Skip to main content
Top
Published in: Heart and Vessels 8/2019

01-08-2019 | Edoxaban | Original Article

Edoxaban suppresses the progression of atrial fibrosis and atrial fibrillation in a canine congestive heart failure model

Authors: Yasushi Tsujino, Tamotsu Sakamoto, Koshi Kinoshita, Yosuke Nakatani, Yoshiaki Yamaguchi, Naoya Kataoka, Kunihiro Nishida, Koichiro Kinugawa

Published in: Heart and Vessels | Issue 8/2019

Login to get access

Abstract

Coagulation factor Xa activates the protease-activated receptor 2 (PAR2) and causes tissue fibrosis; however, the effects of Xa inhibitor edoxaban on atrial fibrosis and atrial fibrillation (AF) have not been investigated. We examined the effect of edoxaban on the progression of atrial fibrosis in a canine congestive heart failure (CHF) model. Beagle dogs were assigned to sham, placebo, and edoxaban groups (n = 6/group). Dogs of the placebo or edoxaban groups received 19 days of medication with daily oral placebo or edoxaban, respectively, followed by 14 days of ventricular tachypacing. Dogs of the sham group had no medication or pacing. Ventricular tachypacing prolonged AF duration in dogs of the placebo group (159 ± 41 s, p < 0.01 vs. sham); however, this effect was suppressed by edoxaban treatment. Compared with the sham group, tachypacing alone also significantly increased the atrial fibrotic area (2.9 ± 0.1% vs. 7.8 ± 0.4%, p < 0.01), PAR2 expression (1.0 ± 0.1 vs. 1.8 ± 0.3, p < 0.05), and atrial fibronectin expression (1.0 ± 0.2 vs. 2.0 ± 0.2, p < 0.01). These responses were suppressed by edoxaban treatment (area 5.9 ± 0.4%, p < 0.01; PAR2 1.1 ± 0.1, p < 0.05; fibronectin 1.2 ± 0.2, p < 0.05 vs. placebo). Edoxaban showed suppressive effects on atrial remodeling, AF progression, and excessive expressions of PAR2 and fibronectin in a canine CHF model. The suppression of the Xa/PAR2 pathway might be a potential pharmacological target of edoxaban.
Literature
1.
go back to reference Iwasaki YK, Nishida K, Kato T, Nattel S (2011) Atrial fibrillation pathophysiology: implications for management. Circulation 124:2264–2274CrossRefPubMed Iwasaki YK, Nishida K, Kato T, Nattel S (2011) Atrial fibrillation pathophysiology: implications for management. Circulation 124:2264–2274CrossRefPubMed
2.
go back to reference Nishida K, Nattel S (2014) Atrial fibrillation compendium: historical context and detailed translational perspective on an important clinical problem. Circ Res 114:1447–1452CrossRefPubMed Nishida K, Nattel S (2014) Atrial fibrillation compendium: historical context and detailed translational perspective on an important clinical problem. Circ Res 114:1447–1452CrossRefPubMed
3.
go back to reference Nattel S, Burestein B, Dobrev D (2008) Atrial remodeling and atrial fibrillation: mechanisms and implications. Circ Arrhythm Electrophysiol 1:62–73CrossRefPubMed Nattel S, Burestein B, Dobrev D (2008) Atrial remodeling and atrial fibrillation: mechanisms and implications. Circ Arrhythm Electrophysiol 1:62–73CrossRefPubMed
4.
go back to reference Burstein B, Comtois P, Michael G, Nishida K, Villeneuve L, Yeh YH, Nattel S (2009) Changes in connexin expression and the atrial fibrillation substrate in congestive heart failure. Circ Res 105:1213–1222CrossRefPubMed Burstein B, Comtois P, Michael G, Nishida K, Villeneuve L, Yeh YH, Nattel S (2009) Changes in connexin expression and the atrial fibrillation substrate in congestive heart failure. Circ Res 105:1213–1222CrossRefPubMed
