Vesicular Traffic II. Endocytic and secretory pathways red = secretory green = endocytic blue =...

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Vesicular Traffic II
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Transcript of Vesicular Traffic II. Endocytic and secretory pathways red = secretory green = endocytic blue =...

Page 1: Vesicular Traffic II. Endocytic and secretory pathways red = secretory green = endocytic blue = recycling.

Vesicular Traffic II

Page 2: Vesicular Traffic II. Endocytic and secretory pathways red = secretory green = endocytic blue = recycling.

Endocytic and secretory pathways

red = secretorygreen = endocyticblue = recycling

Page 3: Vesicular Traffic II. Endocytic and secretory pathways red = secretory green = endocytic blue = recycling.

Different coats are used for different transport steps in the cell

Page 4: Vesicular Traffic II. Endocytic and secretory pathways red = secretory green = endocytic blue = recycling.

Assembly and disassembly of clathrin coat

Page 5: Vesicular Traffic II. Endocytic and secretory pathways red = secretory green = endocytic blue = recycling.

Dynamin pinches clathrin coated vesicles from the membrane

Page 6: Vesicular Traffic II. Endocytic and secretory pathways red = secretory green = endocytic blue = recycling.

Electron micrograph from Drosophila mutant

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Resting Chemical Synapse

Page 8: Vesicular Traffic II. Endocytic and secretory pathways red = secretory green = endocytic blue = recycling.

Drosophila mutant can not recycle synaptic vesicles

Page 9: Vesicular Traffic II. Endocytic and secretory pathways red = secretory green = endocytic blue = recycling.
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SNARE proteins guide vesicular transport

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Active Chemical Synapse

Page 12: Vesicular Traffic II. Endocytic and secretory pathways red = secretory green = endocytic blue = recycling.

Interaction of SNARE proteins while docking synaptic vesicle at nerve terminal

Page 13: Vesicular Traffic II. Endocytic and secretory pathways red = secretory green = endocytic blue = recycling.

Model for membrane fusion. Tight SNARE pairing forces water molecules from areabetween lipid bilayers

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Entry of HIV into lymphocytes

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Recruitment of cargo molecules into ER transport vesicles

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Vesicular tubular clusters move along microtubules to carry proteins from ER to Golgi

apparatus

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Vesicular tubular clusters

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Microtubules

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Microtubules

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DVD Clip 58

Page 23: Vesicular Traffic II. Endocytic and secretory pathways red = secretory green = endocytic blue = recycling.

3-dimensional model of the Golgi Apparatus

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Golgi apparatus in an algal cell

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ER – Golgi transitional zone in an animal cell

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Some enzymes are enriched in cis or trans compartments of the Golgi

substrates specificfor certain enzymes such as acid phosphatase

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Functional Compartmentalization of the Golgi Apparatus

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Golgi apparatus stained with GFP

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Golgi apparatus can be polarly distributedIn this fibroblast Golgi is facing the direction in which

the cell is crawling

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Drawing of goblet cell in the intestinal epithelium

Secretes polysacchariderich mucus into thesmall intestine

Golgi is highly polarizedto facilitate release ofmucus throughexocytosis at theapical domain

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N-linked glycosylationbecause sugar is addedto N of asparagine.

original precursor oligosaccharide addedto most proteins in the ER

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Oligosaccharide chains are processed in the Golgi

common core

complex

high-mannose

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Vesicular transport model

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Cisternal Maturation Model

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Lysosome interior is different from cytosol

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Detection of acid phosphatase in lysosomesSmall spheres may be vesicles delivering the

enzyme from the Golgi Apparatus