AI Article Synopsis

  • There are significant differences between the amino acid sequences of echistatin and eristostatin, both of which inhibit certain integrins, with echistatin being a more potent antagonist for three specific integrin types.
  • Researchers created hybrid molecules from these proteins to determine which parts of echistatin are important for recognizing different integrins, specifically testing their effects on cell adhesion.
  • Results indicated that certain amino acids, particularly Asp(27) and Met(28), are crucial for echistatin's recognition of the integrins, and changes to these residues can impact the effectiveness of inhibition, while also suggesting distinct interaction sites for the C terminus of echistatin on integrins.

Article Abstract

There are key differences between the amino acid residues of the RGD loops and the C termini of echistatin, a potent antagonist of alpha(IIb)beta(3), alpha(v)beta(3) and alpha(5)beta(1), and eristostatin, a similar disintegrin selectively inhibiting alpha(IIb)beta(3). In order to identify echistatin motifs required for selective recognition of alpha(v)beta(3) and alpha(5)beta(1) integrins, we expressed recombinant echistatin, eristostatin, and 15 hybrid molecules. We tested them for their ability to inhibit adhesion of different cell lines to fibronectin and von Willebrand factor and to express ligand-induced binding site epitope. The results showed that Asp(27) and Met(28) support recognition of both alpha(v)beta(3) and alpha(5)beta(1). Replacement of Met(28) with Asn completely abolished echistatin's ability to recognize each of the integrins, while replacement of Met(28) with Leu selectively decreased echistatin's ability to recognize alpha(5)beta(1) only. Eristostatin in which C-terminal WNG sequence was substituted with HKGPAT exhibited new activity with alpha(5)beta(1), which was 10-20-fold higher than that of wild type eristostatin. A hypothesis is proposed that the C terminus of echistatin interacts with separate sites on beta(1) and beta(3) integrin molecules.

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Source
http://dx.doi.org/10.1074/jbc.274.53.37809DOI Listing

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