Showing 1 - 20 results of 31 for search '"ЖИЗНЕСПОСОБНОСТЬ МИОКАРДА"', query time: 0.66s Refine Results
  1. 1
  2. 2
  3. 3
  4. 4
  5. 5
  6. 6
  7. 7
    Academic Journal

    Source: Complex Issues of Cardiovascular Diseases; № 3 (2014); 97-102 ; Комплексные проблемы сердечно-сосудистых заболеваний; № 3 (2014); 97-102 ; 2587-9537 ; 2306-1278 ; 10.17802/2306-1278-2014-3

    File Description: application/pdf

    Relation: https://www.nii-kpssz.com/jour/article/view/68/71; Белов Ю. В., Вараксин В. А. Постинфарктное ремоделирование левого желудочка сердца. От концепции к хирургическому лечению. М.: ДеНово, 2002. 194 с.; Буйлов В. М. Магнитно-резонансные контрастные средства и нефрогенные фиброзирующая дермопатия и системный фиброз (обзор литературы) // Медицинская визуализация. 2007. № 2. С. 140–143.; Сидоренко Б. А., Преображенский Д. В. «Спящий миокард » и «оглушенный миокард» как особые формы дисфункции левого желудочка у больных ишемической болезнью сердца // Кардиология. 1997. № 2. С. 98–101.; 2011 ACCF/AHA Guideline for Coronary Artery Bypass Graft Surgery A Report of the American College of Cardiology Foundation/American Heart Association Task Force on Practice Guidelines // Circulation. 2011. Vol. 124. P. e652–e735.; ACCF/ACR/SCCT/SCMR/ASNC/NASCI/SCAI/SIR 2006 appropriateness criteria for cardiac computed tomography and cardiac magnetic resonance imaging. A report of the American College of Cardiology Foundation Quality Strategic Directions Committee Appropriateness Criteria Working Group // J. Am. Coll. Radiol. 2006. № 10. P. 751–771.; Assessment of myocardial viability with contrast-enhanced magnetic resonance imaging: comparison with positron emission tomography / C. Klein [et al.] // Circulation. 2002. Vol. 105. P. 162–167.; Bingham S. E., Hachamovitch R. Incremental prognostic significance of combined cardiac magnetic resonance imaging, adenosine stress perfusion, delayed enhancement, and left ventricular function over preimaging for the prediction of adverse events // Circulation. 2011. Vol. 123. P. 1509–1518.; Bonow R. O. Myocardial hibernation: a noninvasive physician’s point of view // Ital. Heart J. 2002. № 5. P. 285–290.; CMR imaging assessing viability in patients with chronic ventricular dysfunction due to coronary artery disease: a metaanalysis of prospective trials / J. Romero [et al.] // J. Am. Coll. Cardiol. Img. 2012. № 5. P. 494–508.; Heusch G., Schulz R. Characterization of hibernation and stunned myocardium // Eur. Heart J. 1997. Vol. 18. P. 102–10.; Late gadolinium-enhanced magnetic resonance imaging in acute and chronic myocardial infarction. Improved prediction of regional myocardial contraction in the chronic state by measuring thickness of nonenhanced myocardium / Y. Ichikawa [et al.] // J. Am. Coll. Cardiol. 2005. Vol. 45. P. 901–909.; Magnetic resonance low-dose dobutamine test is superior to SCAR quantification for the prediction of functional recovery / E. Wellnhofer [et al.] // Circulation. 2004. Vol. 109. P. 2172–2174.; MRI-based finite-element analysis of left ventricular aneurysm / J. Walker [et al.] // Am. J. Physiology. 2005. Vol. 289. P. 692–700.; MRI evaluation of left ventricular function in anterior LV aneurysms before and after surgical resection / M. Versteegh [et al.] // Eur. J. Cardiothorac. Surg. 2003. Vol. 23(4). P. 609–613.; Myocardial viability testing and impact of revascularization on prognosis in patients with coronary artery disease and left ventricular dysfunction: a meta-analysis / K. Allman [et al.] // J. Am. Coll. Cardiol. 2002. Vol. 39. P. 1151–1158.; Nagel E., Schuster A. Shortening without contraction: new insights into hibernating myocardium // J. Am. Coll. Cardiol. Img. 2010. № 3. Р. 731–733.; Quantification in cardiac MRI: advances in image acquisition and processing / A. Attili [et al.] // Int. J. Cardiovasc. Imaging. 2010. Vol. 26. Suppl. 1. P. 27–40.; Standardized cardiovascular magnetic resonance (CMR) protocols 2013 update / C. Kramer [et al] // J. Cardiovasc. Magn. Reson. 2013. Vol. 15(1). P. 91–101.; The use of contrast-enhanced magnetic resonance imaging to identify reversible myocardial dysfunction / R. Kim [et al.] // N. Engl. J. Med. 2000. Vol. 343. P. 1445–1453.; Value of scar imaging and inotropic reserve combination for the prediction of segmental and global left ventricular functional recovery after revascularization / S. Glaveckaite [et al.] // J. Cardiovasc. Magn. Reson. 2011. Vol. 13. P. 35–43.; West A. M., Kramer C. M. Cardiovascular magnetic resonance imaging of myocardial infarction, viability, and cardiomyopathies // Curr. Probl. Cardiol. 2010. Vol. 35. P. 176–220.

