EMD-15264
IF(apo/as isolated) conformation of CydDC mutant (H85A.C) in AMP-PNP(CydD) bound state (Dataset-17)
EMD-15264
Single-particle3.26 Å
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Map released: 05/07/2023
Last modified: 01/11/2023
Sample Organism:
Escherichia coli K-12,
Escherichia coli
Sample: CydDC heterodimer
Deposition Authors: Wu D
,
Safarian S
Sample: CydDC heterodimer
Deposition Authors: Wu D
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Dissecting the conformational complexity and mechanism of a bacterial heme transporter.
Wu D
,
Mehdipour AR,
Finke F
,
Goojani HG,
Groh RR,
Grund TN,
Reichhart TMB,
Zimmermann R,
Welsch S
,
Bald D,
Shepherd M,
Hummer G
,
Safarian S
(2023) Nat Chem Biol , 19 , 992 - 1003
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(2023) Nat Chem Biol , 19 , 992 - 1003
Abstract:
Iron-bound cyclic tetrapyrroles (hemes) are redox-active cofactors in bioenergetic enzymes. However, the mechanisms of heme transport and insertion into respiratory chain complexes remain unclear. Here, we used cellular, biochemical, structural and computational methods to characterize the structure and function of the heterodimeric bacterial ABC transporter CydDC. We provide multi-level evidence that CydDC is a heme transporter required for functional maturation of cytochrome bd, a pharmaceutically relevant drug target. Our systematic single-particle cryogenic-electron microscopy approach combined with atomistic molecular dynamics simulations provides detailed insight into the conformational landscape of CydDC during substrate binding and occlusion. Our simulations reveal that heme binds laterally from the membrane space to the transmembrane region of CydDC, enabled by a highly asymmetrical inward-facing CydDC conformation. During the binding process, heme propionates interact with positively charged residues on the surface and later in the substrate-binding pocket of the transporter, causing the heme orientation to rotate 180°.
Iron-bound cyclic tetrapyrroles (hemes) are redox-active cofactors in bioenergetic enzymes. However, the mechanisms of heme transport and insertion into respiratory chain complexes remain unclear. Here, we used cellular, biochemical, structural and computational methods to characterize the structure and function of the heterodimeric bacterial ABC transporter CydDC. We provide multi-level evidence that CydDC is a heme transporter required for functional maturation of cytochrome bd, a pharmaceutically relevant drug target. Our systematic single-particle cryogenic-electron microscopy approach combined with atomistic molecular dynamics simulations provides detailed insight into the conformational landscape of CydDC during substrate binding and occlusion. Our simulations reveal that heme binds laterally from the membrane space to the transmembrane region of CydDC, enabled by a highly asymmetrical inward-facing CydDC conformation. During the binding process, heme propionates interact with positively charged residues on the surface and later in the substrate-binding pocket of the transporter, causing the heme orientation to rotate 180°.