Biomolecular Interactions

Biomolecular interactions are the chemical forces and associations that allow proteins, nucleic acids, lipids, carbohydrates, and small molecules to recognize and influence one another. They arise through complementary shape and chemical properties, including hydrogen bonding, electrostatic attraction, hydrophobic effects, van der Waals forces, and, in some cases, covalent bond formation. The strength and specificity of these interactions depend on factors such as molecular structure, solvent, pH, and temperature. Studying them helps explain enzyme catalysis, receptor signaling, gene regulation, and molecular assembly, while supporting applications in drug discovery, biomaterial design, diagnostics, and the development of targeted chemical probes.

Biomolecular Interactions - Related Videos

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JoVE EoE - Biomolecular Interaction Detection Techniques

Surface Plasmon Resonance to Study Biomolecular Interactions Using a Sensor Chip

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2025

This video describes the surface plasmon resonance, or SPR, technique for studying the interaction between two molecules using a sensor chip. The change in resonance angle and the intensity of the reflected light are detected as a function of the association and dissociation of two molecules, and this provides information about the interactions between the two molecules.

The Use of a β-lactamase-based Conductimetric Biosensor Assay to Detect Biomolecular Interactions

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Cited by 1 •

2018

In this work, we report a new method to study protein-protein interactions using a conductimetric biosensor based on the hybrid β-lactamase technology. This method relies on release of protons upon hydrolysis of β-lactams.

Measuring Biomolecular DSC Profiles with Thermolabile Ligands to Rapidly Characterize Folding and Binding Interactions

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Cited by 1 •

2017

We present a protocol for rapid characterization of biomolecular folding and binding interactions with thermolabile ligands using differential scanning calorimetry.

Formation of Ordered Biomolecular Structures by the Self-assembly of Short Peptides

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Cited by 6 •

2013

This paper describes the formation of highly ordered peptide-based structures by the spontaneous process of self-assembly. The method utilizes commercially available peptides and common lab equipment. This technique can be applied to a large variety of peptides and may lead to the discovery of new peptide-based assemblies.

Research

JoVE Journal - Engineering
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3D Printing of Biomolecular Models for Research and Pedagogy

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Cited by 29 •

2017

Physical models of biomolecules can facilitate an understanding of their structure-function for the researcher, aid in communication between researchers, and serve as an educational tool in pedagogical endeavors. Here, we provide detailed guidance for the 3D printing of accurate models of biomolecules using fused filament fabrication desktop 3D printers.

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