Dpo4) has been shown to catalyze bypass of 7,8-dihydro-8-oxodeoxyguanosine (8-oxoG) in a highly efficient and relatively accurate manner. Crystal structures have revealed a potential role for Arg(332) in stabilizing the anti conformation of the 8-oxoG template base by means of a hydrogen bond or ion-dipole pair, which results in an increased enzymatic efficiency for dCTP insertion and makes formation of a Hoogsteen pair between 8-oxoG and dATP less favorable. Site-directed mutagenesis was used to replace Arg(332) with Ala, Glu, Leu, or His in order to probe the importance of Arg(332) in accurate and efficient bypass of 8-oxoG. The double mutant Ala(331)Ala(332) was also prepared to address the contribution of Arg(331). Transientstate kinetic results suggest that Glu(332) retains fidelity against bypass of 8-oxoG that is similar to wild type Dpo4, a result that was confirmed by tandem mass spectrometric analysis of full-length extension products. A crystal structure of the Dpo4 Glu(332) mutant and 8-oxoG:C pair revealed water-mediated hydrogen bonds between Glu(332) and the O-8 atom of 8-oxoG. The space normally occupied by Arg(332) side chain is empty in the crystal structures of the Ala(332) mutant. Two other crystal structures show that a Hoogsteen base pair is formed between 8-oxoG and A in the active site of both Glu(332) and Ala(332) mutants. These results support the view that a bond between Arg(332) and 8-oxoG plays a role in determining the fidelity and efficiency of Dpo4-catalyzed bypass of the lesion.
嗜热栖热菌P2 DNA聚合酶IV(Dpo4)已被证明能够高效且相对准确地催化绕过7,8 - 二氢 - 8 - 氧代脱氧鸟苷(8 - oxoG)。晶体结构揭示了精氨酸(332)通过氢键或离子 - 偶极对稳定8 - oxoG模板碱基的反式构象的潜在作用,这导致dCTP插入的酶促效率提高,并使得8 - oxoG与dATP之间形成Hoogsteen碱基对的可能性降低。为了探究精氨酸(332)在准确高效绕过8 - oxoG中的重要性,采用定点诱变将精氨酸(332)替换为丙氨酸、谷氨酸、亮氨酸或组氨酸。还制备了双突变体丙氨酸(331)丙氨酸(332)以研究精氨酸(331)的作用。瞬态动力学结果表明,谷氨酸(332)在绕过8 - oxoG时保持与野生型Dpo4相似的保真度,这一结果通过对全长延伸产物的串联质谱分析得到证实。Dpo4谷氨酸(332)突变体与8 - oxoG:C碱基对的晶体结构揭示了谷氨酸(332)与8 - oxoG的O - 8原子之间由水介导的氢键。在丙氨酸(332)突变体的晶体结构中,通常被精氨酸(332)侧链占据的空间是空的。另外两个晶体结构表明,在谷氨酸(332)和丙氨酸(332)突变体的活性位点中,8 - oxoG与A之间形成了Hoogsteen碱基对。这些结果支持了这样一种观点,即精氨酸(332)与8 - oxoG之间的键在决定Dpo4催化绕过损伤的保真度和效率方面发挥作用。