ECOCARDIOGRAFIA DOPPLER TISULAR: UN NUEVO ESTANDAR PARA LA EVALUACION DE LA FUNCION MIOCARDICA




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ECOCARDIOGRAFIA DOPPLER TISULAR: UN NUEVO ESTANDAR PARA LA EVALUACION DE LA FUNCION MIOCARDICA

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La ecocardiografía Doppler tisular aporta información útil y precisa para la valoración de la función sistólica y diastólica de los ventrículos.
mehtaken9.jpg Autor:
Sudhir Ken Mehta
Columnista Experto de SIIC

Institución:
Chairman of Pediatrics Fairview Hospital Cleveland Clinic Health System


Artículos publicados por Sudhir Ken Mehta
Coautor
Adel Younoszai, MD.* 
Department of Pediatrics and Heart and Vascular Center, Fairview Hospital & Cleveland Clinic Foundation, Cleveland Clinic Health System, Cleveland, Ohio*
Recepción del artículo
5 de Enero, 2005
Aprobación
15 de Febrero, 2005
Primera edición
15 de Diciembre, 2005
Segunda edición, ampliada y corregida
7 de Junio, 2021

Resumen
La ecocardiografía Doppler tisular aporta información precisa sobre la función sistólica segmentaria y global y sobre la función diastólica. Además, ofrece información que, por lo general, no está disponible por los métodos estándar de flujo sanguíneo Doppler. Se está convirtiendo en una herramienta clínica valiosa para la valoración de la asincronía mecánica intraventricular, la alteración de la microarquitectura del miocardio, el rechazo del trasplante y las presiones de enclavamiento de la arteria pulmonar.

Palabras clave
Función cardíaca, ecocardiografía Doppler, asincronía, miocardio, arquitectura miocárdica


Artículo completo

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Extensión:  +/-10.9 páginas impresas en papel A4
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Abstract
Tissue Doppler echocardiography provides reliable information on segmental and global ventricular systolic and diastolic function. Additionally, it offers information that, in general, is not available by standard blood flow Doppler methods. It is also becoming a valuable clinical tool in the assessment of intraventricular mechanical asynchrony, altered myocardial architecture, transplant rejection, and pulmonary artery wedge pressures.

Key words
Cardiac function, Doppler echocardiography, asynchrony, myocardium, myocardial architecture


Full text
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Clasificación en siicsalud
Artículos originales > Expertos del Mundo >
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Especialidades
Principal: Cardiología, Diagnóstico por Imágenes
Relacionadas: Medicina Interna



