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Related Concept Videos

Clathrin Coated Vesicles01:12

Clathrin Coated Vesicles

Clathrin-coated vesicles use endocytosis to transport receptors and lysosomal hydrolases from the Golgi to the lysosome in the late secretory pathway. Clathrin-mediated endocytosis was the first described endocytic process, and Clathrin-coated vesicles remain one of the most well-studied transport vesicles. The molecular machinery that generates clathrin-coated vesicles comprises over 50 proteins that precisely coordinate vesicle formation. Cell surface receptors concentrated in indented sites...
Pinching-off of Coated Vesicles01:32

Pinching-off of Coated Vesicles

Vesicle budding is orchestrated by distinct cytosolic proteins such as adaptor proteins, coat proteins, and GTPases. To initiate vesicle budding, membrane-bending proteins containing crescent-shaped BAR domains bind to the lipid heads in the bilayer and distort the membrane to form a protein-coated vesicle bud. Adaptors proteins such as AP2 for clathrin-coated vesicles can nucleate on the deformed membrane. Finally, coat proteins such as clathrin or COPI and COPII assemble into a coat forming...
COP Coated Vesicles00:59

COP Coated Vesicles

Membrane-enclosed structures called vesicles transport proteins and lipids across the cell. The vesicles derive their cargo from the plasma membrane, Golgi, ER, or endosome. Coated vesicles are spherical, protein-coated carriers with a 50–100 nm diameter that mediate bidirectional transport between the ER and the Golgi. The distribution of proteins between the ER and Golgi complex is dynamic and is maintained by different coated vesicles. Their formation is driven by the assembly of different...
Delivery Pathways to the Lysosome01:36

Delivery Pathways to the Lysosome

Eukaryotic cells use different mechanisms to eliminate toxic waste obsolete and worn-out substances. Lysosomes play a pivotal role in this, and hence, these substances are carried to the lysosome from other parts of the cell and extracellular space through different pathways. The most elaborately studied pathways to the lysosome are the endocytic pathways.
Endocytosis
In endocytosis, the cell membrane takes up macromolecules and particles from the surrounding medium. Clathrin-mediated...
Intralumenal Vesicles and Multivesicular Bodies01:38

Intralumenal Vesicles and Multivesicular Bodies

Intraluminal vesicles (ILVs) are small vesicles 50-80 nm in diameter formed during the maturation of early endosomes. A specialized endosome containing numerous ILVs is called a multivesicular body (MVB). ILVs contain internalized molecules such as antigens, nucleic acids, proteins, and metabolites. Some of these molecules are released from the MVBs inside exosomes and are transported to other cells. Other MVBs contain molecules that are retained in the ILVs and are later degraded within the...
The Early Endosome: Endocytosis of Transferrin01:28

The Early Endosome: Endocytosis of Transferrin

Essential proteins such as insulin or low-density lipoprotein (LDL) and micronutrients such as iron enter a eukaryotic cell through receptor-mediated endocytosis. Subsequently, the early endosomes fuse with the vesicles containing such receptor-ligand complexes and play a vital role in sorting the incoming ligands and receptors. While the ligands are either degraded inside the vesicle or released into the cytosol, their receptors are returned to the plasma membrane for further rounds of...

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Related Experiment Video

Updated: Jun 19, 2026

Visualizing Clathrin-mediated Endocytosis of G Protein-coupled Receptors at Single-event Resolution via TIRF Microscopy
12:40

Visualizing Clathrin-mediated Endocytosis of G Protein-coupled Receptors at Single-event Resolution via TIRF Microscopy

Published on: October 20, 2014

Imaging endocytic clathrin structures in living cells.

Tom Kirchhausen1

  • 1Harvard Medical School/ Immune Disease Institute, W. Alpert Building Room 128, Boston, MA 02115, USA. kirchhausen@crystal.harvard.edu

Trends in Cell Biology
|October 20, 2009
PubMed
Summary

New live-cell imaging reveals distinct clathrin-coat assembly dynamics during endocytosis. These findings connect light microscopy observations with molecular structures, advancing our understanding of this crucial cellular process.

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In vivo and in vitro Studies of Adaptor-clathrin Interaction
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In vivo and in vitro Studies of Adaptor-clathrin Interaction

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Live-cell Imaging of Endocytic Transport using Functionalized Nanobodies in Cultured Cells
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Live-cell Imaging of Endocytic Transport using Functionalized Nanobodies in Cultured Cells

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Related Experiment Videos

Last Updated: Jun 19, 2026

Visualizing Clathrin-mediated Endocytosis of G Protein-coupled Receptors at Single-event Resolution via TIRF Microscopy
12:40

Visualizing Clathrin-mediated Endocytosis of G Protein-coupled Receptors at Single-event Resolution via TIRF Microscopy

Published on: October 20, 2014

In vivo and in vitro Studies of Adaptor-clathrin Interaction
17:14

In vivo and in vitro Studies of Adaptor-clathrin Interaction

Published on: January 26, 2011

Live-cell Imaging of Endocytic Transport using Functionalized Nanobodies in Cultured Cells
08:02

Live-cell Imaging of Endocytic Transport using Functionalized Nanobodies in Cultured Cells

Published on: October 17, 2025

Area of Science:

  • Cell Biology
  • Molecular Biology
  • Biophysics

Background:

  • Clathrin-dependent endocytosis is vital for cellular processes.
  • New visualization techniques offer insights into endocytic dynamics.
  • Understanding coat assembly mechanisms remains a challenge.

Purpose of the Study:

  • To connect live-cell imaging observations of clathrin-coat assembly with known molecular structures.
  • To describe coat assembly in various contexts consistent with crystallographic and electron microscopy data.

Main Methods:

  • Live-cell imaging with fluorescently labeled marker proteins.
  • Analysis of coat assembly kinetics and protein recruitment.
  • Integration of light microscopy data with X-ray crystallography and electron microscopy.

Main Results:

  • Identified unexpected modes of clathrin-coat assembly.
  • Observed distinct kinetics, protein recruitment, and actin involvement.
  • Documented varied mechanisms of membrane deformation during pit formation.

Conclusions:

  • Live-cell imaging provides dynamic insights into clathrin-coat assembly.
  • Findings reconcile light microscopy with structural data.
  • This work advances the understanding of clathrin-mediated endocytosis.