Figure 7-108 Molecular Biology of the Cell (© Garland Science 2008)

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Figure 7-108 Molecular Biology of the Cell (© Garland Science 2008)

Transcript of Figure 7-108 Molecular Biology of the Cell (© Garland Science 2008)

Page 1: Figure 7-108 Molecular Biology of the Cell (© Garland Science 2008)

Figure 7-108 Molecular Biology of the Cell (© Garland Science 2008)

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Resolution of biological objects

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Capturing and interpreting light images

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Different methods to visualize cellular morphology and objects

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Light and fluorescence microscopy

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Detection methods for subcellular structures

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Methods to better resolve objects in 3D

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Relative sizesOn the microscopic toMacroscopic scale

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Cellular proteins can be visualized inReal time in living cells

S. CEREVISCIAE - BAKERS YEAST

GOLGIGREEN AND RED FLUORESCENT PROTEINS

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How Flourescence works

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A.VICTORIA (AKA - GLOWING JELLYFISH)Isolate protein - green fluorescent protein (GFP)Abs. Max = 488nm

Now can fuse protein of interest with GFP

GFP Getmeoutaherenow

5’ 3’UTRUTRAUG UAG

UAAUGA

DNA plasmid

GFPGetmeoutaherenow

Making Fluorescent Cells

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Ta da…..The Brainbow

Making Fluorescent Cells

GFP is a Beta-can-helices

-sheets

chromophore

CeruleanGFP Banana Orange…….

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d = 0.61 n sin

Resolving power

D = minimum distance of 2 points = wavelengthn = numerical aperture = angle of cone of light (1/2)

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Methods to increase contrastSpecific stains

Light microscope comparisons

Bright field

Phase contrast

NomarskiCFP

YFPaxons

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Out of focus light can be removed by computers

Raw Deconvolved

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Other uses of Fluorescent proteins

FRET - fluorescence resonance energy transfer-can detect changes in interactions-donor FL energy reduced while acceptor increased

Bi-molecular complementation

Caged proteins

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Light microscope

Electron microscope

Electron microscopy

1nm resolution

Negative stain Shadow casting

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Sample preparation is time consuming

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Onion root cellFreeze-fractured

Ciliary axoneme - deep etch

Insect head - SEM - bacteriophage

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