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Bibliografía del artículo
  1. Sutherland GR, Stewart MJ, Grounstroem KWE, et al. Color Doppler Myocardial imaging: A new technique for the assessment of myocardial function. J Am Soc Echocardiogr 1994;7:441-458.
  2. Edvardsen T, Gerber BL, Garot J, et al. Quantitative assessment of intrinsic regional myocardial deformation by Doppler strain rate echocardiography in humans: validation against three-dimensional tagged magnetic resonance imaging. Circulation 2002;106:50-56.
  3. Voigt J, Exner B, Schmiedehausen K, et al. Strain-rate imaging during dobutamine stress echocardiography provides objective evidence of inducible ischemia. Circulation 2003;107:2120-2126.
  4. Waggoner AD, Bierig SM. Tissue Doppler Imaging: A useful echocardiographic method for the cardiac sonographer to assess systolic and diastolic ventricular function. J Am Soc Echocardiogr 2001;14:1143-1152.
  5. Gilman G, Khandheria BK, Hagen ME, et al. Strain rate and Strain: A step-by-step approach to image and data acauisition. J Am Soc Echocardiogr 2004;17:1011-1020.
  6. Sun JP, Popovic ZB, Greenberg NL, et al. Noninvasive quantification of regional myocardial function using Doppler-derived velocity, displacement, strain rate, and strain in healthy volunteers: effects of aging. J Am Soc Echocardiogr 2004;17:132-138.
  7. Wilkenshoff UM, Hatle L, Sovany A, et al. Age-dependent changes in regional diastolic function evaluated by color Doppler myocardial imaging: a comparison with pulsed Doppler indexes of global function. J Am Soc Echocardiogr 2001;14:959-969.
  8. Tighe DA, Vinch CS, Hill JC, et al. Influence of age on assessment of diastolic function by Doppler tissue imaging. Am J Cardiol 2003;91:254-257.
  9. Yamada H, Oki T, Mishiro Y, et al. Effect of aging on diastolic left ventricular myocardial velocities measured by pulsed tissue Doppler imaging in healthy subjects. J Am Soc Echocardiogr 1999;12:574-581.
  10. De Boeck BWL, Cramer MJM, Oh JK, et al. Spectral pulsed tissue Doppler imaging in diastole: a tool to increase our insight in and assessment of diastolic relaxation of the left ventricle. Am Heart J 2003;146:411-419.
  11. Mehta SK, Holliday C, Hayduk L. Effect of regular exercise after third decade on Doppler-derived left ventricular filling. Am J Card 2004; 94:1595-1597.
  12. Harada K, Tsuda A, Orino T, et al. Tissue Doppler imaging in the normal fetus. Int J Cardiol 1999;71:227-234.
  13. Swaminathan S, Ferrer PL, Wolff GS, et al. Usefulness of tissue Doppler echocardiography for evaluating ventricular function in children without heart disease. Am J Cardiol 2003;91:570-574.
  14. Eidem BW, McMahon CJ, Cohen RR, et al. Impact of cardiac growth on Doppler tissue imaging velocities: a study in healthy children. J Am Soc Echocardiogr 2004;17:212-221.
  15. Gulati VK, Katz WE, Follansbee WP, et al. Mitral annular descent velocity by tissue Doppler echocardiography as an index of global left ventricular function. Am J Cardiol 1996;77:979-984.
  16. Fukuda K, Oki T, Tabata T, et al. Regional left ventricular wall motion abnormalities in myocardial infarction and mitral annular descent velocities studied with pulsed tissue Doppler imaging. J Am Soc Echocardiogr 1998;11:841-848.
  17. Hogg K, Swedberg K, McMurray J. Heart failure with preserved left ventricular systolic function. J Am Coll Cardiol 2004;43:317-327.
  18. Bruch C, Gradaus R, Gunia S, et al. Doppler tissue analysis of mitral annular velocities: evidence for systolic abnormalities in patients with diastolic heart failure. J Am Soc Echocardiogr 2003;16:1031-1036.
  19. Lin F, Chang SH, Hsieh I, et al. Time to peak velocity measurements by pulsed wave Doppler tissue imaging to quantify ischemia-related regional myocardial asynchrony. J Am Soc Echocardiogr 2004;17:299-306.
  20. Rambaldi R, Bax JJ, Boersma E, et al. Value of pulse-wave tissue Doppler imaging to identify dyssynergic but viable myocardium. Am J Cardiol 2003;92:64-67.
  21. Penicka M, Bartunek J, Bruyne BD, et al. Improvement of left ventricular function after cardiac resynchronization therapy is predicted by tissue Doppler imaging echocardiography. Circulation 2004;109:978-983.
  22. Kanzaki H, Bazaz R, Schwartzman D, et al. A mechanism for immediate reduction in mitral regurgitation after cardiac resynchronization therapy. J Am Coll Cardiol 2004;44:619-625.
