EMD-24730
afTMEM16 in C18 lipid nanodiscs with MSP1E3 scaffold protein in the presence of Ca2+, full dimer
EMD-24730
Single-particle2.28 Å
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Map released: 18/05/2022
Last modified: 05/06/2024
Sample Organism:
Aspergillus fumigatus,
Neosartorya fumigata (strain CEA10 / CBS 144.89 / FGSC A1163)
Sample: afTMEM16 scramblase C18 lipid nanodiscs with MSP1E3 scaffold in the presence of Ca2+, full dimer
Fitted models: 7rxg (Avg. Q-score: 0.648)
Deposition Authors: Falzone ME, Accardi A
Sample: afTMEM16 scramblase C18 lipid nanodiscs with MSP1E3 scaffold in the presence of Ca2+, full dimer
Fitted models: 7rxg (Avg. Q-score: 0.648)
Deposition Authors: Falzone ME, Accardi A
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TMEM16 scramblases thin the membrane to enable lipid scrambling.
Falzone ME,
Feng Z
,
Alvarenga OE,
Pan Y,
Lee B
,
Cheng X
,
Fortea E,
Scheuring S
,
Accardi A
(2022) Nat Commun , 13 , 2604 - 2604
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(2022) Nat Commun , 13 , 2604 - 2604
Abstract:
TMEM16 scramblases dissipate the plasma membrane lipid asymmetry to activate multiple eukaryotic cellular pathways. Scrambling was proposed to occur with lipid headgroups moving between leaflets through a membrane-spanning hydrophilic groove. Direct information on lipid-groove interactions is lacking. We report the 2.3 Å resolution cryogenic electron microscopy structure of the nanodisc-reconstituted Ca2+-bound afTMEM16 scramblase showing how rearrangement of individual lipids at the open pathway results in pronounced membrane thinning. Only the groove's intracellular vestibule contacts lipids, and mutagenesis suggests scrambling does not require specific protein-lipid interactions with the extracellular vestibule. We find scrambling can occur outside a closed groove in thinner membranes and is inhibited in thicker membranes, despite an open pathway. Our results show afTMEM16 thins the membrane to enable scrambling and that an open hydrophilic pathway is not a structural requirement to allow rapid transbilayer movement of lipids. This mechanism could be extended to other scramblases lacking a hydrophilic groove.
TMEM16 scramblases dissipate the plasma membrane lipid asymmetry to activate multiple eukaryotic cellular pathways. Scrambling was proposed to occur with lipid headgroups moving between leaflets through a membrane-spanning hydrophilic groove. Direct information on lipid-groove interactions is lacking. We report the 2.3 Å resolution cryogenic electron microscopy structure of the nanodisc-reconstituted Ca2+-bound afTMEM16 scramblase showing how rearrangement of individual lipids at the open pathway results in pronounced membrane thinning. Only the groove's intracellular vestibule contacts lipids, and mutagenesis suggests scrambling does not require specific protein-lipid interactions with the extracellular vestibule. We find scrambling can occur outside a closed groove in thinner membranes and is inhibited in thicker membranes, despite an open pathway. Our results show afTMEM16 thins the membrane to enable scrambling and that an open hydrophilic pathway is not a structural requirement to allow rapid transbilayer movement of lipids. This mechanism could be extended to other scramblases lacking a hydrophilic groove.