| Literature DB >> 34730362 |
Di Kang1, Jing Yu2, Fan Xia3, Jun Huang4, Hongbo Zeng4, Matthew Tirrell5,6, Jacob Israelachvili7, Kevin W Plaxco1,8.
Abstract
Using a surface forces apparatus (SFA), we have studied the nanomechanical behavior of short single-stranded and partially and fully double-stranded DNA molecules attached via one end to a self-assembled monolayer on a gold surface. Our results confirm the previously proposed "mushroom-like" polymer structure for surface-attached, single-stranded DNA at low packing density and a "brush-like" structure for the same construct at higher density. At low density we observe a transition to "rigid rod" behavior upon addition of DNA complementary to the surface-attached single strand as the fraction of molecules that are double-stranded increases, with a concomitant increase in the SFA-observed thickness of the monolayer and the characteristic length of the observed repulsive forces. At higher densities, in contrast, this transition is effectively eliminated, presumably because the single-stranded state is already extended in its "brush" state. Taken together, these studies offer insights into the structure and physics of surface-attached short DNAs, providing new guidance for the rational design of DNA-modified functional surfaces.Entities:
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Year: 2021 PMID: 34730362 PMCID: PMC8968159 DOI: 10.1021/acs.langmuir.1c01966
Source DB: PubMed Journal: Langmuir ISSN: 0743-7463 Impact factor: 3.882