Congenital Diseases in the Right Heart pp 57-64 | Cite as
Imaging Pulmonary Microvascular Flow
Chapter
Keywords
Pulmonary Arterial Hypertension Magn Reson Image Mean Transit Time Lung Perfusion Primary Pulmonary Hypertension
These keywords were added by machine and not by the authors. This process is experimental and the keywords may be updated as the learning algorithm improves.
Preview
Unable to display preview. Download preview PDF.
References
- 1.Patel DJ, Schilder DP, Mallos AJ. Mechanical properties and dimensions of the major pulmonary arteries. J Appl Physiol. 1960;15:92–6.PubMedGoogle Scholar
- 2.Rabinovitch M. Pulmonary hypertension: updating a mysterious disease. Cardiovasc Res. 1997;34:268–72.PubMedCrossRefGoogle Scholar
- 3.Hoffman JI, Rudolph AM, Heymann MA. Pulmonary vascular disease with congenital heart lesions: pathologic features and causes. Circulation. 1981;64:873–7.PubMedGoogle Scholar
- 4.Palevsky HI, Gurughagavatula I. Pulmonary hypertension in collagen vascular disease. Compr Ther. 1999;25:133–43.PubMedCrossRefGoogle Scholar
- 5.Weitzenblum E, Loiseau A, Hirth C, et al. Course of pulmonary hemodynamics in patients with chronic obstructive pulmonary disease. Chest. 1979;75:656–62.PubMedCrossRefGoogle Scholar
- 6.Bogren HG, Klipstein RH, Mohiaddin RH, et al. Pulmonary artery distensibility and blood flow patterns: a magnetic resonance study of normal subjects and of patients with pulmonary arterial hypertension. Am Heart J. 1989;118: 990–9.PubMedCrossRefGoogle Scholar
- 7.Wagenvoort CA. Open lung biopsies in congenital heart disease for evaluation of pulmonary vascular disease. Predictive value with regard to corrective operability. Histopathology. 1985;9:417–36.PubMedCrossRefGoogle Scholar
- 8.Fukuchi K, Hayashida K, Nakanishi N, et al. Quantitative analysis of lung perfusion in patients with primary pulmonary hypertension. J Nucl Med. 2002;43:757–61.PubMedGoogle Scholar
- 9.Roman KS, Kellenberger CJ, Farooq S, et al. Differential pulmonary blood flow in patients with congenital heart disease: Magnetic resonance imaging versus lung perfusion scintigraphy. Pediatr Radiol. In Press.Google Scholar
- 10.Rubin LJ. Primary pulmonary hypertension. N Engl J Med. 1997;336:111–7.PubMedCrossRefGoogle Scholar
- 11.Agata Y, Hiraishi S, Oguchi K, et al. Changes in pulmonary venous flow pattern during early neonatal life. Br Heart J. 1994;71:182–6.PubMedCrossRefGoogle Scholar
- 12.West J, Wagner, PD. Ventilation-perfusion relationships. Philadelphia: Lippincott-Raven; 1997.Google Scholar
- 13.Kang IS, Redington AN, Benson LN, et al. Differential regurgitation in branch pulmonary arteries after repair of tetralogy of Fallot: a phase-contrast cine magnetic resonance study. Circulation. 2003;107:2938–43.PubMedCrossRefGoogle Scholar
- 14.Kellenberger CJ, Macgowan CK, Roman KS, et al. Hemodynamic evaluation of the peripheral pulmonary circulation by cine phase-contrast magnetic resonance imaging. J Magn Reson Imaging. 2005;22:780–7.PubMedCrossRefGoogle Scholar
- 15.Fishman AJ, Moser KM, Fedullo PF. Perfusion lung scans vs pulmonary angiography in evaluation of suspected primary pulmonary hypertension. Chest. 1983;84:679–83.PubMedCrossRefGoogle Scholar
- 16.Hatabu H, Tadamura E, Levin DL, et al. Quantitative assessment of pulmonary perfusion with dynamic contrast-enhanced MRI. Magn Reson Med. 1999;42:1033–8.PubMedCrossRefGoogle Scholar
