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Fadaei, F.

Publications and source records attributed to Fadaei, F..

2 recordsLinked to original sources

S-Alkyl-Phosphorothioate Modifications Reduce Thermal and Structural Stability of DNA Duplexes

While phosphorothioate (PS) oligonucleotides are usually used in therapeutic applications, they also offer the cheapest and synthetically most straightforward route to introduce hydrophobic modifications for applications in structural DNA nanotechnology and biophysics. For this, the sulfur atom is S-alkylated with alkyl iodides, enabling a hydrophobically tunable interface of DNA nanostructures with lipid bilayers. While longer and more alkyls per helical turn should lead to stronger interactions with lipid membranes, we found that excessive S-alkylations strongly inhibit hybridization of oligonucleotides to their complementary strands and decrease their melting temperature, despite a reduction in electrostatic repulsion between the two strands. Moreover, both the type and placement of alkyl modifications influence the melting temperature. Atomistic molecular dynamics simulations reveal two complementary mechanisms that explain the experimental findings. First, S-alkylated oligonucleotides are more compact and less dynamic than unmodified ones, likely inhibiting their ability to hybridize to their complementary strands. Second, S-alkyls in double-stranded DNA promote defect formation due to alkyl modifications having hydrophobic interactions with other alkyl groups and nucleobases, therefore reducing the thermal and structural stability of alkylated DNA duplexes. This study serves as a practical guide for tuning hydrophobicity while maintaining structural stability in membrane-interfacing DNA nanostructures.

biochemistry↗

Bending Unwinds DNA

DNA is under high bending and torsional strain in many biological contexts 1,2, but elastic limits of tightly bent DNA under simultaneous torsional strain are not fully understood 3-22. We synthesized DNA circles with all possible radii of curvature between r {approx} 2.7 - 5.7 nm in increments of{Delta} r = 0.05 nm and defined helical repeats ranging from h {approx} 10 - 13 base pairs per helical turn. Nuclease digest reveals that DNA can be bent to r {approx} 3.0 nm without kinking, but only when h < ~10.9 bp/turn, while underwound DNA kinks irrespective of curvature. Histone proteins overwind DNA and thereby mechanically stabilize it. The natural helical repeat h0 increases from 10.45 to >11 bp/turn due to twist-bend coupling, which is not caused by kinking before ligation. These findings require reassessing our models and the energetics of molecular mechanisms involving DNA under mechanical stress.

biophysics↗