EMD-0120
Cryo-EM structure of the 37 triskelia big apple clathrin coat complex
EMD-0120
Single-particle23.68 Å

Map released: 02/10/2019
Last modified: 25/11/2020
Sample Organism:
Pig
Sample: Assembly of clathrin heavy and light chain into coat complexes
Raw data: EMPIAR-10295, EMPIAR-10294
Deposition Authors: Morris KL, Smith CJ
Sample: Assembly of clathrin heavy and light chain into coat complexes
Raw data: EMPIAR-10295, EMPIAR-10294
Deposition Authors: Morris KL, Smith CJ
Cryo-EM of multiple cage architectures reveals a universal mode of clathrin self-assembly.
Morris KL
,
Jones JR
,
Halebian M
,
Wu S,
Baker M,
Armache JP
,
Avila Ibarra A,
Sessions RB
,
Cameron AD
,
Cheng Y
,
Smith CJ
(2019) Nat. Struct. Mol. Biol. , 26 , 890 - 898








(2019) Nat. Struct. Mol. Biol. , 26 , 890 - 898
Abstract:
Clathrin forms diverse lattice and cage structures that change size and shape rapidly in response to the needs of eukaryotic cells during clathrin-mediated endocytosis and intracellular trafficking. We present the cryo-EM structure and molecular model of assembled porcine clathrin, providing insights into interactions that stabilize key elements of the clathrin lattice, namely, between adjacent heavy chains, at the light chain-heavy chain interface and within the trimerization domain. Furthermore, we report cryo-EM maps for five different clathrin cage architectures. Fitting structural models to three of these maps shows that their assembly requires only a limited range of triskelion leg conformations, yet inherent flexibility is required to maintain contacts. Analysis of the protein-protein interfaces shows remarkable conservation of contact sites despite architectural variation. These data reveal a universal mode of clathrin assembly that allows variable cage architecture and adaptation of coated vesicle size and shape during clathrin-mediated vesicular trafficking or endocytosis.
Clathrin forms diverse lattice and cage structures that change size and shape rapidly in response to the needs of eukaryotic cells during clathrin-mediated endocytosis and intracellular trafficking. We present the cryo-EM structure and molecular model of assembled porcine clathrin, providing insights into interactions that stabilize key elements of the clathrin lattice, namely, between adjacent heavy chains, at the light chain-heavy chain interface and within the trimerization domain. Furthermore, we report cryo-EM maps for five different clathrin cage architectures. Fitting structural models to three of these maps shows that their assembly requires only a limited range of triskelion leg conformations, yet inherent flexibility is required to maintain contacts. Analysis of the protein-protein interfaces shows remarkable conservation of contact sites despite architectural variation. These data reveal a universal mode of clathrin assembly that allows variable cage architecture and adaptation of coated vesicle size and shape during clathrin-mediated vesicular trafficking or endocytosis.