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Oxidative Damage Induces a Vacancy G-Quadruplex That Binds Guanine Metabolites: Solution Structure of a CGMP Fill-in Vacancy G-Quadruplex in the Oxidized Gene Promoter

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Journal J Am Chem Soc
Specialty Chemistry
Date 2022 Mar 30
PMID 35352895
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Abstract

Guanine (G)-oxidation to 8-oxo-7,8-dihydroguanine (OG) by reactive oxygen species in genomic DNA has been implicated with various human diseases. G-quadruplex (G4)-forming sequences in gene promoters are highly susceptible to G-oxidation, which can subsequently cause gene activation. However, the underlying G4 structural changes that result from OG modifications remain poorly understood. Herein, we investigate the effect of G-oxidation on the gene promoter G4. For the first time, we show that OG can induce a G-vacancy-containing G4 (vG4), which can be filled in and stabilized by guanine metabolites and derivatives. We determined the NMR solution structure of the cGMP-fill-in oxidized promoter vG4. This is the first complex structure of an OG-induced vG4 from a human gene promoter sequence with a filled-in guanine metabolite. The high-resolution structure elucidates the structural features of the specific 5'-end cGMP-fill-in for the OG-induced vG4. Interestingly, the OG is removed from the G-core and becomes part of the 3'-end capping structure. A series of guanine metabolites and derivatives are evaluated for fill-in activity to the oxidation-induced vG4. Significantly, cellular guanine metabolites, such as cGMP and GTP, can bind and stabilize the OG-induced vG4, suggesting their potential regulatory role in response to oxidative damage in physiological and pathological processes. Our work thus provides exciting insights into how oxidative damage and cellular metabolites may work together through a G4-based epigenetic feature for gene regulation. Furthermore, the NMR structure can guide the rational design of small-molecule inhibitors that specifically target the oxidation-induced vG4s.

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References
1.
Hansel-Hertsch R, Di Antonio M, Balasubramanian S . DNA G-quadruplexes in the human genome: detection, functions and therapeutic potential. Nat Rev Mol Cell Biol. 2017; 18(5):279-284. DOI: 10.1038/nrm.2017.3. View

2.
Pleasance E, Cheetham R, Stephens P, McBride D, Humphray S, Greenman C . A comprehensive catalogue of somatic mutations from a human cancer genome. Nature. 2009; 463(7278):191-6. PMC: 3145108. DOI: 10.1038/nature08658. View

3.
Perillo B, Ombra M, Bertoni A, Cuozzo C, Sacchetti S, Sasso A . DNA oxidation as triggered by H3K9me2 demethylation drives estrogen-induced gene expression. Science. 2008; 319(5860):202-6. DOI: 10.1126/science.1147674. View

4.
Wang K, Dickerhoff J, Wu G, Yang D . PDGFR-β Promoter Forms a Vacancy G-Quadruplex that Can Be Filled in by dGMP: Solution Structure and Molecular Recognition of Guanine Metabolites and Drugs. J Am Chem Soc. 2020; 142(11):5204-5211. PMC: 7241120. DOI: 10.1021/jacs.9b12770. View

5.
Zhang X, Spiegel J, Martinez Cuesta S, Adhikari S, Balasubramanian S . Chemical profiling of DNA G-quadruplex-interacting proteins in live cells. Nat Chem. 2021; 13(7):626-633. PMC: 8245323. DOI: 10.1038/s41557-021-00736-9. View