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Published on: February 2, 2024
ICln, a novel integrin alphaIIbbeta3-associated protein, functionally regulates platelet activation
Deirdre Larkin1, Derek Murphy, Dermot F Reilly
1Department of Clinical Pharmacology, Royal College of Surgeons in Ireland, Dublin.
Insights
Researchers identified a novel interaction between platelet integrin alpha(IIb)beta(3) and ICln, a chloride channel protein. This interaction regulates platelet activation and aggregation, offering new therapeutic targets for bleeding disorders.
Area of Science:
- Biochemistry
- Cell Biology
- Hematology
Background:
- Platelet integrin alpha(IIb)beta(3) plays a critical role in regulating platelet activation.
- The cytoplasmic motif KVGFFKR is crucial for alpha(IIb)beta(3) regulation.
- Understanding protein interactions with this motif is key to elucidating molecular mechanisms.
Purpose of the Study:
- To identify proteins interacting with the alpha(IIb)beta(3) cytoplasmic motif KVGFFKR.
- To characterize the functional significance of these interactions in platelet function.
- To explore potential therapeutic targets for modulating platelet activity.
Main Methods:
- High-density protein expression array screening using a tagged synthetic peptide (biotin-KVGFFKR).
- Verification of ICln presence and interaction with alpha(IIb)beta(3) using PCR, Western blots, immunohistochemistry, and surface plasmon resonance.
- Functional assays including PAC-1 expression, platelet aggregation, and co-immunoprecipitation.
Main Results:
- Identified ICln (chloride channel regulatory protein) as a high-affinity interactor with the KVGFFKR motif.
- Confirmed ICln presence in platelets and its co-association with alpha(IIb)beta(3) with an affinity of 82.2 +/- 24.4 nm.
- Demonstrated that ICln inhibition by acyclovir or a cell-permeable peptide specifically inhibits integrin activation and platelet aggregation.
Conclusions:
- A novel functional interaction between platelet integrin alpha(IIb)beta(3) and ICln has been identified and verified.
- This interaction is physiologically relevant and plays a specific role in regulating integrin activation and platelet function.
- Targeting the ICln-integrin interaction offers a potential strategy for controlling platelet activity.
Abstract:
A critical role for the conserved alpha-integrin cytoplasmic motif, KVGFFKR, is recognized in the regulation of activation of the platelet integrin alpha(IIb)beta(3). To understand the molecular mechanisms of this regulation, we sought to determine the nature of the protein interactions with this cytoplasmic motif. We used a tagged synthetic peptide, biotin-KVGFFKR, to probe a high density protein expression array (37,200 recombinant human proteins) for high affinity interactions. A number of potential integrin-binding proteins were identified. One such protein, a chloride channel regulatory protein, ICln, was characterized further because its affinity for the integrin peptide was highest as was its expression in platelets. We verified the presence of ICln in human platelets by PCR, Western blots, immunohistochemistry, and its co-association with alpha(IIb)beta(3) by surface plasmon resonance. The affinity of this interaction was 82.2 +/- 24.4 nm in a cell free assay. ICln co-immunoprecipitates with alpha(IIb)beta(3) in platelet lysates demonstrating that this interaction is physiologically relevant. Furthermore, immobilized KVGFFKR peptides, but not control KAAAAAR peptides, specifically extract ICln from platelet lysates. Acyclovir (100 microm to 5 mm), a pharmacological inhibitor of the ICln chloride channel, specifically inhibits integrin activation (PAC-1 expression) and platelet aggregation without affecting CD62 P expression confirming a specific role for ICln in integrin activation. In parallel, a cell-permeable peptide corresponding to the potential integrin-recognition domain on ICln (AKFEEE, 10-100 microm) also inhibits platelet function. Thus, we have identified, verified, and characterized a novel functional interaction between the platelet integrin and ICln, in the platelet membrane.
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