Mutagenesis mechanism of the major oxidative adenine lesion 7,8-dihydro-8-oxoadenine
Myong-Chul Koag1, Hunmin Jung1, Seongmin Lee1
1The Division of Chemical Biology and Medicinal Chemistry, College of Pharmacy, The University of Texas at Austin, Austin, TX 78712, USA.
Abstract:
Reactive oxygen species generate the genotoxic 8-oxoguanine (oxoG) and 8-oxoadenine (oxoA) as major oxidative lesions. The mutagenicity of oxoG is attributed to the lesion's ability to evade the geometric discrimination of DNA polymerases by adopting Hoogsteen base pairing with adenine in a Watson-Crick-like geometry. Compared with oxoG, the mutagenesis mechanism of oxoA, which preferentially induces A-to-C mutations, is poorly understood. In the absence of protein contacts, oxoA:G forms a wobble conformation, the formation of which is suppressed in the catalytic site of most DNA polymerases. Interestingly, human DNA polymerase η (polη) proficiently incorporates dGTP opposite oxoA, suggesting the nascent oxoA:dGTP overcomes the geometric discrimination of polη. To gain insights into oxoA-mediated mutagenesis, we determined crystal structures of polη bypassing oxoA. When paired with dGTP, oxoA adopted a syn-conformation and formed Hoogsteen pairing while in a wobble geometry, which was stabilized by Gln38-mediated minor groove contacts to oxoA:dGTP. Gln38Ala mutation reduced misinsertion efficiency ∼55-fold, indicating oxoA:dGTP misincorporation was promoted by minor groove interactions. Also, the efficiency of oxoA:dGTP insertion by the X-family polβ decreased ∼380-fold when Asn279-mediated minor groove contact to dGTP was abolished. Overall, these results suggest that, unlike oxoG, oxoA-mediated mutagenesis is greatly induced by minor groove interactions.
Insights
8-oxoadenine (oxoA) causes A-to-C mutations through DNA polymerase interactions. Minor groove contacts stabilize oxoA:dGTP pairing, promoting misincorporation and mutagenesis, unlike 8-oxoguanine (oxoG).
Area of Science:
- Molecular Biology
- Biochemistry
- Genetics
Background:
- Reactive oxygen species generate genotoxic lesions 8-oxoguanine (oxoG) and 8-oxoadenine (oxoA).
- OxoG mutagenicity involves Hoogsteen base pairing, evading DNA polymerase discrimination.
- The mechanism of oxoA mutagenesis, particularly its A-to-C mutations, is poorly understood.
Purpose of the Study:
- To elucidate the structural basis of oxoA-mediated mutagenesis by human DNA polymerase eta (polη).
- To investigate the role of protein contacts in the bypass of oxoA by DNA polymerases.
Main Methods:
- Crystal structure determination of polη bypassing oxoA.
- Site-directed mutagenesis of key residues in polη and polβ.
- Analysis of misinsertion efficiency of dGTP opposite oxoA.
Main Results:
- Crystal structures revealed oxoA adopts a syn-conformation and forms Hoogsteen pairing with dGTP in a wobble geometry.
- Minor groove contacts, particularly Gln38 in polη, stabilize the oxoA:dGTP mispair.
- Mutating Gln38 in polη reduced misinsertion efficiency ~55-fold; abolishing a similar contact in polβ reduced efficiency ~380-fold.
Conclusions:
- Unlike oxoG, oxoA-mediated mutagenesis is significantly driven by minor groove interactions with DNA polymerases.
- These interactions stabilize the oxoA:dGTP mispair, promoting its incorporation and subsequent mutagenesis.
- Understanding these mechanisms is crucial for comprehending oxidative DNA damage and repair pathways.
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