  23. Yu CM, Fung JW, Zhang Q, et al. Tissue Doppler imaging is superior to strain rate imaging and postsystolic shortening on the prediction of reverse remodeling in both ischemic and nonischemic heart failure after cardiac resynchronization therapy. Circulation 2004;110:66-73.
  24. Natabartolo D, Merlino JD, Smith AL, et al. Usefulness of the peak velocity difference by tissue Doppler imaging technique as an effective predictor of response to cardiac resynchronization therapy. Am J Cardiol 2004;94:817-820.
  25. Sun JP, Chinchoy E, Donal E, et al. Evaluation of ventricular synchrony using Novel Doppler echocardiographic indicies in patients with heart failure receiving cardiac resynchronization therapy. . J Am Soc Echocardiogr 2004;17:845-850.
  26. Bax JJ, Ansalone G, Breithardt OA, et al. Echocardiographic evaluation of cardiac resynchronization therapy: ready for routine clinical use J Am Coll Cardiol 2004;44:1-9.
  27. Nagueh SF, Middleton KJ, Kopelen HA, et al. Doppler tissue imaging: a noninvasive technique for evaluation of left ventricular relaxation and estimation of filling pressures. J Am Coll Cardiol 1997;30:1527-1533.
  28. Ohte N, Narita H, Hashimoto T, et al. Evaluation of left ventricular early diastolic performance by color tissue Doppler imaging of the mitral annulus. Am J Cardiol 1998;82:1414-1417.
  29. Andersen NH, Terkelsen CJ, Sloth E, et al. Influence of preload alterations on parameters of systolic left ventricular long-axis function: A Doppler tissue study. J Am Soc Echocardiogr 2004;17:941-947.
  30. Naqvi TZ, Neyman G, Broyde A, et al. Comparison of myocardial tissue Doppler with transmitral flow Doppler in left ventricular hypertrophy. J Am Soc Echocardiogr 2001;14:1153-1160.
  31. Garcia M, Thomas JD, Klein AL. New Doppler echocardiographic applications for the study of diastolic function. J Am Coll Cardiol 1998;32:865-875.
  32. Swaminathan S, Ferrer PL, Wolff GS, et al. Usefulness of tissue Doppler echocardiography for evaluating ventricular function in children without heart disease. Am J Cardiol 2003;91:570-574.
  33. Alam M, Wardell J, Andersson E, et al. Assessment of left ventricular function using mitral annular velocities in patients with congestive heart failure with or without the presence of significant mitral valve regurgitation. . J Am Soc Echocardiogr 2003;16:240-245.
  34. Baykan M, Yilmaz R, Celik S, et al. Assessment of left ventricular systolic and diastolic function by Doppler tissue imaging in patients with preinfarction angina. . J Am Soc Echocardiogr 2003;16:1024-1030.
  35. Yuda S, Fang Z, Marwick TH. Association of severe coronary stenosis with subclinical left ventricular dysfunctin in the absence of infarction. . J Am Soc Echocardiogr 2003;16:1163-1170.
  36. Ha JW, Ommen SR, Tajik AJ, et al. Differentiation of constrictive pericarditis from restrictive cardiomyopathy using mitral annular velocity by tissue Doppler Echocardiography. Am J Cardiol 2004;94:316-319.
  37. Kosmala W, Kucharski W, Przewlocka-Kosmala M, et al. Comparison of left ventricular function by tissue Doppler imaging in patients with diabetes mellitus without systemic hypertension versus diabetes mellitus with systemic hypertension. Am J Cardiol 2004;94:395-399.
  38. Shishehbor MH, Hoogwerf BJ, Schoenhagen P, et al. Relation of hemoglobin A1c to left ventricular relaxation in patients with type 1 diabetes mellitus and without overt heart disease. Am J Cardiol 2003;91:1514-1516.
  39. Humphries MC, Gutin B, Barbeau P, et al. Relations of adiposity and effects of training on the left ventricular in obese youths. Med Sci Sports Exerc. 2002;34:1428-1435.
  40. Morricone L, Malavazos AE, Coman C, et al. Echocardiographic abnormalities in normotensive obese patients: relationship with visceral fat. Obes Res. 2002;10:489-498.
  41. Mehta SK, Holliday C, Hayduk L, et al. Comparison of myocardial function in children with body mass indexes >25 versus those <25 kg/m2. American Journal of Cardiology 2004; 93:1567-1569.
  42. Rivas-Gotz C, Manolios M, Thohan V, et al. Impact of left ventricular ejection fraction on estimation of left ventricular filling pressures using tissue Doppler and flow propagation velocity. Am J Cardiol 2003;91:780-784.
  43. Dokainish H, Zoghbi WA, Lakkis NM, et al. Optimal noninvastive assessment of left ventricular filling pressures. Circulation 2004;109:2432-2439.
