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Related Concept Videos

Genomic DNA in Eukaryotes00:58

Genomic DNA in Eukaryotes

Eukaryotes have large genomes compared to prokaryotes. To fit their genomes into a cell, eukaryotic DNA is packaged extraordinarily tightly inside the nucleus. To achieve this, DNA is tightly wound around proteins called histones, which are packaged into nucleosomes that are joined by linker DNA and coil into chromatin fibers. Additional fibrous proteins further compact the chromatin, which is recognizable as chromosomes during certain phases of cell division.
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Designing a Bio-responsive Robot from DNA Origami
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Engineering a custom-sized DNA scaffold for more efficient DNA origami-based nucleic acid data storage.

Sarah E Kobernat1,2,3, Maryna Lazouskaya4, Benjamin C Balzer2,3

  • 1Biomolecular Sciences Graduate Programs, Boise State University, Boise, ID 83725, United States.

Synthetic Biology (Oxford, England)
|May 5, 2025
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Researchers developed a longer DNA scaffold to create larger DNA origami structures for enhanced data storage. This innovation boosts data capacity in DNA-based digital memory systems.

Keywords:
DNA data storageDNA nanotechnologyDNA origaminucleic acid memoryssDNA synthesis

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Area of Science:

  • Biotechnology
  • Nanotechnology
  • Data Storage

Background:

  • DNA data storage offers a promising solution for increasing data demands.
  • Current structure-based DNA data storage uses DNA origami and DNA-PAINT for reading/writing data.
  • Larger DNA origami structures can improve data storage efficiency but require longer DNA scaffolds.

Purpose of the Study:

  • To engineer a novel, longer DNA scaffold for creating larger rectangle origami structures.
  • To expand the capabilities of the origami-based digital nucleic acid memory (dNAM) approach.
  • To enhance the efficiency and scalability of DNA data storage.

Main Methods:

  • Engineering of a novel, longer single-stranded DNA scaffold.
  • Self-assembly of the scaffold into a larger rectangle origami platform.
  • Confirmation of correct assembly and DNA data strand positioning using atomic force microscopy and DNA-PAINT super-resolution microscopy.

Main Results:

  • Successful engineering of a novel longer DNA scaffold.
  • Demonstrated self-assembly into the desired larger rectangle origami structure.
  • Verified correct positioning of DNA data strands on the origami platform.
  • Achieved a 67% increase in data points per origami structure.

Conclusions:

  • The novel DNA scaffold enables the production of larger DNA origami.
  • This advancement supports the expansion and scalability of origami-based dNAM.
  • The improved structure enhances data density for DNA data storage applications.