EMD-42301
Cryo-EM Structure of Human Ninjurin1 curved oligomer
EMD-42301
Single-particle4.3 Å
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Map released: 01/05/2024
Last modified: 08/05/2024
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
Sample: Ninjurin 1 ring oligomer
Fitted models: 8uip (Avg. Q-score: 0.046)
Raw data: EMPIAR-12325
Deposition Authors: David L
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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
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(2024) Cell , 187 , 2224 - 2235.e16
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.
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.