ABCG2 multidrug transporter: Difference between revisions

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===ATP Bound and Unbound Conformations===
===ATP Bound and Unbound Conformations===
As an [https://en.wikipedia.org/wiki/ATP-binding_cassette_transporter ABC Transporter], ABCG2 exhibits ATPase activity and uses the energy of ATP hydrolysis to facilitate transport. After substrates bind in the TMD, one molecule of <scene name='83/832932/Atp_bound_use2/3'>ATP binds each NBD</scene> (2 molecules of ATP total) causing a conformational change of the overall structure from an <scene name='83/832932/Overall_use_2/3'>inward-facing conformation</scene> to an <scene name='83/832932/Outward_facing_conformation/4'>outward-facing conformation</scene> (show <scene name='86/869419/Animation/2'>animation</scene>). <scene name='83/832937/Atp_and_mg_bound_to_abcg2/4'>ATP coordinates</scene> with various residues and a magnesium ion in the <scene name='83/832932/Atp_bound_in_nbd/2'>binding site of each NBD</scene> which is bordered with [https://en.wikipedia.org/wiki/Walker_motifs Walker A and B motifs]. One molecule of ATP is hydrolyzed to transport substrates across the cell membrane while the second molecule of ATP is hydrolyzed to reset the transporter to its inward-facing conformation.<ref name="Robey"/>
As an [https://en.wikipedia.org/wiki/ATP-binding_cassette_transporter ABC Transporter], ABCG2 exhibits ATPase activity and uses the energy of ATP hydrolysis to facilitate transport. After substrates bind in the TMD, one molecule of <scene name='83/832932/Atp_bound_use2/3'>ATP binds each NBD</scene> (2 molecules of ATP total) causing a conformational change of the overall structure from an <scene name='83/832932/Overall_use_2/3'>inward-facing conformation</scene> to an <scene name='83/832932/Outward_facing_conformation/4'>outward-facing conformation</scene>. <scene name='83/832937/Atp_and_mg_bound_to_abcg2/4'>ATP coordinates</scene> with various residues and a magnesium ion in the <scene name='83/832932/Atp_bound_in_nbd/2'>binding site of each NBD</scene> which is bordered with [https://en.wikipedia.org/wiki/Walker_motifs Walker A and B motifs]. One molecule of ATP is hydrolyzed to transport substrates across the cell membrane while the second molecule of ATP is hydrolyzed to reset the transporter to its inward-facing conformation.<ref name="Robey"/>


When ATP binds, α-helices in the NBD <scene name='83/832932/Atp_bound_nbd/3'>rotate</scene> approximately 35° relative to the <scene name='83/832932/Overall_structure_nbd_unbound/5'>inward-facing conformation of NBD</scene>. This shift in the NBD causes slight shifts of α-helices in the TMD; these helices are <scene name='83/832932/Atp_bound_use_tmd/4'>pushed toward each other</scene> relative to the <scene name='83/832932/Overall_structure_tmd_unbound/4'>inward-facing conformation of TMD</scene>. The overall shift from inward-facing to outward-facing promotes the transport of substrates through the transporter.<ref name="Manolaridis"/>
When ATP binds, α-helices in the NBD <scene name='83/832932/Atp_bound_nbd/3'>rotate</scene> approximately 35° relative to the <scene name='83/832932/Overall_structure_nbd_unbound/5'>inward-facing conformation of NBD</scene>. This shift in the NBD causes slight shifts of α-helices in the TMD; these helices are <scene name='83/832932/Atp_bound_use_tmd/4'>pushed toward each other</scene> relative to the <scene name='83/832932/Overall_structure_tmd_unbound/4'>inward-facing conformation of TMD</scene>. The overall shift from inward-facing to outward-facing promotes the transport of substrates through the transporter.<ref name="Manolaridis"/>
How the movement of the NBDs is linked to the movement of the transdomain movements is nicely visible in this <scene name='86/869419/Animation/2'>superposition</scene>.{{Template:Button Toggle Animation2}}


The NBDs in ABCG2 remain in contact with one another even without a bound substrate, providing greater substrate specificity as the entrance to the transporter is not as globular as other ABC transporters like ABCB1 or ABCC1. The entrance from the cytoplasm to the transporter is lined by [https://en.wikipedia.org/wiki/Hydrophobe hydrophobic] residues<scene name='83/832939/Lining_of_entrance_of_nbd/1'> A397, V401, L405, L539, I543 and T547</scene> in both [https://en.wikipedia.org/wiki/Monomer monomers].
The NBDs in ABCG2 remain in contact with one another even without a bound substrate, providing greater substrate specificity as the entrance to the transporter is not as globular as other ABC transporters like ABCB1 or ABCC1. The entrance from the cytoplasm to the transporter is lined by [https://en.wikipedia.org/wiki/Hydrophobe hydrophobic] residues<scene name='83/832939/Lining_of_entrance_of_nbd/1'> A397, V401, L405, L539, I543 and T547</scene> in both [https://en.wikipedia.org/wiki/Monomer monomers].

Revision as of 12:01, 28 August 2021

ABCG2 Multidrug Transporter

ABCG2 Multidrug Transporter. Green represents residues in monomer A; Purple represents residues in monomer B. Blue is used to highlight areas of interest in select scenes. (PDB Codes: 5NJ3 6HBU 6HCO 6FFC)

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References

Student Contributors

Julia Pomeroy

Shelby Skaggs

Sam Sullivan

Jaelyn Voyles

Proteopedia Page Contributors and Editors (what is this?)

R. Jeremy Johnson, Karsten Theis, Angel Herraez, Michal Harel