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Published on: May 26, 2011
Transmembrane and cytoplasmic domains in integrin activation and protein-protein interactions (review)
Kate L Wegener1, Iain D Campbell
1Department of Biochemistry, University of Oxford, Oxford, UK.
Insights
Integrins are cell adhesion receptors crucial for biological functions. Their activation involves conformational changes regulated by subunit interactions, with talin playing a key role in disrupting these interfaces.
Area of Science:
- Cell Biology
- Biochemistry
- Structural Biology
Background:
- Integrins are essential heterodimeric membrane proteins mediating cell adhesion and bidirectional signaling.
- Regulation of integrin conformational states is critical for cellular functions.
- Transmembrane and cytoplasmic domains of integrin subunits are key regulators of integrin activity.
Purpose of the Study:
- To elucidate the interaction interface between integrin alpha and beta subunit domains.
- To understand the mechanism of integrin activation by talin.
- To discuss the role of beta integrin tails in focal adhesion regulation.
Main Methods:
- Computational modeling with experimental restraints to determine the structure of the integrin complex.
- Analysis of existing experimental data to define interaction interfaces.
- Discussion of ongoing research on integrin tail interactions.
Main Results:
- A model suggests talin activates integrins by sterically disrupting the alpha/beta subunit interface.
- Evidence indicates domain separation accompanies inside-out integrin activation.
- The beta integrin tail is proposed as a regulatory hub in focal adhesions.
Conclusions:
- Atomic-level structures of resting state integrin complexes are needed to confirm activation mechanisms.
- Understanding integrin tail interactions, including regulation by phosphorylation, is crucial.
- Integrin structure-function relationships are complex and involve intricate domain interactions.
Abstract:
Integrins are heterodimeric membrane-spanning adhesion receptors that are essential for a wide range of biological functions. Control of integrin conformational states is required for bidirectional signalling across the membrane. Key components of this control mechanism are the transmembrane and cytoplasmic domains of the alpha and beta subunits. These domains are believed to interact, holding the integrin in the inactive state, while inside-out integrin activation is accompanied by domain separation. Although there are strong indications for domain interactions, the majority of evidence is insufficient to precisely define the interaction interface. The current best model of the complex, derived from computational calculations with experimental restraints, suggests that integrin activation by the cytoplasmic protein talin is accomplished by steric disruption of the alpha/beta interface. Better atomic-level resolution structures of the alpha/beta transmembrane/cytoplasmic domain complex are still required for the resting state integrin to corroborate this. Integrin activation is also controlled by competitive interactions involving the cytoplasmic domains, particularly the beta-tails. The concept of the beta integrin tail as a focal adhesion interaction 'hub' for interactions and regulation is discussed. Current efforts to define the structure and affinity of the various complexes formed by integrin tails, and how these interactions are controlled, e.g. by phosphorylation and localization, are described.
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