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The <scene name='83/835223/Hemes/11'>hemes at each monomer-monomer interface form a parallel-displaced pair</scene>, which likely contributes to the stability of the filament. More importantly, this produces a <scene name='83/835223/Filament/5'>continuous chain of hemes through the length of the filament</scene>. This continuous chain of hemes is believed to be the basis of the electrical conductivity.
The <scene name='83/835223/Hemes/11'>hemes at each monomer-monomer interface form a parallel-displaced pair</scene>, which likely contributes to the stability of the filament. More importantly, this produces a <scene name='83/835223/Filament/5'>continuous chain of hemes through the length of the filament</scene>. This continuous chain of hemes is believed to be the basis of the electrical conductivity.


====Cysteine Anchors====
====Full Mechanism of Binding and Inhibition in hOAT1====
 
'''Overall Transport Cycle & Substrate Binding (e.g., Olmesartan)'''
'''1. Outward-Facing State (Hypothesized):''' The transport cycle begins with the transporter in an outward-facing conformation, open to the extracellular space. Substrates and inhibitors from the blood enter the central binding pocket at this stage.
 
'''2. Transition to Inward-Facing State:''' Upon binding a substrate like olmesartan, the transporter undergoes a conformational change to the inward-facing state, which is the conformation captured in this study.
 
'''3. Substrate Binding and Chloride Coordination in the Inward-Open State:'''
 
*Olmesartan docks into Site 3, the polyspecific substrate-binding site, engaging a cage of hydrophobic and aromatic residues (e.g., F438, Y354).
 
*Its binding induces specific structural rearrangements, most notably a vertical rotation of the Y230 side chain.
 
*Crucially, olmesartan binding creates a favorable environment for chloride ion coordination. The chloride ion is stabilized by a network involving S203, the rotated Y230, and R466.
 
*This chloride coordination, facilitated by the species-specific residue S203, is essential for high-affinity binding and efficient translocation of olmesartan. The bottom-gate residues M207 and F442 also interact with the drug, potentially playing a role in its final release into the cytoplasm.
 
'''4. Substrate Release:''' The inward-facing conformation with its open paths (Path A and Path B) allows the substrate to dissociate into the cytoplasm. The transporter then likely resets to the outward-facing state, driven by the exchange with intracellular α-ketoglutarate (α-KG).
 
'''Inhibition Mechanism (e.g., Probenecid)'''
The inhibitor probenecid exploits the transport cycle but arrests it through a dual mechanism:
 
'''1. Binding and Competition:'''
 
*Probenecid enters the binding pocket from the extracellular side and binds in the inward-facing conformation.
 
*It occupies Site 3 and partially extends into Site 1. In Site 1, it directly competes with the counter-substrate α-KG by forming a key hydrogen bond with K382, a residue critical for α-KG binding.
 
'''2. Conformational Arrest and Cytoplasmic Blockade:'''
 
*This is the primary inhibitory mechanism. Probenecid binding induces subtle but critical conformational changes in the cytoplasmic regions of TM5, TM8, TM10, and TM11.
 
*These helices shift inward, causing a constriction of the entire cytoplasmic opening of the binding pocket.
 
*This constriction completely blocks Path B and severely narrows Path A.
 
*By physically obstructing these cytosolic paths, probenecid achieves two things:
 
:*It prevents intracellular substrates from entering the binding pocket.
 
:*It traps the transporter in a locked, inward-facing, apo-like conformation, preventing the conformational changes needed to complete the transport cycle.
 
Each heme is <scene name='83/835223/Heme_cysteine/4'>covalently anchored to two cysteines</scene>, which form thioether bonds with the heme vinyl groups (opposite the heme carboxyls):
Each heme is <scene name='83/835223/Heme_cysteine/4'>covalently anchored to two cysteines</scene>, which form thioether bonds with the heme vinyl groups (opposite the heme carboxyls):
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Revision as of 07:22, 30 November 2025

cryo-electron microscopy

Cryo-EM structures of human OAT1 reveal drug binding and inhibition mechanisms[1].

Hyung-Min Jeon, Jisung Eun, Kelly H. Kim, and Youngjin Kim.

Cell Volume 33, Issue 11, P1856-1866.E5, November 06, 2025

https://doi.org/10.1016/j.str.2025.07.019

Structure Tour

Cryo-EM structure of human SLC22A6 (OAT1) in the apo-state, resolution 3.85Å

Drag the structure with the mouse to rotate




See Also

  • 1ofw: A list of all interactive 3D complements for publications from the Malvankar group.

Notes & References

  1. Cite error: Invalid <ref> tag; no text was provided for refs named m3