5.
go back to reference Nishida K, Qi XY, Wakili R, Comtois P, Chaetier D, Harada M, IwasakiYK Romeo P, Maguy A, Dobrev D, Michael G, Talajic M, Nattel S (2011) Mechanisms of atrial tachyarrhythmia associated with coronary artery occlusion in a chronic canine model. Circulation 123:137–146CrossRefPubMed Nishida K, Qi XY, Wakili R, Comtois P, Chaetier D, Harada M, IwasakiYK Romeo P, Maguy A, Dobrev D, Michael G, Talajic M, Nattel S (2011) Mechanisms of atrial tachyarrhythmia associated with coronary artery occlusion in a chronic canine model. Circulation 123:137–146CrossRefPubMed
6.
go back to reference Burstein B, Nattel S (2008) Atrial fibrosis: mechanisms and clinical relevance in atrial fibrillation. J Am Coll Cardiol 51:802–809CrossRefPubMed Burstein B, Nattel S (2008) Atrial fibrosis: mechanisms and clinical relevance in atrial fibrillation. J Am Coll Cardiol 51:802–809CrossRefPubMed
7.
go back to reference Borisoff J, Spronk HM, ten Cate H (2011) The hemostatic system as a modulator of atherosclerosis. N Engl J Med 364:1746–1760CrossRef Borisoff J, Spronk HM, ten Cate H (2011) The hemostatic system as a modulator of atherosclerosis. N Engl J Med 364:1746–1760CrossRef
8.
go back to reference Spronk HM, de Jong AM, Crijns HJ, Schotten U, Van Gelder IC, Ten Cate H (2014) Pleiotropic effects of factor Xa and thrombin: what to expect from novel anticoagulants. Cardiovasc Res 101:344–351CrossRefPubMed Spronk HM, de Jong AM, Crijns HJ, Schotten U, Van Gelder IC, Ten Cate H (2014) Pleiotropic effects of factor Xa and thrombin: what to expect from novel anticoagulants. Cardiovasc Res 101:344–351CrossRefPubMed
9.
go back to reference Bukowska A, Zacharias I, Weinert S, Skopp K, Hartmann C, Huth C, Goette A (2013) Coagulation factor Xa induces an inflammatory signaling by activation of protease-activated receptors in human atrial tissue. Eur J Pharmacol 718:114–123CrossRefPubMed Bukowska A, Zacharias I, Weinert S, Skopp K, Hartmann C, Huth C, Goette A (2013) Coagulation factor Xa induces an inflammatory signaling by activation of protease-activated receptors in human atrial tissue. Eur J Pharmacol 718:114–123CrossRefPubMed
10.
go back to reference Borensztajn K, Peppelenbosch MP, Spek CA (2008) Factor Xa: at the crossroads between coagulation and signaling in physiology and disease. Trends Mol Med 14:429–440CrossRefPubMed Borensztajn K, Peppelenbosch MP, Spek CA (2008) Factor Xa: at the crossroads between coagulation and signaling in physiology and disease. Trends Mol Med 14:429–440CrossRefPubMed
11.
go back to reference Antoniak S, Sparkenbaugh EM, Tencati M, Rojas M, Mackman N, Pawlinski R (2013) Protease activated receptor-2 contributes to heart failure. PLoS ONE 8:e81733CrossRefPubMedPubMedCentral Antoniak S, Sparkenbaugh EM, Tencati M, Rojas M, Mackman N, Pawlinski R (2013) Protease activated receptor-2 contributes to heart failure. PLoS ONE 8:e81733CrossRefPubMedPubMedCentral
12.
go back to reference Borenstajin K, Stiekema J, Nijmeijer S, Reitsma PH, Peppelenbosch MP, Spek CA (2008) Factor Xa stimulates proinflammatory and profibrotic responses in fibroblasts via protease-activated receptor-2 activation. Am J Pathol 172:309–320CrossRef Borenstajin K, Stiekema J, Nijmeijer S, Reitsma PH, Peppelenbosch MP, Spek CA (2008) Factor Xa stimulates proinflammatory and profibrotic responses in fibroblasts via protease-activated receptor-2 activation. Am J Pathol 172:309–320CrossRef
13.
