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气相断裂作为 G-四链体形成的探针。

Gas-Phase Fragmentation as a Probe of G-Quadruplex Formation.

机构信息

Department of Chemistry, Purdue University, 560 Oval Drive, West Lafayette, Indiana 47907, United States.

Medicinal Chemistry and Molecular Pharmacology, College of Pharmacy, Purdue Center for Cancer Research, Purdue University, 575 W Stadium Avenue, West Lafayette, Indiana 47904, United States.

出版信息

Anal Chem. 2023 Oct 10;95(40):15057-15067. doi: 10.1021/acs.analchem.3c03143. Epub 2023 Sep 29.

Abstract

G-quadruplex (G4) DNA is found in oncogene promoters and human telomeres and is an attractive anticancer target. Stable G4 structures form in guanine-rich sequences in the presence of metal cations and can stabilize further with specific ligand adduction. To explore the preservation and stability of this secondary structure with mass spectrometry, gas-phase collision-induced dissociation kinetics of G4-like and non-G4-like ion structures were determined in a linear quadrupole ion trap. This study focused on a sequence from the promoter of the oncogene, MycG4, and a mutant non-G4-forming sequence, MycNonG4. At relatively high ion activation energies, the backbone fragmentation patterns of the MycG4 and MycNonG4 are similar, while potassium ion-stabilized G4-folded [MycG4 + 2K-7H] and counterpart [MycG4-5H] ions are essentially indistinguishable, indicating that high-energy fragmentation is not sensitive to the G4 structure. At low energies, the backbone fragmentation patterns of MycG4 and MycNonG4 are significantly different. For MycG4, fragmentation over time differed significantly between the potassium-bound and free structures, reflecting the preservation of the G4 structure in the gas phase. Kinetic measurements revealed the [MycG4 + 2K-7H] ions to fragment two to three times more slowly than the [MycG4-5H]. Results for the control MycNonG4 indicated that the phenomena noted for [MycG4 + 2K-7H] ions are specific to G4-folding. Therefore, our data show that gentle activation conditions can lead to fragmentation behavior that is sensitive to G-quadruplex structure, revealing differences in kinetic stabilities of isomeric structures as well as the regions of the sequence that are directly involved in forming these structures.

摘要

G-四链体 (G4) DNA 存在于癌基因启动子和人类端粒中,是一个有吸引力的抗癌靶点。在金属阳离子存在的情况下,富含鸟嘌呤的序列中会形成稳定的 G4 结构,并且可以通过特定配体加成进一步稳定。为了通过质谱法探索这种二级结构的保存和稳定性,在线性四极离子阱中确定了 G4 样和非 G4 样离子结构的气相碰撞诱导解离动力学。这项研究集中在癌基因 Myc 的启动子中的一个序列,MycG4,和一个突变的非 G4 形成序列,MycNonG4。在相对较高的离子活化能下,MycG4 和 MycNonG4 的骨架碎裂模式相似,而钾离子稳定的 G4 折叠 [MycG4 + 2K-7H] 和对应物 [MycG4-5H] 离子基本上无法区分,表明高能碎裂对 G4 结构不敏感。在低能量下,MycG4 和 MycNonG4 的骨架碎裂模式有很大的不同。对于 MycG4,钾结合和游离结构之间的碎裂随时间有显著差异,反映了 G4 结构在气相中的保存。动力学测量表明 [MycG4 + 2K-7H] 离子比 [MycG4-5H] 离子碎裂慢两到三倍。对对照 MycNonG4 的结果表明,对于 [MycG4 + 2K-7H] 离子注意到的现象是 G4 折叠特有的。因此,我们的数据表明,温和的激活条件可以导致对 G-四链体结构敏感的碎裂行为,揭示了异构结构的动力学稳定性差异以及直接参与形成这些结构的序列区域。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a6e3/11022955/8e86d9ef8c2f/nihms-1984212-f0002.jpg

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