Evaluation of left ventricular dimension and systolic function by standard transthoracic echocardiography before and 24-hours after percutaneous closure of patent ductus arteriosus in 120 dogs
Autoři:
Diego Piantedosi aff001; Alfonso Piscitelli aff002; Angela De Rosa aff001; Blanca Serrano Lopez aff003; Marta Claretti aff003; Elisabetta Boz aff003; Laura Mazzoni aff003; Iolanda Navalon Calvo aff004; Paolo Ciaramella aff001; Claudio Bussadori aff003
Působiště autorů:
Department of Veterinary Medicine and Animal Productions, University of Naples Federico II, Naples, Italy
aff001; Department of Agricultural Sciences, University of Naples Federico II, Naples, Italy
aff002; Clinica Veterinaria Gran Sasso, Milano, Italy
aff003; Ars Veterinaria, Barcelona, Spain
aff004
Vyšlo v časopise:
PLoS ONE 14(10)
Kategorie:
Research Article
prolekare.web.journal.doi_sk:
https://doi.org/10.1371/journal.pone.0223676
Souhrn
One hundred and twenty dogs were enrolled to value the effect of loading condition changes on left ventricular volumes before and 24-hours after the patent ductus arteriosus (PDA) occlusion by Amplatzer Canine Duct Occluder (ACDO) using standard echocardiography. The animals were divided in pure breed (n. 94) and mixed breed (n. 26); subsequently, the pure breed dogs were divided on the basis of the size of the breed of belonging in 3 groups (small size n. 36; medium size n. 8; large size n. 50). Moreover, the animals were divided in three classes based on their age: until 6 months; 6–12 months; over 12 months. A significant reduction of all the examined parameters (left ventricle internal diameter at end-diastole—LVIDd; left ventricle internal diameter at end-systole—LVIDs; end-diastolic volume—EDV; end-systolic volume—ESV; end-diastolic volume index—EDVI; end-systolic volume index—ESVI; fractional shortening—FS) was observed after ductal closure. Twenty-four hours after the closure, the evaluation of the relative percentage difference (RPD) of the echocardiographic parameters showed a significant reduction, higher in small size breed than in large size breed dogs. No significant difference related to breed size was observed only for RPD_FS variable. A significant interaction effect, between breed size and age classes, was observed only for RPD_EDVI (F = 3.39; p = 0.039). Until six months of age there was no significant difference in RPD_EDVI reduction, but over 6 months a significant reduction between small size and large size breed dogs at 24-hours from the occlusion was observed. In conclusion, our data seem to indicate that small breed dogs show a greater tolerance to congenital volume overload than large breed dogs, and this finding could be justify a delay of PDA closure in order to simplify the interventional procedure.
Klíčová slova:
Pets and companion animals – Dogs – Veterinary diseases – Veterinary medicine – Echocardiography – Hemodynamics – Veterinary diagnostics – Cardiac ventricles
Zdroje
1. Buchanan JW. Prevalence of cardiovascular disorders. In: Fox PR, Sisson D, Moise NS, editors. Canine and feline cardiology. 2nd ed. Philadelphia: WB Saunders. 1999:457–470.
2. Oliveira P, Domenech O, Silva J, Vannini S, Bussadori R, Bussadori C. Retrospective review of congenital heart disease in 976 dogs. Journal of Veterinary Internal Medicine. 2011; 25(3):477–83. https://doi.org/10.1111/j.1939-1676.2011.0711.x 21418326
3. Clyman RI. Mechanisms regulating the ductus arteriosus. Biology of the Neonate. 2006; 89(4):330–5. https://doi.org/10.1159/000092870 16770073
4. Gittenberger-de-Groot AC, Strengers JL, Mentink M, Poelmann RE, Patterson DF. Histologic studies on normal and persistent ductus arteriosus in the dog. Journal of the American College of Cardiology. 1985; 6(2):394–404. https://doi.org/10.1016/S0735-1097(85)80178-9 4019926
5. Buchanan JW. Patent ductus arteriosus morphology, pathogenesis, types and treatment. Journal of Veterinary Cardiology. 2001; 3(1):7–16. https://doi.org/10.1016/S1760-2734(06)70010-8 19081333
6. Buchanan J, Patterson D. Etiology of patent ductus arteriosus in dogs. Journal of Veterinary Internal Medicine. 2003; 17(2):167–71. https://doi.org/10.1111/j.1939-1676.2003.tb02429.x 12683616
7. Boon J. Congenital shunts and AV valve dysplasia. Patent ductus arteriosus. In: Boon J, editor. Veterinary echocardiography. 2nd ed. Ames, Iowa: Wiley-Blackwell; 2011. pp. 450–7.
