EMD-42301

Single-particle
4.3 Å
EMD-42301 Deposition: 10/10/2023
Map released: 01/05/2024
Last modified: 08/05/2024
Overview 3D View Sample Experiment Validation Volume Browser Additional data Links
Overview 3D View Sample Experiment Validation Volume Browser Additional data Links

EMD-42301

Cryo-EM Structure of Human Ninjurin1 curved oligomer

EMD-42301

Single-particle
4.3 Å
EMD-42301 Deposition: 10/10/2023
Map released: 01/05/2024
Last modified: 08/05/2024
Overview 3D View Sample Experiment Validation Volume Browser Additional data Links
Sample Organism: Homo sapiens
Sample: Ninjurin 1 ring oligomer
Fitted models: 8uip (Avg. Q-score: 0.046)
Raw data: EMPIAR-12325

Deposition Authors: David L , Wu H
NINJ1 mediates plasma membrane rupture by cutting and releasing membrane disks.
David L , Borges JP , Hollingsworth LR, Volchuk A, Jansen I, Garlick E , Steinberg BE, Wu H
(2024) Cell , 187 , 2224 - 2235.e16
PUBMED: 38614101
DOI: doi:10.1016/j.cell.2024.03.008
ISSN: 1097-4172
Abstract:
The membrane protein NINJ1 mediates plasma membrane rupture in pyroptosis and other lytic cell death pathways. Here, we report the cryo-EM structure of a NINJ1 oligomer segmented from NINJ1 rings. Each NINJ1 subunit comprises amphipathic (⍺1, ⍺2) and transmembrane (TM) helices (⍺3, ⍺4) and forms a chain of subunits, mainly by the TM helices and ⍺1. ⍺3 and ⍺4 are kinked, and the Gly residues are important for function. The NINJ1 oligomer possesses a concave hydrophobic side that should face the membrane and a convex hydrophilic side formed by ⍺1 and ⍺2, presumably upon activation. This structural observation suggests that NINJ1 can form membrane disks, consistent with membrane fragmentation by recombinant NINJ1. Live-cell and super-resolution imaging uncover ring-like structures on the plasma membrane that are released into the culture supernatant. Released NINJ1 encircles a membrane inside, as shown by lipid staining. Therefore, NINJ1-mediated membrane disk formation is different from gasdermin-mediated pore formation, resulting in membrane loss and plasma membrane rupture.