  44. Aoki M, Harada K, Ogawa M, et al. Quantitative assessment of right ventricular function using Doppler tissue imaging in fetuses with and without heart failure. J Am Soc Echocardiogr 2004;17:28-35.
  45. Frommelt PC, Ballweg JA, Whitstone BN, et al. Usefulness of Doppler tissue imaging analysis of tricuspid annular motion for determination of right ventricular function in normal infants and children. Am J Cardiol 2002;89:610-613.
  46. Alam M, Wardell J, Andersson E, et al. Right ventricular function in patients with first inferior myocardial infarction: assessment by tricuspid annular motion and tricuspid annular velocity. Am Heart J 2000;139:710-715.
  47. Meluzin J, Spinarova L, Bakala J, et al. Pulsed Doppler tissue imaging of the velocity of tricuspid annular systolic motion; a new, rapid, and non-invasive method of evaluating right ventricular systolic function. Eur Heart J 2001;22:340-348.
  48. Moustapha A, Lim M, Saikia S, et al. Interrogation of the tricuspid annulus by Doppler tissue imaging in patients with chronic pulmonary hypertension: implications for the assessment of right-ventricular systolic and diastolic function. Cardiology 2001;95:101-104.
  49. Cicala S, Galderisi M, Caso P, et al. Right ventricular diastolic dysfunction in arterial systemic hypertension: analysis by pulsed tissue Doppler. Eur J Echocardiogr 2002;3:135-142.
  50. Weidemann F, Eyskens B, Mertens L, et al. Quantification of regional right and left ventricular function by ultrasonic strain rate and strain indexes after surgical repair of tetralogy of Fallot. Am J Cardiol 2002;90:133-138.
  51. Harada K, Toyono M, Yamamoto F. Assessment of right ventricular function during exercise with quantitative Doppler tissue imaging in children late after repair of Tetralogy of Fallot. J Am Soc Echocardiogr 2004;17:863-869.
  52. Frigiola A, Redington AN, Cullen S, et al. Pulmonary regurgitation is an important determinant of right ventricular contractile dysfunction in patients with surgically repaired Tetralogy of Fallot. Circulation 2004;110 (Suppl II):II-153-II157.
  53. Vogel M, Derrick G, White PA, et al. Systemic ventricular function in patients with transposition of the great arteries after atrial repair: a tissue Doppler and conducntance catheter study. J Am Coll Cardiol 2004;43:100-106.
  54. Iwasaki Y, Satomi G, Yasukochi S. Analysis of ventricular septal motion by Doppler tissue imaging in atrial septal defect and normal heart. Am J Cardiol 1999;83:206-210.
  55. Arce OX, Knudson OA, Ellison MC, et al. Longitudinal motion of the atrioventricular annuli in children:reference values, growth related changes, and effects of right ventricular volume and pressure overload. J Am Soc Echocardiogr 2002;15:906-916.
  56. Cheung Y, Lun K, Chau AKT. Doppler tissue imaging analysis of ventricular function after surgical and transcatheter closure of atrial septal defect. Am J Cardiol 2004;93:375-378.
  57. Hanseus KC, Bjorkhem GE, Brodin LA, et al. Analysis of atrioventricular plane movements by Doppler tissue imaging and M-mode in children with atrial septal defects before and after surgical and device closure. Pediatr Cardiol 2002;23:152-159.
  58. Dutka DP, Donnelly JE, Palka P, et al. Echocardiographic characterization of cardiomyopathy in Friedreich’s ataxia with tissue Doppler echocardiographically derived myocardial velocity gradients. Circulation 200;102:1276-1282.
  59. Agretto A, Politano L, Bossone E, et al. Pulsed Doppler Tissue imaging in dystrophinopathic cardiomyopathy. J Am Soc Echocardiogr 2002;15:891-899.
  60. Mori K, Edagawa T, Inoue M, et al. Peak negative myocardial velocity gradient and wall-thickening velocity during early diastole are noninvasive parameters of left ventricular diastolic function in patients with Duchenne’s progressive muscular dystrophy. . J Am Soc Echocardiogr 2004;17:322-329.
  61. Pieroni M, Chimenti C, Ricci R, et al. Early detection of Fabry cardiomyopathy by tissue Doppler imaging. Circulation 2003;107:1978-1984.
  62. Palka P, Macdonald G, Lange A, et al. The role of Doppler left ventricular filling indexes and Doppler tissue echocardiography in the assessment of cardiac involvement in Hereditary Hemochromatosis. . J Am Soc Echocardiogr 2002;15:884-890.
