Heart failure with preserved ejection fraction assessed by cardiac magnetic resonance: From clinical uses to emerging techniques
Tài liệu tham khảo
Pieske, 2019, How to diagnose heart failure with preserved ejection fraction: the HFA–PEFF diagnostic algorithm: a consensus recommendation from the Heart Failure Association (HFA) of the European Society of Cardiology (ESC), Eur Heart J, 40, 3297, 10.1093/eurheartj/ehz641
McDonagh, 2021, 2021 ESC Guidelines for the diagnosis and treatment of acute and chronic heart failure, Eur Heart J, 42, 3599, 10.1093/eurheartj/ehab368
Chirinos, 2010, Left ventricular mass: allometric scaling, normative values, effect of obesity, and prognostic performance, Hypertension, 56, 91, 10.1161/HYPERTENSIONAHA.110.150250
Krittayaphong, 2009, Prognostic significance of left ventricular mass by magnetic resonance imaging study in patients with known or suspected coronary artery disease, J Hypertens, 27, 2249, 10.1097/HJH.0b013e3283309ac4
Perrone-Filardi, 2017, Eur Heart J Cardiovasc Imaging, 18, 945, 10.1093/ehjci/jex094
Xu, 2017, Volume-time curve of cardiac magnetic resonance assessed left ventricular dysfunction in coronary artery disease patients with type 2 diabetes mellitus, BMC Cardiovasc Disord, 17, 145, 10.1186/s12872-017-0583-5
Cao, 2018, Prolonged central circulation transit time in patients with HFpEF and HFrEF by magnetic resonance imaging, Eur Heart J Cardiovasc Imaging, 19, 339, 10.1093/ehjci/jex051
Kanagala, 2020, Left atrial ejection fraction and outcomes in heart failure with preserved ejection fraction, Int J Cardiovasc Imaging, 36, 101, 10.1007/s10554-019-01684-9
Li, 2019, Early detection of left atrial dysfunction assessed by CMR feature tracking in hypertensive patients, Eur Radiol, 30, 702, 10.1007/s00330-019-06397-0
Khan, 2020, Left atrial function in heart failure with preserved ejection fraction: a systematic review and meta-analysis, Eur J Heart Fail, 22, 472, 10.1002/ejhf.1643
Jain, 2019, Right atrial phasic function in heart failure with preserved and reduced ejection fraction, JACC Cardiovasc Imaging, 12, 1460, 10.1016/j.jcmg.2018.08.020
Kanagala, 2021, Prevalence of right ventricular dysfunction and prognostic significance in heart failure with preserved ejection fraction, Int J Cardiovasc Imaging, 37, 255, 10.1007/s10554-020-01953-y
von Roeder, 2020, Right atrial-right ventricular coupling in heart failure with preserved ejection fraction, Clinic Res Cardiol, 109, 54, 10.1007/s00392-019-01484-0
Tello, 2019, Cardiac magnetic resonance imaging-based right ventricular strain analysis for assessment of coupling and diastolic function in pulmonary hypertension, JACC Cardiovasc Imaging, 12, 2155, 10.1016/j.jcmg.2018.12.032
Garg, 2021, Cardiovascular magnetic resonance predicts all-cause mortality in pulmonary hypertension associated with heart failure with preserved ejection fraction, Int J Cardiovasc Imaging, 37, 3019, 10.1007/s10554-021-02279-z
Claus, 2015, Tissue tracking technology for assessing cardiac mechanics: principles, normal values, and clinical applications, JACC Cardiovasc Imaging, 8, 1444, 10.1016/j.jcmg.2015.11.001
Kammerlander, 2020, Feature tracking of global longitudinal strain by using cardiovascular MRI improves risk stratification in heart failure with preserved ejection fraction, Radiology, 296, 290, 10.1148/radiol.2020200195
Augustine, 2013, Global and regional left ventricular myocardial deformation measures by magnetic resonance feature tracking in healthy volunteers: comparison with tagging and relevance of gender, J Cardiovasc Magn Reson, 15, 8, 10.1186/1532-429X-15-8
He, 2021, Early Diastolic Longitudinal Strain Rate at MRI and outcomes in heart failure with preserved ejection fraction, Radiology, 301, 582, 10.1148/radiol.2021210188
Yang, 2020, Advanced myocardial characterization in hypertrophic cardiomyopathy: feasibility of CMR-based feature tracking strain analysis in a case-control study, Eur Radiol, 30, 6118, 10.1007/s00330-020-06922-6
Gao, 2019, Evaluation of elevated left ventricular end diastolic pressure in patients with preserved ejection fraction using cardiac magnetic resonance, Eur Radiol, 29, 2360, 10.1007/s00330-018-5955-4
Xu, 2020, Layer-specific strain in patients with heart failure using cardiovascular magnetic resonance: not all layers are the same, J Cardiovasc Magn Reson, 22, 81, 10.1186/s12968-020-00680-6
Kim, 2020, Left atrial strain impairment precedes geometric remodeling as a marker of post-myocardial infarction diastolic dysfunction, JACC Cardiovasc Imaging, 13, 2099, 10.1016/j.jcmg.2020.05.041
Backhaus, 2021, Exercise-stress real-time cardiac magnetic resonance imaging for non-invasive characterisation of heart failure with preserved ejection fraction: the HFpEF stress trial, Circulation, 143, 1484, 10.1161/CIRCULATIONAHA.120.051542
Liu, 2019, Age- and gender-related normal references of right ventricular strain values by tissue tracking cardiac magnetic resonance: results from a Chinese population, Quant Imaging Med Surg, 9, 1441, 10.21037/qims.2019.08.13
