Quantum Theoretical Study of Cleavage of the Glycosidic Bond of 2′-Deoxyadenosine: Base Excision-Repair Mechanism of DNA by MutY

被引:14
作者
Tiwari, Saumya [1 ]
Agnihotri, Neha [1 ]
Mishra, P. C. [1 ]
机构
[1] Banaras Hindu Univ, Dept Phys, Varanasi 221005, Uttar Pradesh, India
关键词
TRANSITION-STATE ANALYSIS; AB-INITIO; ELECTRONIC-STRUCTURE; OXOCARBENIUM ION; PROTEIN HOGG1; ACID; 8-OXOGUANINE; GLYCOSYLASE; RECOGNITION; HYDROLYSIS;
D O I
10.1021/jp1109256
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
The enzyme adenine DNA glycosylase, also called MutY, is known to catalyze base excision repair by removal of adenine from the abnormal 2'-deoxyadenosine:8-oxo-2'-deoxyguanosinei pair in DNA. The active site of the enzyme was considered to consist of a glutamic acid residue along with two water molecules. The relevant reaction mechanism involving different barrier energies was studied theoretically. Molecular geometries of the various molecules and complexes involved in the reaction, e.g., the reactant, intermediate, and product complexes as well as transition states, were optimized employing density functional theory at the B3LYP/6-31G(d,p) level in the gas phase. It was followed by single-point energy calculations at the B3LYP/AUG-cc-pVDZ, BHandHLYP/AUG-cc-pVDZ, and MP2/AUG-cc-pVDZ levels in the gas phase. Single-point energy calculations were also carried out at the B3LYP/AUG-cc-pVDZ and BHandHLYP/AUG-cc-pVDZ levels in aqueous media as well as in the solvents chlorobenzene and dichloroethane. For the solvation calculations, the integral equation formalism of the polarizable continuum model (IEF-PCM) was employed. It is found that glutamic acid along with two water molecules would effectively cleave the glycosidic bond of adenosine by a new two-step reaction mechanism proposed here which is different from the three-step mechanism proposed by other authors earlier regarding the working mechanism of MutY.
引用
收藏
页码:3200 / 3207
页数:8
相关论文
共 75 条
[1]   Mechanism of Scavenging Action of N-Acetylcysteine for the OH Radical: A Quantum Computational Study [J].
Agnihotri, Neha ;
Mishra, P. C. .
JOURNAL OF PHYSICAL CHEMISTRY B, 2009, 113 (35) :12096-12104
[2]   Mutagenic Product Formation Due to Reaction of Guanine Radical Cation with Nitrogen Dioxide [J].
Agnihotri, Neha ;
Mishra, P. C. .
JOURNAL OF PHYSICAL CHEMISTRY B, 2009, 113 (10) :3129-3138
[3]   Inherited variants of MYH associated with somatic G:C→T:A mutations in colorectal tumors [J].
Al-Tassan, N ;
Chmiel, NH ;
Maynard, J ;
Fleming, N ;
Livingston, AL ;
Williams, GT ;
Hodges, AK ;
Davies, DR ;
David, SS ;
Sampson, JR ;
Cheadle, JR .
NATURE GENETICS, 2002, 30 (02) :227-232
[4]   AN ABINITIO STUDY (6-31G-STAR) OF TRANSITION-STATES IN GLYCOSIDE HYDROLYSIS BASED ON AXIAL AND EQUATORIAL 2-METHOXYTETRAHYDROPYRANS [J].
ANDREWS, CW ;
FRASERREID, B ;
BOWEN, JP .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 1991, 113 (22) :8293-8298
[5]  
[Anonymous], GAUSSVIEW REV 3 9
[6]   Structure of a repair enzyme interrogating undamaged DNA elucidates recognition of damaged DNA [J].
Banerjee, A ;
Yang, W ;
Karplus, M ;
Verdine, GL .
NATURE, 2005, 434 (7033) :612-618
[7]   DENSITY-FUNCTIONAL THERMOCHEMISTRY .3. THE ROLE OF EXACT EXCHANGE [J].
BECKE, AD .
JOURNAL OF CHEMICAL PHYSICS, 1993, 98 (07) :5648-5652
[8]   Toward a detailed understanding of base excision repair enzymes: transition state and mechanistic analyses of N-glycoside hydrolysis and N-glycoside transfer [J].
Berti, PJ ;
McCann, JAB .
CHEMICAL REVIEWS, 2006, 106 (02) :506-555
[9]   Unmasking a killer:: DNA O6-methylguanine and the cytotoxicity of methylating agents [J].
Bignami, M ;
O'Driscoll, M ;
Aquilina, G ;
Karran, P .
MUTATION RESEARCH-REVIEWS IN MUTATION RESEARCH, 2000, 462 (2-3) :71-82
[10]   Nucleophilic participation in the transition state for human thymidine phosphorylase [J].
Birck, MR ;
Schramm, VL .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2004, 126 (08) :2447-2453