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Epifluoresce nce Confoca l

Epifluorescence

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Confocal. Epifluorescence. Zoom 1. Zoom 2. Zoom 4. x - y. x - z. 3D Deconvolution. Sassoè-Pognetto et al., J Comp Neurol 2000. Point Spread Function. Disco di Airy. Sassoè-Pognetto et al., J Comp Neurol 2000. FITC-TRITC emission. VGAT / Calb. WT. GABA A R a 1 KO. - PowerPoint PPT Presentation

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Page 1: Epifluorescence

Epifluorescence

Confocal

Page 2: Epifluorescence
Page 3: Epifluorescence

Zoom 1Zoom 2Zoom 4

Page 4: Epifluorescence
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Point Spread Function

                           

   

x - y x - z

Disco di Airy

3D Deconvolution

Sassoè-Pognetto et al., J Comp Neurol 2000

Page 6: Epifluorescence

Sassoè-Pognetto et al., J Comp Neurol 2000

Page 7: Epifluorescence
Page 8: Epifluorescence

FITC-TRITC emission

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WT GABAAR1 KOVGAT/Calb

Wulff et al., Nat Neurosci in press

Page 13: Epifluorescence

GABA-positive terminals in the molecular layermake asymmetric synapses with Purkinje cell spines

110/00/0

GABAGABA

parallel fiberparallel fiber

Fritschy et al., J Neurosci 2006

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sp

GABAGABAAA110/00/0

sp

sp

sp

NL2 does not localize ectopically at heterologous synapses with PC spines

GABAGABA

NL2/mGluR1/GAD

NL2/Car8/GAD

Patrizi et al., PNAS 2008

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Schneider Gasser et al et al.,

Page 19: Epifluorescence

Two-photon microscopy

Two photons of low energy (infrared range) can excite a fluorophore → emission of a fluorescence photon at a higher energy

Excitation is restricted to a tiny focal volume (rejection of out-of-focus signals)

Longer wavelengths penetrate deeper into tissue(1 mm)

Lower energy photons cause relatively low damage outside the focal volume → in vivo imaging

Page 20: Epifluorescence
Page 21: Epifluorescence