Literature DB >> 23106217

α(V)β(3) integrin crystal structures and their functional implications.

Xianchi Dong1, Li-Zhi Mi, Jianghai Zhu, Wei Wang, Ping Hu, Bing-Hao Luo, Timothy A Springer.   

Abstract

Many questions about the significance of structural features of integrin α(V)β(3) with respect to its mechanism of activation remain. We have determined and re-refined crystal structures of the α(V)β(3) ectodomain linked to C-terminal coiled coils (α(V)β(3)-AB) and four transmembrane (TM) residues in each subunit (α(V)β(3)-1TM), respectively. The α(V) and β(3) subunits with four and eight extracellular domains, respectively, are bent at knees between the integrin headpiece and lower legs, and the headpiece has the closed, low-affinity conformation. The structures differ in the occupancy of three metal-binding sites in the βI domain. Occupancy appears to be related to the pH of crystallization, rather than to the physiologic regulation of ligand binding at the central, metal ion-dependent adhesion site. No electron density was observed for TM residues and much of the α(V) linker. α(V)β(3)-AB and α(V)β(3)-1TM demonstrate flexibility in the linker between their extracellular and TM domains, rather than the previously proposed rigid linkage. A previously postulated interface between the α(V) and β(3) subunits at their knees was also not supported, because it lacks high-quality density, required rebuilding in α(V)β(3)-1TM, and differed markedly between α(V)β(3)-1TM and α(V)β(3)-AB. Together with the variation in domain-domain orientation within their bent ectodomains between α(V)β(3)-AB and α(V)β(3)-1TM, these findings are compatible with the requirement for large structural changes, such as extension at the knees and headpiece opening, in conveying activation signals between the extracellular ligand-binding site and the cytoplasm.

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Year:  2012        PMID: 23106217      PMCID: PMC3495331          DOI: 10.1021/bi300734n

Source DB:  PubMed          Journal:  Biochemistry        ISSN: 0006-2960            Impact factor:   3.162


  56 in total

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3.  The novel S527F mutation in the integrin beta3 chain induces a high affinity alphaIIbbeta3 receptor by hindering adoption of the bent conformation.

Authors:  Karen Vanhoorelbeke; Simon F De Meyer; Inge Pareyn; Chantal Melchior; Sebastien Plançon; Christiane Margue; Olivier Pradier; Pierre Fondu; Nelly Kieffer; Timothy A Springer; Hans Deckmyn
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4.  Structure of integrin alpha5beta1 in complex with fibronectin.

Authors:  Junichi Takagi; Konstantin Strokovich; Timothy A Springer; Thomas Walz
Journal:  EMBO J       Date:  2003-09-15       Impact factor: 11.598

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Authors:  Anthony N Vomund; Sarah Stuhlsatz-Krouper; Julie Dimitry; Yuhua Song; William A Frazier
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10.  The structure of a receptor with two associating transmembrane domains on the cell surface: integrin alphaIIbbeta3.

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  32 in total

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6.  A Conserved Ectodomain-Transmembrane Domain Linker Motif Tunes the Allosteric Regulation of Cell Surface Receptors.

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Review 8.  αIIbβ3: structure and function.

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9.  Observation of Giant Conductance Fluctuations in a Protein.

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10.  Intracellular Pathways Involved in Bone Regeneration Triggered by Recombinant Silk-silica Chimeras.

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