8. Nguyenba TP, Tobias AH. Minimally invasive per-catheter patent ductus arteriosus occlusion in dogs using a prototype duct occluder. Journal of Veterinary Internal Medicine. 2008; 22(1):129–134. https://doi.org/10.1111/j.1939-1676.2007.0009.x 18289299
9. Singh MK, Kittleson MD, Kass PH, Griffiths LG. Occlusion devices and approaches in canine patent ductus arteriosus: comparison of outcomes. Journal of Veterinary Internal Medicine. 2012; 26(1):85–92. https://doi.org/10.1111/j.1939-1676.2011.00859.x 22211471
10. Boon J. Evaluation of size, function and hemodynamics. In: Boon J, editor. Veterinary echocardiography. 2nd ed. Ames, Iowa: Wiley-Blackwell; 2011. pp. 153–266.
11. Jeong YH, Yun TJ, Song JM, Park JJ, Seo DM, Koh JK, et al. Left ventricular remodeling and change of systolic function after closure of patent ductus arteriosus in adults: device and surgical closure. American Heart Journal. 2007; 154(3):436–40. https://doi.org/10.1016/j.ahj.2007.04.045 17719286
12. Gupta S, Krishnamooorthy K, Tharakan JA, Sivasankaran S, Sanjay G, Bijulal S, et al. Percutaneous closure of patent ductus arteriosus in children: immediate and short termshort-term changes in left ventricular systolic and diastolic function. Annals of Pediatric Cardiology. 2011; 4(2):139–44. https://doi.org/10.4103/0974-2069.84652 21976873
13. Hamabe L, Kim S, Yoshiyuki R, Fukayama T, Nakata TM, Fukushima R, et al. Echocardiographic evaluation of myocardial changes observed after closure of patent ductus arteriosus in dogs. Journal of Veterinary Internal Medicine. 2015; 29(1):126–31. https://doi.org/10.1111/jvim.12517 25594430
14. Saunders AB, Gordon SG, Boggess MM, Miller MW. Long-Term outcome in dogs with patent ductus arteriosus: 520 cases (1994–2009). Journal of Veterinary Internal Medicine. 2014;28(2):401–10. https://doi.org/10.1111/jvim.12267 24372855
15. Stauthammer CD, Tobias AH, Leeder DB, Krüger MU. Structural and functional cardiovascular changes and their consequences following interventional patent ducutus arteriosus occlusion in dogs: 24 cases (2000–2006). Journal of American Veterinary Medical Association. 2013; 242(12):1722–6. https://doi.org/10.2460/javma.242.12.1722 23725436
16. Spalla I, Locatelli C, Zanaboni AM, Brambilla P, Bussadori C. Echocardiographic assessment of cardiac function by conventional and speckle-tracking echocardiography in dogs with patent ductus arteriosus. Journal of Veterinary Internal Medicine. 2016; 30(3):706–13. https://doi.org/10.1111/jvim.13938 27177624
17. Spalla I, Locatelli C, Zanaboni AM, Brambilla P, Bussadori C. Speckle-tracking echocardiography in dogs with patent ductus arteriosus: effect of percutaneous closure on cardiac mechanics. Journal of Veterinary Internal Medicine. 2016; 30(3):714–21. https://doi.org/10.1111/jvim.13919 27177625
18. Tobias AH, Stauthammer CD. Minimally invasive per-catheter occlusion and dilation procedures for congenital cardiovascular abnormalities in dogs. Veterinary Clinics of North America: Small Animal Practice. 2010; 40(4):581–603. https://doi.org/10.1016/j.cvsm.2010.03.009 20610013
19. Thomas WP, Gaber CE, Jacobs GJ, Kaplan PM, Lombard CW, Moise NS, et al. Recommendations for standards in transthoracic two-dimensional echocardiography in the dog and cat. Echocardiography Committee of the Specialty of Cardiology, American College of Veterinary Internal Medicine. Journal of Veterinary Internal Medicine. 1993; 7(4):247–52. https://doi.org/10.1111/j.1939-1676.1993.tb01015.x 8246215
20. Lombard CW. Normal values of the canine M-mode echocardiogram. American Journal of Veterinary Research. 1984; 45(10):2015–8. 6497098
21. R Core Team. R: a language and environment for statistical computing. Version 3.5.1. R Foundation for Statistical Computing. http://www.R-project.org/
