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DNA Bacteriophages01:26

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Bacteriophages, or phages, are viruses that specifically infect bacteria, utilizing their genetic material to hijack host cellular machinery for replication. DNA bacteriophages employ single-stranded DNA (ssDNA) or double-stranded DNA (dsDNA) genomes. These phages exhibit diverse replication strategies and host interactions, influencing their ecological roles and applications in biotechnology and medicine.ssDNA BacteriophagesssDNA phages, with their small genomes, utilize unique strategies to...
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Bacteriophages, also known as phages, are specialized viruses that infect bacteria. A key characteristic of phages is their distinctive “head-tail” morphology. A phage begins the infection process (i.e., lytic cycle) by attaching to the outside of a bacterial cell. Attachment is accomplished via proteins in the phage tail that bind to specific receptor proteins on the outer surface of the bacterium. The tail injects the phage’s DNA genome into the bacterial cytoplasm. In the lytic replication...

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Updated: Jun 27, 2026

DNA Nanotubes as a Versatile Tool to Study Semiflexible Polymers
08:00

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Published on: October 25, 2017

Viscoelasticity of entangled lambda-phage DNA solutions.

Xiaoying Zhu1, Binu Kundukad, Johan R C van der Maarel

  • 1Biophysics and Complex Fluids Group, Department of Physics, National University of Singapore, 2 Science Drive 3, Singapore 117542, Singapore.

The Journal of Chemical Physics
|December 3, 2008
PubMed
Summary

Particle tracking microrheology reveals how entangled lambda-phage DNA (deoxyribonucleic acid) transitions. DNA entanglement significantly alters viscoelastic moduli, with dynamics aligning with reptation theory for polyelectrolytes.

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Area of Science:

  • Polymer Physics
  • Biophysics
  • Rheology

Background:

  • Understanding the viscoelastic properties of entangled DNA is crucial for molecular dynamics.
  • Lambda-phage DNA serves as a model system for studying polymer entanglement effects.

Purpose of the Study:

  • To investigate the viscoelastic moduli of lambda-phage DNA across the entanglement transition.
  • To determine the relationship between DNA concentration, entanglement, and rheological properties.

Main Methods:

  • Particle tracking microrheology was employed to measure viscoelastic moduli.
  • Frequency sweeps were performed to analyze the behavior of the elastic storage and viscous loss moduli.

Main Results:

  • Viscous loss modulus initially increases, plateaus, then increases again with frequency.
  • Elastic storage modulus increases monotonically and plateaus at high frequencies.
  • Entangled DNA exhibits a higher elastic modulus than viscous modulus in an intermediate frequency range.
  • Number of entanglements and relaxation time were determined and correlated with concentration.
  • Results align with scaling laws for reptation dynamics of entangled polyelectrolytes.

Conclusions:

  • The study quantifies viscoelastic changes in DNA due to entanglement.
  • Microrheology provides insights into DNA chain dynamics and entanglement.
  • Findings support reptation theory for entangled DNA in salt solutions.