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DNA Mechanics: From Single Stranded to Self-Assembled.

Linfeng YangQian LiZhilei GeChun-Hai FanWen-Mao Huang
Published in: Nano letters (2024)
DNA encodes genetic information and forms various structural conformations with distinct physical, chemical, and biological properties. Over the past 30 years, advancements in force manipulation technology have enabled the precise manipulation of DNA at nanometer and piconewton resolutions. This mini-review discusses these force manipulation techniques for exploring the mechanical properties of DNA at the single-molecule level. We summarize the distinct mechanical features of different DNA forms while considering the impact of the force geometry. We highlight the role of DNA mechanics in origami structures that serve as self-assembled building blocks or mechanically responsive/active nanomachines. Accordingly, we emphasize how DNA mechanics are integral to the functionality of origami structures for achieving mechanical capabilities. Finally, we provide an outlook on the intrinsic mechanical properties of DNA, from single stranded to self-assembled higher-dimensional structures. This understanding is expected to inspire new design strategies in DNA mechanics, paving the way for innovative applications and technologies.
Keyphrases
  • single molecule
  • circulating tumor
  • cell free
  • living cells
  • atomic force microscopy
  • nucleic acid
  • high resolution
  • healthcare
  • mental health
  • dna methylation
  • circulating tumor cells
  • social media