EMD-33582
Higher-ordered assembly of mouse TRIM72 M138R on the Phosphatidylserine/Cholesterol liposome bilayer
EMD-33582
Subtomogram averaging26.0 Å

Map released: 28/06/2023
Last modified: 22/11/2023
Sample Organism:
Mus musculus
Sample: Higher-ordered assembly of mouse TRIM72 M138R on the Phosphatidylserine/Cholesterol liposome bilayer
Deposition Authors: Park SH
,
Hyun J
,
Jeong H
,
Song HK
Sample: Higher-ordered assembly of mouse TRIM72 M138R on the Phosphatidylserine/Cholesterol liposome bilayer
Deposition Authors: Park SH




Structure and activation of the RING E3 ubiquitin ligase TRIM72 on the membrane.
Park SH
,
Han J,
Jeong BC,
Song JH,
Jang SH,
Jeong H
,
Kim BH,
Ko YG
,
Park ZY,
Lee KE,
Hyun J
,
Song HK
(2023) Nat Struct Mol Biol , 30 , 1695 - 1706





(2023) Nat Struct Mol Biol , 30 , 1695 - 1706
Abstract:
Defects in plasma membrane repair can lead to muscle and heart diseases in humans. Tripartite motif-containing protein (TRIM)72 (mitsugumin 53; MG53) has been determined to rapidly nucleate vesicles at the site of membrane damage, but the underlying molecular mechanisms remain poorly understood. Here we present the structure of Mus musculus TRIM72, a complete model of a TRIM E3 ubiquitin ligase. We demonstrated that the interaction between TRIM72 and phosphatidylserine-enriched membranes is necessary for its oligomeric assembly and ubiquitination activity. Using cryogenic electron tomography and subtomogram averaging, we elucidated a higher-order model of TRIM72 assembly on the phospholipid bilayer. Combining structural and biochemical techniques, we developed a working molecular model of TRIM72, providing insights into the regulation of RING-type E3 ligases through the cooperation of multiple domains in higher-order assemblies. Our findings establish a fundamental basis for the study of TRIM E3 ligases and have therapeutic implications for diseases associated with membrane repair.
Defects in plasma membrane repair can lead to muscle and heart diseases in humans. Tripartite motif-containing protein (TRIM)72 (mitsugumin 53; MG53) has been determined to rapidly nucleate vesicles at the site of membrane damage, but the underlying molecular mechanisms remain poorly understood. Here we present the structure of Mus musculus TRIM72, a complete model of a TRIM E3 ubiquitin ligase. We demonstrated that the interaction between TRIM72 and phosphatidylserine-enriched membranes is necessary for its oligomeric assembly and ubiquitination activity. Using cryogenic electron tomography and subtomogram averaging, we elucidated a higher-order model of TRIM72 assembly on the phospholipid bilayer. Combining structural and biochemical techniques, we developed a working molecular model of TRIM72, providing insights into the regulation of RING-type E3 ligases through the cooperation of multiple domains in higher-order assemblies. Our findings establish a fundamental basis for the study of TRIM E3 ligases and have therapeutic implications for diseases associated with membrane repair.