go back to reference Kondo H, Abe I, Fukui A, Saito S, Miyoshi M, Aoki K, Shinohara T, Teshima Y, Yufu K, Takahashi N (2018) Possible role of rivaroxaban in attenuating pressure-overload-induced atrial fibrosis and fibrillation. J Cardiol 71:310–319CrossRefPubMed Kondo H, Abe I, Fukui A, Saito S, Miyoshi M, Aoki K, Shinohara T, Teshima Y, Yufu K, Takahashi N (2018) Possible role of rivaroxaban in attenuating pressure-overload-induced atrial fibrosis and fibrillation. J Cardiol 71:310–319CrossRefPubMed
14.
go back to reference Bode MF, Auriemma AC, Grove SP, Hisada Y, Rennie A, Bode WD, Vora R, Subramaniam S, Cooley B, Andrade-Gordon P, Antoniak S, Mackman N (2018) The factor Xa inhibitor rivaroxaban reduces cardiac dysfunction in a mouse model of myocardial infarction. Thromb Res 167:128–134CrossRefPubMed Bode MF, Auriemma AC, Grove SP, Hisada Y, Rennie A, Bode WD, Vora R, Subramaniam S, Cooley B, Andrade-Gordon P, Antoniak S, Mackman N (2018) The factor Xa inhibitor rivaroxaban reduces cardiac dysfunction in a mouse model of myocardial infarction. Thromb Res 167:128–134CrossRefPubMed
15.
go back to reference Imano H, Kato R, Tanikawa S, Yoshimura F, Nomura A, Ijiri Y, Yamaguchi T, Izumi Y, Yoshiyama M, Hayashi T (2018) Factor Xa inhibition by rivaroxaban attenuates cardiac remodeling due to intermittent hypoxia. J Pharmacol Sci 137:274–282CrossRefPubMed Imano H, Kato R, Tanikawa S, Yoshimura F, Nomura A, Ijiri Y, Yamaguchi T, Izumi Y, Yoshiyama M, Hayashi T (2018) Factor Xa inhibition by rivaroxaban attenuates cardiac remodeling due to intermittent hypoxia. J Pharmacol Sci 137:274–282CrossRefPubMed
16.
go back to reference Nishida K, Michael G, Dobrev D, Nattel S (2010) Animal models for atrial fibrillation: clinical insights and scientific opportunities. Europace 12:160–172CrossRefPubMed Nishida K, Michael G, Dobrev D, Nattel S (2010) Animal models for atrial fibrillation: clinical insights and scientific opportunities. Europace 12:160–172CrossRefPubMed
17.
go back to reference Hanna N, Cardin S, Leung TK, Nattel S (2004) Differences in atrial versus ventricular remodeling in dogs with ventricular tachypacing-induced congestive heart failure. Cardiovasc Res 63:236–244CrossRefPubMed Hanna N, Cardin S, Leung TK, Nattel S (2004) Differences in atrial versus ventricular remodeling in dogs with ventricular tachypacing-induced congestive heart failure. Cardiovasc Res 63:236–244CrossRefPubMed
18.
go back to reference Furugohri T, Isobe K, Honda Y, Matsumoto C, Sugiyama N, Nagahara T, Morishima Y, Shibano T (2008) Du-176b, a potent and orally active factor Xa inhibitor: in vitro and in vivo pharmacological profiles. J Thromb Haemost 6:1542–1549PubMed Furugohri T, Isobe K, Honda Y, Matsumoto C, Sugiyama N, Nagahara T, Morishima Y, Shibano T (2008) Du-176b, a potent and orally active factor Xa inhibitor: in vitro and in vivo pharmacological profiles. J Thromb Haemost 6:1542–1549PubMed
19.
go back to reference Cardin S, Libby E, Pelletier P, Bouter SL, Takeshita A, Meur NL, Leger J, Demolombe S, Ponton A, Glass L, Nattel S (2007) Contrasting gene expression profiles in two canine models of atrial fibrillation. Circ Res 100:425–433CrossRefPubMed Cardin S, Libby E, Pelletier P, Bouter SL, Takeshita A, Meur NL, Leger J, Demolombe S, Ponton A, Glass L, Nattel S (2007) Contrasting gene expression profiles in two canine models of atrial fibrillation. Circ Res 100:425–433CrossRefPubMed
20.
