Magnetic Dipolar Interactions

Magnetic dipolar interactions are forces between magnetic dipoles, including electron spins, unpaired electrons, or magnetized particles. In chemistry, they help explain how molecular and nanoscale magnetic components influence one another. A dipole produces a magnetic field that exerts a torque and, depending on orientation and separation, a force on a neighboring dipole; the interaction generally weakens rapidly with distance and can favor parallel or antiparallel arrangements. Thermal motion and surrounding matter determine whether these interactions produce stable alignment, aggregation, or ordered structures. Studying magnetic dipolar interactions supports the design of molecular magnets, magnetic nanoparticles, responsive materials, and spectroscopic methods that probe spin coupling and molecular organization.

Magnetic Dipolar Interactions - Related Videos

Research

JoVE EoE - Biomolecular Interaction Detection Techniques

Nuclear Magnetic Resonance to Study Atomic Level Protein-Protein Interactions

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2025

This video describes the nuclear magnetic resonance spectroscopy technique to study protein-protein interactions between 15N-labeled wild-type and mutant envoplakin proteins and the unlabeled vimentin protein. The successful interaction between wild-type envoplakin and vimentin leads to extensive line broadening and peak disappearance in the NMR spectra, whereas the absence of an interaction between the mutated envoplakin and vimentin results in well-resolved peaks in the NMR spectra.

Exploring Protein-Glycan Interactions: Advances in Nuclear Magnetic Resonance

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2025

This NMR-based protocol investigates weak protein-glycan interactions using cyanovirin-N and D-mannose. Combining ligand- and protein-detected methods, it maps binding sites, detects allosteric effects, and identifies encounter complexes. The approach outlines sample preparation and data analysis, offering structural and dynamic insights valuable for glycan-specific diagnostics and recognition mechanisms.

A Liquid Phase Affinity Capture Assay Using Magnetic Beads to Study Protein-Protein Interaction: The Poliovirus-Nanobody Example

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Cited by 3 •

2012

In this article, a simple, quantitative, liquid phase affinity capture assay is presented. It is a reliable technique based on the interaction between magnetic beads and tagged proteins (e.g. nanobodies) on one hand and the affinity between the tagged protein and a second, labeled protein (e.g. poliovirus) on the other.

Education

JoVE Science Education - Physics

Magnetic Fields

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2023

Source: Yong P. Chen, PhD, Department of Physics & Astronomy, College of Science, Purdue University, West Lafayette, IN Magnetic fields can be generated by moving charges, such as an electrical current. The magnetic field generated by a current can be calculated from the Maxwell equation. In addition, magnetic objects such as bar magnets can also generate magnetic fields due to microscopic dynamics of charges inside the material. Magnetic fields will exert magnetic force on other moving...

Lipid Vesicle-mediated Affinity Chromatography using Magnetic Activated Cell Sorting (LIMACS): a Novel Method to Analyze Protein-lipid Interaction

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Cited by 14 •

2011

To test the interaction of a protein with its target lipid we used MACS and Annexin V-conjugated magnetic beads and lipid vesicles synthesized from the target lipid and Annexin V-binding phosphatidylserine. Proteins bound to the target lipid are co-purified and analyzed after elution from the beads.

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