  8. 8
  9. 9
  10. 10
  11. 11
  12. 12
  13. 13
  14. 14
  15. 15
  16. 16
  17. 17
    Academic Journal

    Source: Russian Journal of Transplantology and Artificial Organs; Том 11, № 2 (2009); 37-42 ; Вестник трансплантологии и искусственных органов; Том 11, № 2 (2009); 37-42 ; 1995-1191 ; 10.15825/1995-1191-2009-2

    File Description: application/pdf

    Relation: https://journal.transpl.ru/vtio/article/view/180/122; Остроумов Е.Н., Честухин В.В., Миронков Б.Л., Покатилов А.А., Миронков А.Б. Возможность улучшения клинического состояния у больных ишемической кардиомиопатией после реваскуляризации // Российский кардиологический журнал. 2006. Внеочередной выпуск. C. 78–82.; Abraham W.T., Fisher W.G., Smith A.L. et al. Cardiac resynchronization in chronic heart failure // Engl J Med. 2002. V. 346. P. 1845–1853.; Adelstein E.C., Saba S. Scar Burden by Myocardial Perfusion Imaging Predicts Echocardiographic Response to; Cardiac Resynchronization Therapy in Ischemic Cardiomyopathy // Am Heart J. 2007. V. 153 (1). P. 105–112.; Bax J.J., Bleeker G.B., Marwick T.H. et al. Left ventricular dyssynchrony predicts response and prognosis after cardiac resynchronization therapy // J Am Coll Cardiol. 2004. V. 44. P. 1834–1840.; Birnie D.H., ASL Tang. The problem of non-response to cardiac resynchroniztion therapy // Curr Opin Cardiol. 2006. V. 21. P. 20–26.; Boogers M.M., Ji Chen and Bax J.J. Role of nuclear imaging in cardiac resynchronization therapy // Expert Review of Cardiovascular Therapy January. 2009. V. 7. (1). P. 65–72.; Brandao S., Ji Chen, Giorgi M.Cl. et al. Phase analysis of gated myocardial perfusion SPECT: A new method to evaluate left ventricular dyssynchrony // J Nucl Med. 2007. V. 48 (Suppl. 2). 234 p.; Maruyama A., Hasegawa S., Paul A.K. et al. Myocardial viability assessment with gated SPECT Tc-99m tetrofosmin % wall thickening: comparison with F-18 FDGPET // Ann Nucl Med. 2002. V. 16 (1). P. 25–32.; Perrone-Filardi P., Bacharach S.L., Dilsizian V. et al. Regional left ventricular wall thickening. Relation to regional uptake of 18 fl uorodeoxyglucose and 201Tl in patients with chronic coronary artery disease and left ventricular dysfunction // Circulation. 1992. V. 86. P. 1125–1137.; Toussaint J.F., Lavergne T., Kerrou K. et al. Basal asynchrony and resynchronization with biventricular pacing predict long-term improvement of LV function in heart failure patients // Pacing Clin Electrophysiol. 2003. V. 26. P. 1815–1823.; Vardas P.E. et al. Guidelines for cardiac pacing and cardiac resynchronization therapy // European Heart J. 2007. V. 28. P. 2256–2295.; Ypenburg C., Schalij M.J., Bleeker G.B. et al. Extent of Viability to Predict Response to Cardiac Resynchronization; Therapy in Ischemic Heart Failure Patients // J Nucl. Med. 2006. V. 47. P. 1565–1570.; Ypenburg C., Schalij M.J., Bleeker G.B. et al. Impact of viability and scar tissue on response to cardiac resynchronization; therapy in ischaemic heart failure patients // European Heart J. 2007. V. 28. P. 33–41.; https://journal.transpl.ru/vtio/article/view/180

  18. 18
  19. 19
  20. 20