go back to reference Cardin S, Pelletier P, Libby E, Bouter SL, Xiao L, Kaab S, Demolombe S, Glass L, Nattel S (2008) Marked differences between atrial and ventricular gene-expression remodeling in dogs with experimental heart failure. J Mol Cell Cardiol 45:821–831CrossRefPubMed Cardin S, Pelletier P, Libby E, Bouter SL, Xiao L, Kaab S, Demolombe S, Glass L, Nattel S (2008) Marked differences between atrial and ventricular gene-expression remodeling in dogs with experimental heart failure. J Mol Cell Cardiol 45:821–831CrossRefPubMed
21.
go back to reference Lee KW, Everett T, Rahmutula D, Guerra JM, Wilson ED, Ding C, Olgin JE (2006) Pirfenidone prevents the development of a vulnerable substrate for atrial fibrillation in a canine model of heart failure. Circulation 114:1703–1712CrossRefPubMedPubMedCentral Lee KW, Everett T, Rahmutula D, Guerra JM, Wilson ED, Ding C, Olgin JE (2006) Pirfenidone prevents the development of a vulnerable substrate for atrial fibrillation in a canine model of heart failure. Circulation 114:1703–1712CrossRefPubMedPubMedCentral
22.
go back to reference Bukowska A, Zachrias I, Weinert S, Skopp K, Hartmann C, Huth C, Goette A (2013) Coagulation factor Xa induces an inflammatory signaling by activation of protease-activated receptors in human atrial tissue. Eur J Pharmacol 718:114–123CrossRefPubMed Bukowska A, Zachrias I, Weinert S, Skopp K, Hartmann C, Huth C, Goette A (2013) Coagulation factor Xa induces an inflammatory signaling by activation of protease-activated receptors in human atrial tissue. Eur J Pharmacol 718:114–123CrossRefPubMed
23.
go back to reference Maze SS, Kotler MN, Parry WR (1989) Flow characteristics in the dilated left ventricular with thrombus: qualitative and quantitative Doppler analysis. J Am Coll Cardiol 13:873–881CrossRefPubMed Maze SS, Kotler MN, Parry WR (1989) Flow characteristics in the dilated left ventricular with thrombus: qualitative and quantitative Doppler analysis. J Am Coll Cardiol 13:873–881CrossRefPubMed
24.
go back to reference Yamamoto K, Ikeda U, Furuhashi K, Irokawa M, Nakayama T, Shimada K (1995) The coagulation system is activated in idiopathic cardiomyopathy. J Am Coll Cardiol 25:1634–1640CrossRefPubMed Yamamoto K, Ikeda U, Furuhashi K, Irokawa M, Nakayama T, Shimada K (1995) The coagulation system is activated in idiopathic cardiomyopathy. J Am Coll Cardiol 25:1634–1640CrossRefPubMed
25.
go back to reference Gustavsson CG, Persson SU, Larsson H, Persson S (1994) Changed blood rheology in patients with idiopathic dilated cardiomyopathy. Angiology 45:107–111CrossRefPubMed Gustavsson CG, Persson SU, Larsson H, Persson S (1994) Changed blood rheology in patients with idiopathic dilated cardiomyopathy. Angiology 45:107–111CrossRefPubMed
26.
go back to reference Hashikata T, Tojo M, Namba S, Kitasato L, Kameda R, Murakami M, Niwano H, Shimohama T, Tojo T, Ako J (2015) Rivaroxaban inhibits fibrotic progression in vitro. Int Heart J 56:544–550CrossRefPubMed Hashikata T, Tojo M, Namba S, Kitasato L, Kameda R, Murakami M, Niwano H, Shimohama T, Tojo T, Ako J (2015) Rivaroxaban inhibits fibrotic progression in vitro. Int Heart J 56:544–550CrossRefPubMed
27.
go back to reference Ritchie E, Saka M, MacKenzie C, Drummond R, Wheeler-Jones C, Kanke T, Plevin R (2007) Cytokine upregulation of proteinase-activated-receptors 2 and 4 expression mediated by p38 MAP kinase and inhibitory kappa B kinase β in human endothelial cells. Br J Pharmacol 150:1044–1054CrossRefPubMedPubMedCentral Ritchie E, Saka M, MacKenzie C, Drummond R, Wheeler-Jones C, Kanke T, Plevin R (2007) Cytokine upregulation of proteinase-activated-receptors 2 and 4 expression mediated by p38 MAP kinase and inhibitory kappa B kinase β in human endothelial cells. Br J Pharmacol 150:1044–1054CrossRefPubMedPubMedCentral
