4.6 Review

High-Resolution Single-Molecule Magnetic Tweezers

Journal

ANNUAL REVIEW OF BIOCHEMISTRY
Volume 91, Issue -, Pages 33-59

Publisher

ANNUAL REVIEWS
DOI: 10.1146/annurev-biochem-032620-104637

Keywords

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Funding

  1. National Research Foundation of Korea - Korean government (the Ministry of Science and Information and Communications Technology) [2021R1A3B1071354]
  2. National Research Foundation of Korea [2021R1A3B1071354] Funding Source: Korea Institute of Science & Technology Information (KISTI), National Science & Technology Information Service (NTIS)

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Single-molecule magnetic tweezers provide magnetic force and torque to single target molecules, allowing the study of dynamic changes in biomolecular structures and interactions. Using smaller magnetic beads and shorter tethers improves dynamic response times and measurement precision. High-resolution single-molecule magnetic tweezers can track nanometer changes in target molecules on a millisecond time scale.
Single-molecule magnetic tweezers deliver magnetic force and torque to single target molecules, permitting the study of dynamic changes in biomolecular structures and their interactions. Because the magnetic tweezer setups can generate magnetic fields that vary slowly over tens of millimeters-far larger than the nanometer scale of the single molecule events being observed-this technique can maintain essentially constant force levels during biochemical experiments while generating a biologically meaningful force on the order of 1-100 pN. When using bead-tether constructs to pull on single molecules, smaller magnetic beads and shorter submicrometer tethers improve dynamic response times and measurement precision. In addition, employing highspeed cameras, stronger light sources, and a graphics programming unit permits true high-resolution single-molecule magnetic tweezers that can track nanometer changes in target molecules on a millisecond or even submillisecond time scale. The unique force-clamping capacity of the magnetic tweezer technique provides a way to conduct measurements under near-equilibrium conditions and directly map the energy landscapes underlying various molecular phenomena. High-resolution single-molecule magnetic tweezers can thus be used to monitor crucial conformational changes in single-protein molecules, including those involved in mechanotransduction and protein folding.

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