AI Article Synopsis

  • Stabilization of DNA is important for various applications, including gene therapy, diagnostics, and materials science, and this study focuses on heterochiral DNA with distinct strand configurations.
  • Researchers created 12-mer heterochiral duplexes using specially designed oligonucleotides and tested two types of nucleosides that can enhance the stability of base pairs, finding that one compound is particularly effective.
  • The study utilized UV melting profiles to measure the stability, along with circular dichroism (CD) spectra to observe structural changes in the DNA during melting, revealing insights into DNA stabilization techniques.

Article Abstract

Stabilization of DNA is beneficial for many applications in the fields of DNA therapeutics, diagnostics, and materials science. Now, this phenomenon is studied on heterochiral DNA, an autonomous DNA recognition system with complementary strands in α-D and β-D configuration showing parallel strand orientation. The 12-mer heterochiral duplexes were constructed from anomeric (α/β-D) oligonucleotide single-strands. Purine-2,6-diamine and 8-aza-7-deaza-7-bromopurine-2,6-diamine 2'-deoxyribonucleosides having the capability to form tridentate base pairs with dT were used to strengthen the stability of the dA-dT base pair. T data and thermodynamic values obtained from UV melting profiles indicated that the 8-aza-7-deaza 2'-deoxyribonucleoside decorated with a bromo substituent is so far the most efficient stabilizer for heterochiral DNA. Compared with that, the stabilizing effect of the purine-2,6-diamine 2'-deoxyribonucleoside is low. Global changes of helix structures were identified by circular dichroism (CD) spectra during melting.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC7898646PMC
http://dx.doi.org/10.1002/chem.202004221DOI Listing

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