  63. Koyama J, Ray-Sequin PA, Falk RH. Longitudinal myocardial function assessed by tissue velocity, strain, and strain rate tissue Doppler echocardiography in patients with AL (primary) cardiac amyloidosis. Circulation 2003;107:2446-2452.
  64. Williams RI, Masani ND, Buchalter MB, et al. Abnormal myocardial strain rate in noncompaction of the left ventricle. J Am Soc Echocardiogr 2003;16:293-296.
  65. Vogel M, Anderson LJ, Holden S, et al. Tissue Doppler echocardiography in patients with thalassaemia detects early myocardial dysfunction related to myocardial iron overload. Eur Heart J 2003;24:113-119.
  66. Tada T, Oki T, Abe M, et al. The role of short- and long-axis function in determining late diastolic left ventricular filling in patients with hypertension: assessment by pulsed Doppler tissue imaging. J Am Soc Echocardiogr 2002;15:1211-1217.
  67. Kapusta L, Thijssen JM, Groot-Loonen J, et al. Tissue Doppler imaging in detection of myocardial dysfunction in survivors of childhood cancer treated with anthracyclines. Ultrasound Med Biol 2000;26:1099-1108.
  68. Derumeaux G, Mulder P, Richard V, et al. Tissue Doppler imaging differentiates physiological from pathological pressure-overload left ventricular hypertrophy in rats. Circulation 2002;105:1602-1608.
  69. Cardim N, Perrot A, Ferreira T, et al. Usefulness of Doppler myocardial imaging for identification of mutation carriers of familial hypertrophic cardiomyopathy. Am J Cardiol 2002;90:128-132.
  70. Nagueh SF, Bachinski LL, Meyer D, et al. Tissue Doppler imaging consistently detects myocardial abnormalities in patients with hypertrophic cardiomyopathy and provides a novel means for an early diagnosis before and independently of hypertrophy. Circulation 2001;104:128-130.
  71. Ho CY, Sweitzer NK, McDonough B, et al. Assessment of diastolic function with Doppler tissue imaging to predict genotype in preclinical hypertrophic cardiomyopathy. Circulation 2002;105:2992-2997.
  72. D'Andrea A, Caso P, Severino S, et al. Different involvement of right ventricular myocardial function in either physiologic or pathologic left ventricular hypertrophy: a Doppler tissue study. J Am Soc Echocardiogr 2003;16:154-161.
  73. Palka P, Lange A, Fleming AD, et al. Differences in myocardial velocity gradient measured throughout the cardiac cycle in patients with hypertrophic cardiomyopathy, athletes and patients with left ventricular hypertrophy due to hypertension. J Am Coll Cardiol 1997;30:760-768.
  74. Kato T, Noda A, Izawa H, et al. Myocardial velocity gradient as a noninvasively determined index of left ventricular diastolic dysfunction in patients with hypertrophic cardiomyopathy. J Am Coll Cardiol 2003;42:278-285.
  75. Nakayama K, Miyatake K, Uematsu M, et al. Application of tissue Doppler imaging technique in evaluating early ventricular contraction associated with accessory atrioventricular pathways in Wolff-Parkinson-White syndrome. Am Heart J 1998;135:99-106.
  76. Nagai H, Takata S, Sakagami S, et al. Two-dimensional guided M-mode color tissue Doppler echocardiography in artificial preexcitation models. J Am Soc Echocardiogr 1999;12:582-589.
  77. Miyasaka Y, Nakatani S, Suyama K, et al. A simple and accurate method to identify early ventricular contraction sites in Wolff-Parkinson-White syndrome using high frame-rate tissue velocity imaging. Am J Cardiol 2003;92:617-620.
  78. Mankad S, Murali S, Kormos RL, et al. Evaluation of the potential role of color-coded tissue Doppler echocardiography in the detection of allograft rejection in heart transplant recipients. Am Heart J 1999;138:721-730.
  79. Dandel M, Hummel M, Muller J, et al. Reliability of tissue Doppler wall motion monitoring after heart transplantation for replacement of invasive routine screenings by optimally timed cardiac biopsies and catheterizations. Circulation 2001;104:I184-191.
  80. Rein AJJT, O’Donnell C, Geva T, et al. Use of tissue velocity imaging in the diagnosis of fetal cardiac arrhythmias. Circulation 2002;106:1827-1833.
  81. Natsugoe K, Otsuji Y, Zhou X, et al. Evaluation of left ventricular ejection fraction by tissue locus imaging. Am J Cardiol 2004;94:273-275.
  82. Giglio V, Pasceri V, Messano L, et al. Ultrasound tissue characterization detects preclinical myocardial structural changes in children affected by Duchenne muscular dystrophy. J Am Coll Cardiol 2003;42:309-316.

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