22. Federation Cynologique Internazionale. http://www.fci.be/en/ Last access 10 January 2019.
23. Campbell FE, Thomas WP, Miller SJ, Berger D, Kittleson MD. Immediate and late outcomes of transarterial coil occlusion of patent ductus arteriosus in dogs. Journal of Veterinary Internal Medicine. 2006; 20(1):83–96. https://doi.org/10.1111/j.1939-1676.2006.tb02827.x 16496927
24. Schneider DJ. The patent ductus arteriosus in term infants, children and adults. Seminars in Perinatology. 2012; 36:146(2)-53. https://doi.org/10.1053/j.semperi.2011.09.025 22414886
25. Kittleson MD. Patent ductus arteriosus. In: Kittleson MD, Kienle RD, editors. Small animal cardiovascular medicine. St. Louis: Mosby; 1998. pp. 218–230.
26. Rudolph AM. Myocardial growth before and after birth: Clinical implications. Acta Paediatrica. 2000; 89(2):129–33. https://doi.org/10.1111/j.1651-2227.2000.tb01201.x 10709876
27. Kittleson MD. Pathophysiology of heart failure. Heart failure secondary to patent ductus arteriosus. In: Kittleson MD, Kienle RD, editors. Small Animal Cardiovascular Medicine. St. Louis: Mosby; 1998. pp. 136–48.
28. Eerola A, Jokinen E, Boldt T, Pihkala J. The influence of percutaneous closure of patent ductus arteriosus on left ventricular size and function, a prospective study using two- and three-dimensional echocardiography and measurements of serum natriuretic peptides. Journal of the American College of Cardiology. 2006; 47(5):1060–6. https://doi.org/10.1016/j.jacc.2005.09.067 16516094
29. Noori S. Pros and cons of patent ductus arteriosus ligation: hemodynamic changes and other morbidities after patent ductus arteriosus ligation. Seminars in Perinatology. 2012; 36(2):139–145. https://doi.org/10.1053/j.semperi.2011.09.024 22414885
30. de Waal K, Phad N, Collins N, Boyle A. Cardiac remodeling in preterm infants with prolonged exposure to a patent ductus arteriosus. Congenital Heart Disease. 2017; 12(3):364–72. https://doi.org/10.1111/chd.12454 28225202
31. Takahashi Y, Harada K, Ishida A, Tamura M, Tanaka T, Takada G. Changes in left ventricular volume and systolic function before and after the closure of ductus arteriosus in full-term infants. Early Human Development. 1996; 44(1):77–85. https://doi.org/10.1016/0378-3782(95)01695-3 8821898
32. Nagata H, Ihara K, Yamamura K, Tanoue Y, Shiokawa Y, Tominaga R, et al. Left ventricular efficiency after ligation of patent ductus arteriosus for premature infants. Journal of Thoracic and Cardiovascular Surgery. 2013; 146(6):1353–8. https://doi.org/10.1016/j.jtcvs.2013.02.019 23473013
33. Koitabashi N, Kass DA. Reverse remodeling in heart failure: mechanisms and therapeutic opportunities. Nature Reviews Cardiology. 2012; 9(3):147–57. https://doi.org/10.1038/nrcardio.2011.172 22143079
34. Van Israel N. Dukes-McEwan J French AT. Long-term follow-up of dogs with patent ductus arteriosus. Journal of Small Animal Practice. 2003; 44(11):480–90. https://doi.org/10.1111/j.1748-5827.2003.tb00108.x 14635960
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