Liu, 2018, Normal values for myocardial deformation within the right heart measured by feature-tracking cardiovascular magnetic resonance imaging, Int J Cardiol, 252, 220, 10.1016/j.ijcard.2017.10.106
Kwong, 2019, Cardiac magnetic resonance stress perfusion imaging for evaluation of patients with chest pain, J Am Coll Cardiol, 74, 1741, 10.1016/j.jacc.2019.07.074
Pezel, 2021, Long-term prognostic value of stress CMR in patients with heart failure and preserved ejection fraction, JACC Cardiovasc Imaging, 10.1016/j.jcmg.2021.03.010
Kato, 2021, Cardiovascular magnetic resonance assessment of coronary flow reserve improves risk stratification in heart failure with preserved ejection fraction, J Cardiovasc Magn Reson, 23, 112, 10.1186/s12968-021-00807-3
Romano, 2020, Prognostic implications of blunted feature-tracking global longitudinal strain during vasodilator cardiovascular magnetic resonance stress imaging, JACC Cardiovasc Imaging, 13, 58, 10.1016/j.jcmg.2019.03.002
Kato, 2015, Prognostic significance of quantitative assessment of focal myocardial fibrosis in patients with heart failure with preserved ejection fraction, Int J Cardiol, 191, 314, 10.1016/j.ijcard.2015.05.048
Kanagala, 2019, Relationship between focal and diffuse fibrosis assessed by CMR and clinical outcomes in heart failure with preserved ejection fraction, JACC Cardiovasc Imaging, 12, 2291, 10.1016/j.jcmg.2018.11.031
Iles, 2008, Evaluation of diffuse myocardial fibrosis in heart failure with cardiac magnetic resonance contrast-enhanced T1 mapping, J Am Coll Cardiol, 52, 1574, 10.1016/j.jacc.2008.06.049
Mascherbauer, 2013, Cardiac magnetic resonance postcontrast T1 time is associated with outcome in patients with heart failure and preserved ejection fraction, Circ Cardiovasc Imaging, 6, 1056, 10.1161/CIRCIMAGING.113.000633
Nitsche, 2020, Native T1 time of right ventricular insertion points by cardiac magnetic resonance: relation with invasive haemodynamics and outcome in heart failure with preserved ejection fraction, Eur Heart J Cardiovasc Imaging, 21, 683, 10.1093/ehjci/jez221
Duca, 2016, Interstitial fibrosis, functional status, and outcomes in heart failure with preserved ejection fraction: insights from a prospective cardiac magnetic resonance imaging study, Circ Cardiovasc Imaging, 9, 10.1161/CIRCIMAGING.116.005277
Wang, 2017, Myocardial extracellular volume fraction quantified by cardiovascular magnetic resonance is increased in hypertension and associated with left ventricular remodeling, Eur Radiol, 27, 4620, 10.1007/s00330-017-4841-9
Mordi, 2018, Comprehensive echocardiographic and cardiac magnetic resonance evaluation differentiates among heart failure with preserved ejection fraction patients, hypertensive patients, and healthy control subjects, JACC Cardiovasc Imaging, 11, 577, 10.1016/j.jcmg.2017.05.022
Schelbert, 2017, Temporal relation between myocardial fibrosis and heart failure with preserved ejection fraction: association with baseline disease severity and subsequent outcome, JAMA Cardiol, 2, 995, 10.1001/jamacardio.2017.2511
Roy, 2018, Associations and prognostic significance of diffuse myocardial fibrosis by cardiovascular magnetic resonance in heart failure with preserved ejection fraction, J Cardiovasc Magn Reson, 20, 55, 10.1186/s12968-018-0477-4
Manka, 2010, BOLD cardiovascular magnetic resonance at 3.0 tesla in myocardial ischemia, J Cardiovasc Magn Reson, 12, 54, 10.1186/1532-429X-12-54
Walcher, 2012, Myocardial perfusion reserve assessed by T2-prepared steady-state free precession blood oxygen level-dependent magnetic resonance imaging in comparison to fractional flow reserve, Circ Cardiovasc Imaging, 5, 580, 10.1161/CIRCIMAGING.111.971507
Khalique, 2019, Diffusion tensor cardiovascular magnetic resonance, Postgrad Med J, 95, 433, 10.1136/postgradmedj-2019-136429
Gotschy, 2019, Characterizing cardiac involvement in amyloidosis using cardiovascular magnetic resonance diffusion tensor imaging, J Cardiovasc Magn Reson, 21, 56, 10.1186/s12968-019-0563-2
Nielles-Vallespin, 2017, Assessment of myocardial microstructural dynamics by in vivo diffusion tensor cardiac magnetic resonance, J Am Coll Cardiol, 69, 661, 10.1016/j.jacc.2016.11.051
Pumphrey, 2017, Cardiac Chemical exchange saturation transfer MR imaging tracking of cell survival or rejection in mouse models of cell therapy, Radiology, 282, 131, 10.1148/radiol.2016152766
Dou, 2019, Chemical exchange saturation transfer magnetic resonance imaging and its main and potential applications in pre-clinical and clinical studies, Quant Imaging Med Surg, 9, 1747, 10.21037/qims.2019.10.03
AlGhuraibawi, 2019, CEST MRI reveals a correlation between visceral fat mass and reduced myocardial creatine in obese individuals despite preserved ventricular structure and function, NMR Biomed, 32, e4104, 10.1002/nbm.4104
Garg, 2021, Left ventricular fibrosis and hypertrophy are associated with mortality in heart failure with preserved ejection fraction, Sci Rep, 11, 617, 10.1038/s41598-020-79729-6