Javascript must be enabled to continue!
Knotting probability of DNA molecules confined in restricted volumes: DNA knotting in phage capsids
View through CrossRef
When linear double-stranded DNA is packed inside bacteriophage capsids, it becomes highly compacted. However, the phage is believed to be fully effective only if the DNA is not entangled. Nevertheless, when DNA is extracted from a tailless mutant of the P4 phage, DNA is found to be cyclic and knotted (probability of 0.95). The knot spectrum is very complex, and most of the knots have a large number of crossings. We quantified the frequency and crossing numbers of these knots and concluded that, for the P4 tailless mutant, at least half the knotted molecules are formed while the DNA is still inside the viral capsid rather than during extraction. To analyze the origin of the knots formed inside the capsid, we compared our experimental results to Monte Carlo simulations of random knotting of equilateral polygons in confined volumes. These simulations showed that confinement of closed chains to tightly restricted volumes results in high knotting probabilities and the formation of knots with large crossing numbers. We conclude that the formation of the knots inside the viral capsid is driven mainly by the effects of confinement.
National Academy of Sciences
Title: Knotting probability of DNA molecules confined in restricted volumes: DNA knotting in phage capsids
Description:
When linear double-stranded DNA is packed inside bacteriophage capsids, it becomes highly compacted.
However, the phage is believed to be fully effective only if the DNA is not entangled.
Nevertheless, when DNA is extracted from a tailless mutant of the P4 phage, DNA is found to be cyclic and knotted (probability of 0.
95).
The knot spectrum is very complex, and most of the knots have a large number of crossings.
We quantified the frequency and crossing numbers of these knots and concluded that, for the P4 tailless mutant, at least half the knotted molecules are formed while the DNA is still inside the viral capsid rather than during extraction.
To analyze the origin of the knots formed inside the capsid, we compared our experimental results to Monte Carlo simulations of random knotting of equilateral polygons in confined volumes.
These simulations showed that confinement of closed chains to tightly restricted volumes results in high knotting probabilities and the formation of knots with large crossing numbers.
We conclude that the formation of the knots inside the viral capsid is driven mainly by the effects of confinement.
Related Results
Knotting and weak knotting in confined, open random walks using virtual knots
Knotting and weak knotting in confined, open random walks using virtual knots
Abstract
We probe the character of knotting in open, confined polymers, assigning knot types to open curves by identifying their projections as virtual knots. In ...
Thoughts on Cord Knotting as an Early Record-Keeping System in Ancient China
Thoughts on Cord Knotting as an Early Record-Keeping System in Ancient China
Is it possible to demonstrate the existence of cord knotting in ancient China, and if so, how might it have influenced the evolution of the Chinese writing system?In this paper I a...
What makes a temperate phage an effective bacterial weapon?
What makes a temperate phage an effective bacterial weapon?
Abstract
Temperate bacteriophages (phages) are common features of bacterial genomes and can act as self-amplifying biological weapons, killing su...
Successful Intratracheal Treatment of Phage and Antibiotic Combination Therapy of a Multi-Drug Resistant Pseudomonas aeruginosa Murine Model
Successful Intratracheal Treatment of Phage and Antibiotic Combination Therapy of a Multi-Drug Resistant Pseudomonas aeruginosa Murine Model
Background: Pseudomonas aeruginosa (PsA) is a common etiology of bacteria-mediated lower respiratory tract infections, including pneumonia, hospital acquired pneumonia (HAP), and v...
Horizontal gene transfer and CRISPR targeting drive phage-bacterial host interactions and coevolution in pink berry marine microbial aggregates
Horizontal gene transfer and CRISPR targeting drive phage-bacterial host interactions and coevolution in pink berry marine microbial aggregates
ABSTRACT
Bacteriophages (phages), viruses that infect bacteria, are the most abundant components of microbial communities and play roles in commu...
The Meselson–Stahl Experiment
The Meselson–Stahl Experiment
AbstractThe ‘Meselson–Stahl experiment’, which established the semiconservative mode ofdeoxyribonucleic acid (DNA)replication, is situated in its scientific, historical and institu...
Thermoresponsive C22 phage stiffness modulates the phage infectivity
Thermoresponsive C22 phage stiffness modulates the phage infectivity
AbstractBacteriophages offer a sustainable alternative for controlling crop disease. However, the lack of knowledge on phage infection mechanisms makes phage-based biological contr...
Phage in Display
Phage in Display
Abstract
Phage display is a process by which a peptide or a protein is expressed as an exterior fusion to a surface protein of a phage particle. The peptide or prote...

