Biophysical Analysis

Biophysical analysis is the quantitative study of the physical properties, forces, and behaviors that govern biological systems, providing a foundation for understanding how they function and respond to their environments. In bioengineering, it combines measurements of mechanical, electrical, optical, or thermal properties with mathematical models to relate molecular interactions and cellular structure to observable biological behavior. These analyses help characterize biomaterials, cells, tissues, and engineered constructs, supporting applications such as biosensor development, tissue engineering, drug delivery, and disease modeling. By linking physical principles with biological function, biophysical analysis guides the design and evaluation of safer, more effective biomedical technologies.

Biophysical Analysis - Related Videos

Research

JoVE Journal - Bioengineering

Concentric Gel System to Study the Biophysical Role of Matrix Microenvironment on 3D Cell Migration

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Cited by 7 •

2015

The mechanical properties and microstructure of the extracellular matrix strongly affect 3D migration of cells. An in vitro method to study the spatiotemporal cell migration behavior in biophysically variable environments, at both population and individual cell levels, is described.

Research

JoVE Journal - Biology
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Isolation and Biophysical Study of Fruit Cuticles

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Cited by 16 •

2012

Aerial plant organs are protected by the cuticle, a supramolecular biopolyester-wax assembly. We present protocols to monitor selective removal of epi- and intracuticular waxes from tomato fruit cuticles on molecular and micro scales by solid-state NMR and atomic force microscopy, respectively, and to assess the cross-linking capacity of engineered cuticular biopolyesters.

Reconstitution of Septin Assembly at Membranes to Study Biophysical Properties and Functions

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Cited by 2 •

2022

Cell-free reconstitution has been a key tool to understand the cytoskeleton assembly, and work in the last decade has established approaches to study septin dynamics in minimal systems. Presented here are three complementary methods to observe septin assembly in different membrane contexts: planar bilayers, spherical supports, and rod supports.

Recombinant Protein Expression, Crystallization, and Biophysical Studies of a Bacillus-conserved Nucleotide Pyrophosphorylase, BcMazG

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2017

Bacillus anthracis is the obligate pathogen of fatal inhalational anthrax, so studies of its genes and proteins are strictly regulated. An alternative approach is to study orthologous genes. We describe biophysicochemical studies of a B. anthracis ortholog in B. cereus, bc1531, requiring minimal experimental equipment and lacking serious safety concerns.

Research

JoVE Journal - Biochemistry
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Stabilizing Protein and Protein—RNA Condensates in Low-Melting Agarose Hydrogels for Quantitative Biophysical Measurements

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2026

Here, we present a robust method to physically immobilize liquid–liquid phase-separated condensates within a porous low-melting agarose hydrogel matrix without disrupting their internal liquid dynamics. The approach minimizes droplet sedimentation, coalescence, and surface-wetting artifacts, enabling reproducible imaging and quantitative biophysical analysis over periods of hours.

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