4.7 Article

Biophysical characterization of structural and conformational changes in methylmethane sulfonate modified DNA leading to the frizzled backbone structure and strand breaks in DNA

期刊

JOURNAL OF BIOMOLECULAR STRUCTURE & DYNAMICS
卷 40, 期 16, 页码 7598-7611

出版社

TAYLOR & FRANCIS INC
DOI: 10.1080/07391102.2021.1899051

关键词

Cancer; DNA; DNA fragmentation; DNA-alkylation; methylmethane sulfonate

资金

  1. UGC-BSR Research Start-up-Grant [F-30-377/2017]
  2. University Grants Commission

向作者/读者索取更多资源

This study utilized various techniques to investigate the structural alterations in DNA induced by MMS, including exposure of chromophoric groups, conformational changes, fragmentation, and reduced stability. The results suggest direct strand breaks in DNA due to backbone loss, along with an exothermic interaction between MMS and DNA with moderate affinity. Molecular docking and simulations indicated interactions at both the level of nitrogenous bases and DNA backbone.
Methyl methanesulfonate (MMS) is a highly toxic DNA-alkylating agent that has a potential to damage the structural integrity of DNA. This work employed multiple biophysical and computational methods to report the MMS mediated structural alterations in the DNA (MMS-DNA). Spectroscopic techniques and gel electrophoresis studies revealed MMS induced exposure of chromophoric groups of DNA; methylation mediated anti -> syn conformational change, DNA fragmentation and reduced nucleic acid stability. MMS induced single-stranded regions in the DNA were observed in nuclease S1 assay. FT-IR results indicated MMS mediated loss of the assigned peaks for DNA, partial loss of C-O ribose, loss of deoxyribose region, C-O stretching and bending of the C-OH groups of hexose sugar, a progressive shift in the assigned guanine and adenine peaks, loss of thymine peak, base stacking and presence of C-O-H vibrations of glucose and fructose, indicating direct strand breaks in DNA due to backbone loss. Isothermal titration calorimetry showed MMS-DNA interaction as exothermic with moderate affinity. Dynamic light scattering studies pointed towards methylation followed by the generation of single-stranded regions. Electron microscopy pictured the loss of alignment in parallel base pairs and showed the formation of fibrous aggregates in MMS-DNA. Molecular docking found MMS in close contact with the ribose sugar of DNA backbone having non-bonded interactions. Molecular dynamic simulations confirmed that MMS is capable of interacting with DNA at two levels, one at the level of nitrogenous bases and another at the DNA backbone. The study offers insights into the molecular interaction of MMS and DNA. Communicated by Ramaswamy H. Sarma

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