The oxygenation state of erythrocytes is known to impact several cellular processes. As the only known O2-binding protein in red blood cells, haemoglobin has been implicated in the oxygenation-mediated control of cell pathways and properties. Band 3, an integral membrane protein linked to the spectrin/actin cytoskeleton, preferentially binds deoxygenated haemoglobin at its N-terminus, and has been postulated to participate in the mechanism by which oxygenation controls cellular processes. Because the ankyrin-binding site on band 3 is located near the deoxyHb (deoxygenated haemoglobin)-binding site, we hypothesized that deoxyHb might impact the association between band 3 and the underlying erythrocyte cytoskeleton, a link that is primarily established through band 3–ankyrin bridging. In the present paper we show that deoxygenation of human erythrocytes results in displacement of ankyrin from band 3, leading to release of the spectrin/actin cytoskeleton from the membrane. This weakening of membrane–cytoskeletal interactions during brief periods of deoxygenation could prove beneficial to blood flow, but during episodes of prolonged deoxygenation, such as during sickle cell occlusive crises, could promote unwanted membrane vesiculation.
The red cell membrane is stabilized by a spectrin/actin-based cortical cytoskeleton connected to the phospholipid-bilayer via multiple protein bridges. By virtue of its interaction with ankyrin and adducin, the anion transporter, band 3 (AE1), contributes prominently to these bridges. In a previous study, we demonstrated that an exposed loop comprising residues 175–185 of the cytoplasmic domain of band 3 (cdB3) constitutes a critical docking site for ankyrin on band 3. In this paper, we demonstrate that an adjacent loop, comprising residues 63–73 of cdB3, is also essential for ankyrin binding. Data in support of this hypothesis include: 1) deletion or mutation of residues within the latter loop abrogates ankyrin binding without affecting cdB3 structure or its other functions, 2) association of cdB3 with ankyrin is inhibited by competition with the loop peptide, and 3) resealing of the loop peptide into erythrocyte ghosts alters membrane morphology and stability.
To characterize cdB3-ankyrin interaction further, we identified their interfacial contact sites using molecular docking software and the crystal structures of D3D4-ankyrin and cdB3. The best fit for the interaction reveals multiple salt bridges and hydrophobic contacts between the two proteins. The most important ion pair interactions are: i) cdB3 K69 to ankyrin E645, ii) cdB3 E72 to ankyrin K611, and iii) cdB3 D183 to ankyrin N601 and Q634. Mutation of the above four residues on ankyrin yielded an ankyrin with native CD spectrum, but little or no affinity for cdB3. These data define the docking interface between cdB3 and ankyrin in greater detail.
Background: Erythrocyte band 3 exists in three populations; ankyrin-bound, adducin-bound, and free. Results: In wild-type murine erythrocytes, ϳ40% of band 3 is attached to ankyrin, ϳ33% is immobilized by adducin, and ϳ27% is free. Conclusion: Ankyrin-and adducin-bound band 3 can be monitored separately. Significance: This diffusion study demonstrates molecular differences between band 3 complexes and reveals structural heterogeneity within band 3 subpopulations.
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