Jove
Visualize
Contact Us
JoVE
x logofacebook logolinkedin logoyoutube logo
ABOUT JoVE
OverviewLeadershipBlogJoVE Help Center
AUTHORS
Publishing ProcessEditorial BoardScope & PoliciesPeer ReviewFAQSubmit
LIBRARIANS
TestimonialsSubscriptionsAccessResourcesLibrary Advisory BoardFAQ
RESEARCH
JoVE JournalMethods CollectionsJoVE Encyclopedia of ExperimentsArchive
EDUCATION
JoVE CoreJoVE BusinessJoVE Science EducationJoVE Lab ManualFaculty Resource CenterFaculty Site
Terms & Conditions of Use
Privacy Policy
Policies

Related Concept Videos

The DNA Helix01:16

The DNA Helix

Overview
Replication in Eukaryotes02:31

Replication in Eukaryotes

Overview
Telomeres and Telomerase02:41

Telomeres and Telomerase

In eukaryotic DNA replication, a single-stranded DNA fragment remains at the end of a chromosome after the removal of the final primer. This section of DNA cannot be replicated in the same manner as the rest of the strand because there is no 3’ end to which the newly synthesized DNA can attach. This non-replicated fragment results in gradual loss of the chromosomal DNA during each cell duplication. Additionally, it can induce a DNA damage response by enzymes that recognize single-stranded DNA.
Single-Strand DNA Binding Proteins01:03

Single-Strand DNA Binding Proteins

For successful DNA replication, the unwinding of double-stranded DNA must be accompanied by stabilization and protection of the separated single strands of the DNA. This crucial task is performed by single-strand DNA-binding (SSB) proteins. They bind to the DNA in a sequence-independent manner, which means that the nitrogenous bases of the DNA need not be present in a specific order for binding of SSB proteins to it. The binding of SSB proteins straightens single-stranded DNA (ssDNA) and makes...
Replication in Eukaryotes01:29

Replication in Eukaryotes

In eukaryotic cells, DNA replication is highly conserved and tightly regulated. Multiple linear chromosomes must be duplicated with high fidelity before cell division, so there are many proteins that fulfill specialized roles in the replication process. Replication occurs in three phases: initiation, elongation, and termination, and ends with two complete sets of chromosomes in the nucleus.
Many Proteins Orchestrate Replication at the Origin
Eukaryotic replication follows many of the same...
Telomeres and Telomerase02:41

Telomeres and Telomerase

In eukaryotic DNA replication, a single-stranded DNA fragment remains at the end of a chromosome after the removal of the final primer. This section of DNA cannot be replicated in the same manner as the rest of the strand because there is no 3’ end to which the newly synthesized DNA can attach. This non-replicated fragment results in gradual loss of the chromosomal DNA during each cell duplication. Additionally, it can induce a DNA damage response by enzymes that recognize single-stranded DNA.

You might also read

Related Articles

Articles linked to this work by shared authors, journal, and citation graph.

Sort by
Same author

Aberrant expression of microRNAs and the miR-1/MET pathway in canine hepatocellular carcinoma.

Veterinary and comparative oncology·2018
Same author

Heavy Metal Uptake by Swollen Chitosan Beads.

Bioscience, biotechnology, and biochemistry·2016
Same author

A phase I/II trial of irinotecan plus amrubicin supported with G-CSF for extended small-cell lung cancer.

Japanese journal of clinical oncology·2014
Same author

Nafamostat mesilate, a noncalcium compound, as an anticoagulant, induces calcium-dependent haemolysis when infused with packed erythrocytes.

Transfusion medicine (Oxford, England)·2012
Same author

Development-dependent expression of cathepsins d and e in various rat tissues, with special reference to the high expression of cathepsin e in fetal liver.

Zoological science·2008
Same author

Flow-injection EPR investigation on OH radical scavenging activity of Gd(III) containing MRI contrast media.

Journal of medicine·2007

Related Experiment Video

Updated: Jul 27, 2026

Examination of the Telomere G-overhang Structure in Trypanosoma brucei
15:25

Examination of the Telomere G-overhang Structure in Trypanosoma brucei

Published on: January 26, 2011

Effect of complementary C-strand on telomere G-quartet structure.

K Kanaori1, A Moriyama, T Shoji

  • 1Department of Applied Biology, Kyoto Institute of Technology, Matsugasaki, Sakyo-ku, Kyoto 606-8585, Japan.

Nucleic Acids Research. Supplement (2001)
|July 3, 2003
PubMed
Summary

The study explores G-quartet structures and their stability when interacting with a complementary C-strand. Ion concentration, specifically sodium (Na+) or potassium (K+), influences the balance between duplex and G-quartet formation.

More Related Videos

Optimization of Performance Parameters of the TAGGG Telomere Length Assay
08:23

Optimization of Performance Parameters of the TAGGG Telomere Length Assay

Published on: April 21, 2023

Analyzing Telomeric Protein-DNA Interactions Using Single-Molecule Magnetic Tweezers
11:21

Analyzing Telomeric Protein-DNA Interactions Using Single-Molecule Magnetic Tweezers

Published on: August 30, 2024

Related Experiment Videos

Last Updated: Jul 27, 2026

Examination of the Telomere G-overhang Structure in Trypanosoma brucei
15:25

Examination of the Telomere G-overhang Structure in Trypanosoma brucei

Published on: January 26, 2011

Optimization of Performance Parameters of the TAGGG Telomere Length Assay
08:23

Optimization of Performance Parameters of the TAGGG Telomere Length Assay

Published on: April 21, 2023

Analyzing Telomeric Protein-DNA Interactions Using Single-Molecule Magnetic Tweezers
11:21

Analyzing Telomeric Protein-DNA Interactions Using Single-Molecule Magnetic Tweezers

Published on: August 30, 2024

Area of Science:

  • Biochemistry
  • Molecular Biology
  • Structural Biology

Background:

  • G-quartets are four-guanine-rich structures crucial in various biological processes.
  • Understanding G-quartet stability is key to deciphering their roles in gene regulation and disease.

Purpose of the Study:

  • To investigate the structural dynamics and stability of G-quartets in the presence of their complementary C-strand.
  • To determine how different cation types (Na+ and K+) affect the equilibrium between G-quartet and duplex forms.

Main Methods:

  • Spectroscopic techniques to analyze G-quartet formation.
  • Biophysical assays to assess structural stability.
  • Computational modeling to understand ion-mediated interactions.

Main Results:

  • The complementary C-strand influences G-quartet formation and stability.
  • Sodium (Na+) and potassium (K+) ions differentially modulate the equilibrium between duplex and G-quartet structures.
  • Specific ion concentrations favor either the duplex or G-quartet conformation.

Conclusions:

  • Cation-dependent structural transitions are critical for G-quartet function.
  • The interplay between G-quartets, C-strands, and ions offers insights into nucleic acid structural polymorphism.
  • This research provides a foundation for understanding G-quartet roles in biological systems.