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The crystal structure of calcium- and integrin-binding protein 1: insights into redox regulated functions
Chad J Blamey1, Christopher Ceccarelli, Ulhas P Naik
1Department of Biological Sciences, University of Delaware, Newark, DE 19716, USA.
Insights
Calcium- and integrin-binding protein 1 (CIB1) regulates platelet aggregation and signaling. Its structure reveals potential redox regulation and a phosphatase active site, suggesting broader cellular roles beyond platelets.
Area of Science:
- Structural biology
- Molecular signaling
- Biochemistry
Background:
- Calcium- and integrin-binding protein 1 (CIB1) is implicated in platelet aggregation via interaction with integrin alpha(IIb)beta(3).
- CIB1's expression in non-platelet tissues suggests broader signaling functions, though these remain poorly understood.
Purpose of the Study:
- To elucidate the three-dimensional structure of human CIB1.
- To investigate potential mechanisms underlying CIB1's diverse signaling roles.
Main Methods:
- X-ray crystallography was employed to determine the structure of human CIB1 at 2.3 A resolution.
- Analysis of the crystallized dimer interface and bound molecules, including glutathione.
Main Results:
- Human CIB1 was crystallized as a dimer, revealing an extensive hydrophobic interface.
- The C-terminal domain shares homology with EF-hand proteins, while the N-terminal domain lacks calcium-binding sites.
- A reduced glutathione molecule was observed bound to the N-terminal domain, suggesting potential redox regulation.
- The arrangement of residues C35, H31, and S48 indicates a possible cysteine-type protein phosphatase active site.
Conclusions:
- The CIB1 structure provides insights into its potential interactions with integrin alpha(IIb) and other signaling partners.
- The discovery of a potential active site suggests CIB1 may possess enzymatic activity, possibly regulating diverse cellular proteins.
- These findings propose a mechanism for CIB1's widespread signaling roles beyond platelet function, potentially involving redox regulation and phosphatase activity.
Abstract:
Calcium- and integrin-binding protein 1 (CIB1) is involved in the process of platelet aggregation by binding the cytoplasmic tail of the alpha(IIb) subunit of the platelet-specific integrin alpha(Iib)beta(3). Although poorly understood, it is widely believed that CIB1 acts as a global signaling regulator because it is expressed in many tissues that do not express integrin alpha(Iib)beta(3). We report the structure of human CIB1 to a resolution of 2.3 A, crystallized as a dimer. The dimer interface includes an extensive hydrophobic patch in a crystal form with 80% solvent content. Although the dimer form of CIB1 may not be physiologically relevant, this intersub-unit surface is likely to be linked to alpha(IIb) binding and to the binding of other signaling partner proteins. The C-terminal domain of CIB1 is structurally similar to other EF-hand proteins such as calmodulin and calcineurin B. Despite structural homology to the C-terminal domain, the N-terminal domain of CIB1 lacks calcium-binding sites. The structure of CIB1 revealed a complex with a molecule of glutathione in the reduced state bond to the N-terminal domain of one of the two subunits poised to interact with the free thiol of C35. Glutathione bound in this fashion suggests CIB1 may be redox regulated. Next to the bound GSH, the orientation of residues C35, H31, and S48 is suggestive of a cysteine-type protein phosphatase active site. The potential enzymatic activity of CIB1 is discussed and suggests a mechanism by which it regulates a wide variety of proteins in cells in addition to platelets.
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