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Breaking the Diffraction Barrier: Super-Resolution Imaging of Cells Edgar Ferrer-Lorenzo, Nicole Gagnon, Anna Torre 1
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Breaking the Diffraction Barrier: Super-Resolution Imaging of Cells

Feb 23, 2016

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Breaking the Diffraction Barrier: Super-Resolution Imaging of Cells . Edgar Ferrer -Lorenzo, Nicole Gagnon, Anna Torre. 1. Optical microscopes have limitations. Diffraction limited Resolution depends on the wavelength of light and diameter of lens of optical microscope Specimen not alive - PowerPoint PPT Presentation
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Page 1: Breaking the Diffraction Barrier: Super-Resolution Imaging of Cells

Breaking the Diffraction Barrier:Super-Resolution Imaging of Cells

Edgar Ferrer-Lorenzo, Nicole Gagnon, Anna Torre

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Page 2: Breaking the Diffraction Barrier: Super-Resolution Imaging of Cells

Optical microscopes have limitations

• Diffraction limited• Resolution depends on

the wavelength of light and diameter of lens of optical microscope

• Specimen not alive

The solution: STORM

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Page 3: Breaking the Diffraction Barrier: Super-Resolution Imaging of Cells

STORM fluorescence microscopy can overcome the diffraction limit

A StORM image is constructed from the localization of individual fluorescent

molecules that are switched on and off using light of different colors

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Page 4: Breaking the Diffraction Barrier: Super-Resolution Imaging of Cells

STORM’s method improves the resolution of fluorescence microscopy

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Page 5: Breaking the Diffraction Barrier: Super-Resolution Imaging of Cells

STORM provides sub-diffraction-limit image resolution

Rust et al., Nature Methods 3: 793-796 (2006). Betzig et al., Science 313: 1642-1645 (2006). 5

Page 6: Breaking the Diffraction Barrier: Super-Resolution Imaging of Cells

Creating an image with STORM

6Huang et al., Cell 143: 1047-1058 (2010).

Page 7: Breaking the Diffraction Barrier: Super-Resolution Imaging of Cells

Applications of STORM• Cell biology• Microbiology• Neurobiology

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Page 8: Breaking the Diffraction Barrier: Super-Resolution Imaging of Cells

STORM can resolve DNA structure

Fluorophores bound to DNA fragment

RecA coated circular plasmid DNA

Rust et al., Nature Methods 3: 793-796 (2006). 8

Page 9: Breaking the Diffraction Barrier: Super-Resolution Imaging of Cells

High resolution images of microtubules

Bates et al., Science 317, 1749-1753 (2007). 9

Page 10: Breaking the Diffraction Barrier: Super-Resolution Imaging of Cells

STORM can resolve 3D structure

Bates et al., Science 317, 1749-1753 (2007). 10

Page 11: Breaking the Diffraction Barrier: Super-Resolution Imaging of Cells

High resolution imaging of the action cytoskeletal network in neurons

Xu et al., Science 339: 452-456 (2013). 11

Page 12: Breaking the Diffraction Barrier: Super-Resolution Imaging of Cells

STORM has advanced biology• Unambiguous identification of specific

proteins• Protein-protein interactions• Structure of small-type protein complexes• Live cell dynamics• Single molecule tracking• Cluster analysis and molecular counting

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Page 13: Breaking the Diffraction Barrier: Super-Resolution Imaging of Cells

Conclusions1. STORM has found a clever way to get

around the diffraction limit of resolution2. Imaging resolution down to 20 nm3. High-resolution live-cell imaging, thus

enabling discovery of internal causes or origins of processes

4. All with visible light!5. Imaging speed can be improved

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