Dna Translocation

DNA translocation is the movement of a DNA molecule through a confined pathway, such as a nanopore, under the influence of an applied force. In nanopore systems, an electric field drives charged DNA through the pore while its passage temporarily alters the surrounding ionic current; translocation speed depends on molecular length, pore geometry, and solution conditions. Engineers use these changes to study molecular transport and develop single-molecule sensing technologies, including nanopore-based DNA analysis and sequencing. Understanding translocation also supports the design of microfluidic devices, biosensors, and nanoscale platforms that control, detect, or sort biomolecules with high sensitivity.

Dna Translocation - Related Videos

Research

JoVE Journal - Biology

Measuring Peptide Translocation into Large Unilamellar Vesicles

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Cited by 9 •

2012

This protocol details a method for the quantitative measure of peptide translocation into large unilamellar lipid vesicles. This method also provides information about the rate of membrane translocation and can be used to identify peptides that efficiently and spontaneously cross lipid bilayers.

Determination of Zeta Potential via Nanoparticle Translocation Velocities through a Tunable Nanopore: Using DNA-modified Particles as an Example

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Cited by 7 •

2016

Here we use a polyurethane tunable nanopore integrated into a resistive pulse sensing technique to characterize nanoparticles surface chemistry via the measurement of particle translocation velocities, which can be used to determine the zeta potential of individual nanoparticles.

Live-imaging of PKC Translocation in Sf9 Cells and in Aplysia Sensory Neurons

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Cited by 14 •

2011

In this video, we demonstrate visualization of PKC translocation in living cells using fluorescently tagged PKCs.

Dual DNA Rulers to Study the Mechanism of Ribosome Translocation with Single-Nucleotide Resolution

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Cited by 1 •

2019

Dual DNA ruler assay is developed to determine the mRNA position during ribosome translocation, which relies on the dissociation forces of the formed DNA-mRNA duplexes. With single-nucleotide resolution and capability of reaching both ends of mRNA, it can provide mechanistic insights for ribosome translocation and probe other nucleic acid displacements.

Detection of Toxin Translocation into the Host Cytosol by Surface Plasmon Resonance

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Cited by 14 •

2012

In this report, we describe how surface plasmon resonance is used to detect toxin entry into the host cytosol. This highly sensitive method can provide quantitative data on the amount of cytosolic toxin, and it can be applied to a range of toxins.

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