» Articles » PMID: 28743742

Disease-causing Mutations in the Serpin Antithrombin Reveal a Key Domain Critical for Inhibiting Protease Activities

Overview
Journal J Biol Chem
Specialty Biochemistry
Date 2017 Jul 27
PMID 28743742
Citations 8
Authors
Affiliations
Soon will be listed here.
Abstract

Antithrombin mainly inhibits factor Xa and thrombin. The reactive center loop (RCL) is crucial for its interactions with its protease targets and is fully inserted into the A-sheet after its cleavage, causing translocation of the covalently linked protease to the opposite end of the A-sheet. Antithrombin variants with altered RCL hinge residues behave as substrates rather than inhibitors, resulting in stoichiometries of inhibition greater than one. Other antithrombin residues have been suggested to interfere with RCL insertion or the stability of the antithrombin-protease complex, but available crystal structures or mutagenesis studies have failed to identify such residues. Here, we characterized two mutations, S365L and I207T, present in individuals with type II antithrombin deficiency and identified a new antithrombin functional domain. S365L did not form stable complexes with thrombin or factor Xa, and the I207T/I207A variants inhibited both proteases with elevated stoichiometries of inhibition. Close proximity of Ile-207 and Ser-365 to the inserted RCL suggested that the preferred reaction of these mutants as protease substrates reflects an effect on the rate of the RCL insertion and protease translocation. However, both residues lie within the final docking site for the protease in the antithrombin-protease complex, supporting the idea that the enhanced substrate reactions may result from an increased dissociation of the final complexes. Our findings demonstrate that the distal end of the antithrombin A-sheet is crucial for the last steps of protease inhibition either by affecting the rate of RCL insertion or through critical interactions with proteases at the end of the A-sheet.

Citing Articles

Identification of two point mutations associated with inherited antithrombin deficiency.

Lai S, Chang C, Lee H, Chen Y Thromb J. 2024; 22(1):107.

PMID: 39627773 PMC: 11613604. DOI: 10.1186/s12959-024-00677-6.


Identification and characterization of two SERPINC1 mutations causing congenital antithrombin deficiency.

Wang H, Ruan D, Wu M, Ji Y, Hu X, Wu Q Thromb J. 2023; 21(1):3.

PMID: 36624481 PMC: 9830717. DOI: 10.1186/s12959-022-00443-6.


N-Glycosylation as a Tool to Study Antithrombin Secretion, Conformation, and Function.

Aguila S, Noto R, Luengo-Gil G, Espin S, Bohdan N, de la Morena-Barrio M Int J Mol Sci. 2021; 22(2).

PMID: 33419227 PMC: 7825591. DOI: 10.3390/ijms22020516.


Thr90Ser Mutation in Antithrombin is Associated with Recurrent Thrombosis in a Heterozygous Carrier.

Lu Y, Villoutreix B, Biswas I, Ding Q, Wang X, Rezaie A Thromb Haemost. 2020; 120(7):1045-1055.

PMID: 32422680 PMC: 7444675. DOI: 10.1055/s-0040-1710590.


Flight muscles degenerate by programmed cell death after migration in the wheat aphid, Sitobion avenae.

Feng H, Guo X, Sun H, Zhang S, Xi J, Yin J BMC Res Notes. 2019; 12(1):672.

PMID: 31639041 PMC: 6805507. DOI: 10.1186/s13104-019-4708-z.


References
1.
Nordenman B, Nystrom C, BJORK I . The size and shape of human and bovine antithrombin III. Eur J Biochem. 1977; 78(1):195-203. DOI: 10.1111/j.1432-1033.1977.tb11730.x. View

2.
Olson S, Richard B, Izaguirre G, Schedin-Weiss S, Gettins P . Molecular mechanisms of antithrombin-heparin regulation of blood clotting proteinases. A paradigm for understanding proteinase regulation by serpin family protein proteinase inhibitors. Biochimie. 2010; 92(11):1587-96. PMC: 2974786. DOI: 10.1016/j.biochi.2010.05.011. View

3.
Izaguirre G, Olson S . Residues Tyr253 and Glu255 in strand 3 of beta-sheet C of antithrombin are key determinants of an exosite made accessible by heparin activation to promote rapid inhibition of factors Xa and IXa. J Biol Chem. 2006; 281(19):13424-13432. DOI: 10.1074/jbc.M600415200. View

4.
Olson S, BJORK I, Sheffer R, Craig P, SHORE J, CHOAY J . Role of the antithrombin-binding pentasaccharide in heparin acceleration of antithrombin-proteinase reactions. Resolution of the antithrombin conformational change contribution to heparin rate enhancement. J Biol Chem. 1992; 267(18):12528-38. View

5.
Dementiev A, Petitou M, Herbert J, Gettins P . The ternary complex of antithrombin-anhydrothrombin-heparin reveals the basis of inhibitor specificity. Nat Struct Mol Biol. 2004; 11(9):863-7. DOI: 10.1038/nsmb810. View