28.
go back to reference Qi XY, Yeh YH, Xiao L, Burstein B, Maguy A, Chaetier D, Villeneuve LR, Brundel BJ, Dobrev D, Nattel S (2008) Cellular signaling underlying atrial tachycardia remodeling of L-type calcium current. Circ Res 103:845–854CrossRefPubMed Qi XY, Yeh YH, Xiao L, Burstein B, Maguy A, Chaetier D, Villeneuve LR, Brundel BJ, Dobrev D, Nattel S (2008) Cellular signaling underlying atrial tachycardia remodeling of L-type calcium current. Circ Res 103:845–854CrossRefPubMed
29.
go back to reference Nattel S, Li D (2000) Ionic remodeling in the heart: pathophysiological significance and new therapeutic opportunities for atrial fibrillation. Circ Res 87:440–447CrossRefPubMed Nattel S, Li D (2000) Ionic remodeling in the heart: pathophysiological significance and new therapeutic opportunities for atrial fibrillation. Circ Res 87:440–447CrossRefPubMed
30.
go back to reference Allessie M, Ausma J, Schotten U (2002) Electrical, contractile and structural remodeling during atrial fibrillation. Cardiovasc Res 54:230–246CrossRef Allessie M, Ausma J, Schotten U (2002) Electrical, contractile and structural remodeling during atrial fibrillation. Cardiovasc Res 54:230–246CrossRef
31.
go back to reference Li D, Fareh S, Leung TK, Nattel S (1999) Promotion of atrial fibrillation by heart failure in dogs: atrial remodeling of a different sort. Circulation 100:87–95CrossRefPubMed Li D, Fareh S, Leung TK, Nattel S (1999) Promotion of atrial fibrillation by heart failure in dogs: atrial remodeling of a different sort. Circulation 100:87–95CrossRefPubMed
32.
go back to reference Cha TJ, Ehrlich JR, Zhang L, Shi Y-F, Tardif J-C, Leung T-K, Nattel S (2004) Dissociation between ironic remodeling and ability to sustain atrial fibrillation during recovery from experimental congestive heart failure. Circulation 109:412–418CrossRefPubMed Cha TJ, Ehrlich JR, Zhang L, Shi Y-F, Tardif J-C, Leung T-K, Nattel S (2004) Dissociation between ironic remodeling and ability to sustain atrial fibrillation during recovery from experimental congestive heart failure. Circulation 109:412–418CrossRefPubMed
33.
go back to reference Goette A, Schon N, Kirchhof P, Breithardt G, Fetsch T, Hausler KG, Klein HU, Steinbeck G, Wegscheider K, Meinertz T (2012) Angiotensin II-antagonist in paroxysmal atrial fibrillation (ANTIPAF) trial. Circ Arrythm Electrophysiol 5:43–51CrossRef Goette A, Schon N, Kirchhof P, Breithardt G, Fetsch T, Hausler KG, Klein HU, Steinbeck G, Wegscheider K, Meinertz T (2012) Angiotensin II-antagonist in paroxysmal atrial fibrillation (ANTIPAF) trial. Circ Arrythm Electrophysiol 5:43–51CrossRef
Metadata
Title
Edoxaban suppresses the progression of atrial fibrosis and atrial fibrillation in a canine congestive heart failure model
Authors
Yasushi Tsujino
Tamotsu Sakamoto
Koshi Kinoshita
Yosuke Nakatani
Yoshiaki Yamaguchi
Naoya Kataoka
Kunihiro Nishida
Koichiro Kinugawa
Publication date
01-08-2019
Publisher
Springer Japan
Published in
Heart and Vessels / Issue 8/2019
Print ISSN: 0910-8327
Electronic ISSN: 1615-2573
DOI
https://doi.org/10.1007/s00380-019-01377-2

Other articles of this Issue 8/2019

Heart and Vessels 8/2019 Go to the issue