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Optical Tweezers

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Cover of 'Optical Tweezers'

Table of Contents

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    Book Overview
  2. Altmetric Badge
    Chapter 1 Introduction to Optical Tweezers
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    Chapter 2 Exact Theory of Optical Tweezers and Its Application to Absolute Calibration
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    Chapter 3 Beyond the Hookean Spring Model: Direct Measurement of Optical Forces Through Light Momentum Changes
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    Chapter 4 A Surface-Coupled Optical Trap with 1-bp Precision via Active Stabilization
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    Chapter 5 Implementation and Tuning of an Optical Tweezers Force-Clamp Feedback System
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    Chapter 6 Custom-Made Microspheres for Optical Tweezers
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    Chapter 7 Optical Torque Wrench Design and Calibration
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    Chapter 8 High-Resolution “Fleezers”: Dual-Trap Optical Tweezers Combined with Single-Molecule Fluorescence Detection
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    Chapter 9 Versatile Quadruple-Trap Optical Tweezers for Dual DNA Experiments
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    Chapter 10 Probing DNA–DNA Interactions with a Combination of Quadruple-Trap Optical Tweezers and Microfluidics
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    Chapter 11 Probing Single Helicase Dynamics on Long Nucleic Acids Through Fluorescence-Force Measurement
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    Chapter 12 Mechanically Watching the ClpXP Proteolytic Machinery
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    Chapter 13 Deciphering the Molecular Mechanism of the Bacteriophage φ 29 DNA Packaging Motor
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    Chapter 14 Single-Molecule Protein Folding Experiments Using High-Precision Optical Tweezers
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    Chapter 15 Observing Single RNA Polymerase Molecules Down to Base-Pair Resolution
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    Chapter 16 Optical Tweezers-Based Measurements of Forces and Dynamics at Microtubule Ends
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    Chapter 17 Simultaneous Manipulation and Super-Resolution Fluorescence Imaging of Individual Kinetochores Coupled to Microtubule Tips
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    Chapter 18 Measurement of Force-Dependent Release Rates of Cytoskeletal Motors
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    Chapter 19 Measuring the Kinetic and Mechanical Properties of Non-processive Myosins Using Optical Tweezers
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    Chapter 20 Quantifying Force and Viscoelasticity Inside Living Cells Using an Active–Passive Calibrated Optical Trap
  22. Altmetric Badge
    Chapter 21 Measuring Molecular Forces Using Calibrated Optical Tweezers in Living Cells
Attention for Chapter 15: Observing Single RNA Polymerase Molecules Down to Base-Pair Resolution
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Chapter title
Observing Single RNA Polymerase Molecules Down to Base-Pair Resolution
Chapter number 15
Book title
Optical Tweezers
Published in
Methods in molecular biology, January 2017
DOI 10.1007/978-1-4939-6421-5_15
Pubmed ID
Book ISBNs
978-1-4939-6419-2, 978-1-4939-6421-5
Authors

Anirban Chakraborty, Cong A. Meng, Steven M. Block, Chakraborty, Anirban, Meng, Cong A., Block, Steven M.

Abstract

During transcriptional elongation, RNA polymerases (RNAP) employ a stepping mechanism to translocate along the DNA template while synthesizing RNA. Optical trapping assays permit the progress of single molecules of RNA polymerase to be monitored in real time, at resolutions down to the level of individual base pairs. Additionally, optical trapping assays permit the application of exquisitely controlled, external forces on RNAP. Responses to such forces can reveal details of the load-dependent kinetics of transcriptional elongation and pausing. Traditionally, the bacterial form of RNAP from E. coli has served as a model for the study of transcriptional elongation using optical traps. However, it is now feasible to perform optical trapping experiments using the eukaryotic polymerase, RNAPII, as well. In this report, we describe the methods to perform optical trapping transcriptional elongation assays with both prokaryotic RNAP and eukaryotic RNAPII. We provide detailed instructions on how to reconstitute transcription elongation complexes, derivatize beads used in the assays, and perform optical trapping measurements.

Mendeley readers

Mendeley readers

The data shown below were compiled from readership statistics for 10 Mendeley readers of this research output. Click here to see the associated Mendeley record.

Geographical breakdown

Country Count As %
Unknown 10 100%

Demographic breakdown

Readers by professional status Count As %
Student > Ph. D. Student 3 30%
Student > Doctoral Student 2 20%
Student > Bachelor 1 10%
Professor 1 10%
Student > Postgraduate 1 10%
Other 0 0%
Unknown 2 20%
Readers by discipline Count As %
Biochemistry, Genetics and Molecular Biology 5 50%
Physics and Astronomy 1 10%
Chemistry 1 10%
Unknown 3 30%