Literature DB >> 29045872

The Detection of Nanoscale Membrane Bending with Polarized Localization Microscopy.

Abir M Kabbani1, Christopher V Kelly2.   

Abstract

The curvature of biological membranes at the nanometer scale is critically important for vesicle trafficking, organelle morphology, and disease propagation. The initiation of membrane bending occurs at a length scale that is irresolvable by most superresolution optical microscopy methods. Here, we report the development of polarized localization microscopy (PLM), a pointillist optical imaging technique for the detection of nanoscale membrane curvature in correlation with single-molecule dynamics and molecular sorting. PLM combines polarized total internal reflection fluorescence microscopy and single-molecule localization microscopy to reveal membrane orientation with subdiffraction-limited resolution without reducing localization precision by point spread function manipulation. Membrane curvature detection with PLM requires fewer localization events to detect curvature than three-dimensional single-molecule localization microscopy (e.g., photoactivated localization microscopy or stochastic optical reconstruction microscopy), which enables curvature detection 10× faster via PLM. With rotationally confined lipophilic fluorophores and the polarized incident fluorescence excitation, membrane-bending events are revealed with superresolution. Engineered hemispherical membrane curvature with a radius ≥24 nm was detected with PLM, and individual fluorophore localization precision was 13 ± 5 nm. Further, deciphering molecular mobility as a function of membrane topology was enabled. The diffusion coefficient of individual DiI molecules was 25 ± 5× higher in planar supported lipid bilayers than within nanoscale membrane curvature. Through the theoretical foundation and experimental demonstration provided here, PLM is poised to become a powerful technique for revealing the underlying biophysical mechanisms of membrane bending at physiological length scales.
Copyright © 2017 Biophysical Society. Published by Elsevier Inc. All rights reserved.

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Year:  2017        PMID: 29045872      PMCID: PMC5647545          DOI: 10.1016/j.bpj.2017.07.034

Source DB:  PubMed          Journal:  Biophys J        ISSN: 0006-3495            Impact factor:   4.033


  55 in total

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Review 2.  How proteins produce cellular membrane curvature.

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Authors:  Harvey T McMahon; Jennifer L Gallop
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4.  Bending membranes on demand: fluid phospholipid bilayers on topographically deformable substrates.

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5.  Interferometric fluorescent super-resolution microscopy resolves 3D cellular ultrastructure.

Authors:  Gleb Shtengel; James A Galbraith; Catherine G Galbraith; Jennifer Lippincott-Schwartz; Jennifer M Gillette; Suliana Manley; Rachid Sougrat; Clare M Waterman; Pakorn Kanchanawong; Michael W Davidson; Richard D Fetter; Harald F Hess
Journal:  Proc Natl Acad Sci U S A       Date:  2009-02-06       Impact factor: 11.205

6.  Membrane bending by protein-protein crowding.

Authors:  Jeanne C Stachowiak; Eva M Schmid; Christopher J Ryan; Hyoung Sook Ann; Darryl Y Sasaki; Michael B Sherman; Phillip L Geissler; Daniel A Fletcher; Carl C Hayden
Journal:  Nat Cell Biol       Date:  2012-08-19       Impact factor: 28.824

Review 7.  Thermodynamics and mechanics of membrane curvature generation and sensing by proteins and lipids.

Authors:  Tobias Baumgart; Benjamin R Capraro; Chen Zhu; Sovan L Das
Journal:  Annu Rev Phys Chem       Date:  2011       Impact factor: 12.703

Review 8.  Real-time imaging of plasma membrane deformations reveals pre-fusion membrane curvature changes and a role for dynamin in the regulation of fusion pore expansion.

Authors:  Arun Anantharam; Daniel Axelrod; Ronald W Holz
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9.  Single-molecule orientation measurements with a quadrated pupil.

Authors:  Adam S Backer; Mikael P Backlund; Matthew D Lew; W E Moerner
Journal:  Opt Lett       Date:  2013-05-01       Impact factor: 3.776

10.  Cell-substrate contacts illuminated by total internal reflection fluorescence.

Authors:  D Axelrod
Journal:  J Cell Biol       Date:  1981-04       Impact factor: 10.539

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  6 in total

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2.  Structured clustering of the glycosphingolipid GM1 is required for membrane curvature induced by cholera toxin.

Authors:  Abir Maarouf Kabbani; Krishnan Raghunathan; Wayne I Lencer; Anne K Kenworthy; Christopher V Kelly
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Review 3.  Dimensions and Interactions of Large T-Cell Surface Proteins.

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4.  How Membrane Geometry Regulates Protein Sorting Independently of Mean Curvature.

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Review 5.  Cholera Toxin as a Probe for Membrane Biology.

Authors:  Anne K Kenworthy; Stefanie S Schmieder; Krishnan Raghunathan; Ajit Tiwari; Ting Wang; Christopher V Kelly; Wayne I Lencer
Journal:  Toxins (Basel)       Date:  2021-08-03       Impact factor: 4.546

6.  Revealing the Effects of Nanoscale Membrane Curvature on Lipid Mobility.

Authors:  Abir Maarouf Kabbani; Xinxin Woodward; Christopher V Kelly
Journal:  Membranes (Basel)       Date:  2017-10-18
  6 in total

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