Molecular Motor Biophysics

Molecular motor biophysics examines how nanoscale protein machines convert chemical energy into directed mechanical motion within living cells. Motors such as kinesin, dynein, and myosin use ATP hydrolysis to drive conformational changes that produce force and movement along cytoskeletal tracks or within contractile assemblies. Researchers combine single-molecule imaging, optical trapping, force measurements, and mathematical modeling to characterize motor stepping, transport, load response, and energy efficiency. These principles clarify how cells organize cargo, divide, move, and maintain structure, while informing research on neurodegeneration, muscle disorders, biomolecular engineering, and the design of synthetic molecular machines.

Molecular Motor Biophysics - Related Videos

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JoVE Journal - Biology

Biophysical Characterization of Flagellar Motor Functions

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Cited by 8 •

2017

Recent findings suggest that bacterial flagellar motors sense a variety of environmental signals and remodel in response. The bead-assays discussed here are expected to help explain the role of remodeling in cellular adaptation to environmental stressors.

Research

JoVE Journal - Chemistry
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Light-driven Molecular Motors on Surfaces for Single Molecular Imaging

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Cited by 1 •

2019

The manuscript describes how to synthesize and graft a molecular motor on surfaces for single molecular imaging.

Research

JoVE Journal - Biology
Free Sample

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.

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.

Characterizing the Composition of Molecular Motors on Moving Axonal Cargo Using "Cargo Mapping" Analysis

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Cited by 8 •

2014

Intracellular transport of cargoes, such as vesicles or organelles, is carried out by molecular motor proteins that track on polarized microtubules. This protocol describes the correlation of the directionality of transport of individual cargo particles moving inside neurons, to the relative amount and type of associated motor proteins.

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