Dna I-motif

DNA i-motif is a noncanonical four-stranded DNA structure that forms in cytosine-rich sequences, providing a distinct molecular architecture relevant to bioengineering and nucleic acid research. Under mildly acidic conditions, cytosine bases become protonated and pair with neutral cytosines through hemiprotonated C·C+ base pairs, which intercalate to fold the strand into a compact structure. Its reversible, pH-dependent formation enables i-motifs to function as molecular switches in biosensors, DNA nanotechnology, and responsive biomaterials. Studying these structures also helps clarify how DNA sequence, chemical environment, and higher-order folding influence molecular recognition and the design of programmable nucleic acid systems.

Dna I-motif - Related Videos

Research

JoVE Journal - Chemistry

Stable DNA Motifs, 1D and 2D Nanostructures Constructed from Small Circular DNA Molecules

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Cited by 6 •

2019

This article presents a detailed protocol for T4 ligation and denaturing PAGE purification of small circular DNA molecules, annealing and native PAGE analysis of circular tiles, assembling and AFM imaging of 1D and 2D DNA nanostructures, as well as agarose gel electrophoresis and centrifugation purification of finite DNA nanostructures.

Peptide-based Identification of Functional Motifs and their Binding Partners

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Cited by 2 •

2013

Techniques to dissect the mechanisms underlying the secretion of HIV-1 Nef in exosomes are described. Specific short peptides derived from Nef and protein transfection were exploited to determine the structure, function, and binding partners of Nef’s Secretion Modification Region. These procedures have general relevance in many mechanistic studies.

Research

JoVE Journal - Biology
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Using SCOPE to Identify Potential Regulatory Motifs in Coregulated Genes

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Cited by 3 •

2011

A straight-forward and robust method to identify potential regulatory motifs in co-regulated genes is presented. SCOPE does not require any user parameters and returns motifs that represent excellent candidates for regulatory signals. The identification of such regulatory signals helps to understand the underlying biology.

High-Speed Atomic Force Microscopy Imaging of DNA Three-Point-Star Motif Self Assembly Using Photothermal Off-Resonance Tapping

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2024

Here, we show the imaging protocol for observing biomolecular interactions with photothermal off-resonance tapping (PORT), where we optimized imaging parameters, identified system limits, and investigated potential improvements in imaging three-point-star DNA motif assembly.

Research

JoVE Journal - Genetics
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Assessment of DNA Contamination in RNA Samples Based on Ribosomal DNA

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Cited by 26 •

2018

Here, we present a protocol for tracing genomic DNA (gDNA) contamination in RNA samples. The presented method utilizes primers specific for the internal transcribed spacer region (ITS) of ribosomal DNA (rDNA) genes. The method is suited for reliable and sensitive detection of DNA contamination in most eukaryotes and prokaryotes.

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