- 17.Stewart GN. Researches on the circulation time in organs and on the influences which affect it. Parts I-III. J. Physiol. 1894;15:1–89.Google Scholar
- 18.Meir P ZK. On the theory of the indicatir-dilution method for measurement of blood flow and volume. J Appl Physiol. 1954;6:731–44.Google Scholar
- 19.Zierler K. Theoretical basis of indicator-dilution methods for measuring flow and volume. Circ Res. 1962;137:677–84.Google Scholar
- 20.Axel L. Cerebral blood flow determination by rapid-sequence computed tomography: theoretical analysis. Radiology. 1980;137:679–86.PubMedGoogle Scholar
- 21.Calamante F, Thomas DL, Pell GS, et al. Measuring cerebral blood flow using magnetic resonance imaging techniques. J Cereb Blood Flow Metab. 1999;19:701–35.PubMedCrossRefGoogle Scholar
- 22.Johnson K. Ventilation and perfusion scanning in children. Paediatr Respir Rev. 2000;1:347–53.PubMedCrossRefGoogle Scholar
- 23.Hoffman EA, Chon D. Computed tomography studies of lung ventilation and perfusion. Proc Am Thorac Soc. 2005;2:492–8, 506.PubMedCrossRefGoogle Scholar
- 24.Boll DT, Lewin JS, Young P, et al. Perfusion abnormalities in congenital and neoplastic pulmonary disease: comparison of MR perfusion and multislice CT imaging. Eur Radiol. 2005;15:1978–86.PubMedCrossRefGoogle Scholar
- 25.Musch G, Venegas JG. Positron emission tomography imaging of regional pulmonary perfusion and ventilation. Proc Am Thorac Soc. 2005;2:522–7, 508–9.PubMedCrossRefGoogle Scholar
- 26.Investigators TP. Value of the ventilation/perfusion scan in acute pulmonary embolism. Results of the prospective investigation of pulmonary embolism diagnosis (PIOPED). JAMA. 1990;263:2753–59.CrossRefGoogle Scholar
- 27.Tonge KA, Wright CH, Mathew J, et al. Flow rate determination using computed tomography. Br J Radiol. 1980;53:946–9.PubMedCrossRefGoogle Scholar
- 28.Macgowan CK, Al-Kwifi O, Varodayan F, et al. Optimization of 3D contrast-enhanced pulmonary magnetic resonance angiography in pediatric patients with congenital heart disease. Magn Reson Med. 2005;54:207–12.PubMedCrossRefGoogle Scholar
- 29.Hatabu H GJ, Kim D et al. Pulmonary perfusion: qualitative assessment with dynamic contrast-enhanced MRI using ultra-short TE and inversion recovery turbo FLASH. Magn Reson Med. 1996a;36:503–508.CrossRefGoogle Scholar
- 30.Matsuoka S UK, Chima H et al. Effect of the rate of gadolinium injection on magnetic resonance pulmonary perfusion imaging. J Magn Reson Imaging. 2002;15:108–113.PubMedCrossRefGoogle Scholar
- 31.Ostergaard L WR, Chesler DA et al. High resolution measurement of cerebral blood flow using intravascular tracer bolus passages, Part I. Mathematical approach and statistical analysis. Magn Reson Med. 1996;36:715–25.PubMedCrossRefGoogle Scholar
- 32.Iwasawa T SK, Ogawa N et al. Prediction of postoperative pulmonary function using perfusion magnetic resonance imaging of the lung. J Magn Reson Imaging. 2002;15:685–92.PubMedCrossRefGoogle Scholar
- 33.Nikolaou K SS, Nittka M et al. Magnetic resonance imaging in the diagnosis of pulmonary arterial hypertension: High resolution angiography and fast perfusion imaging using intelligent parallel acquistion techniques (IPAT) (abstract). Radiology. 2002;225:473.Google Scholar
- 34.Fink C BM, Puderbach M et al. partially parallel three-dimensional magnetic resonance imaging for the assessment of lund perfusion - initial results. Invest Radiol. 2003;38:482–88.PubMedCrossRefGoogle Scholar
- 35.Goyen M, Laub G, Ladd ME, et al. Dynamic 3D MR angiography of the pulmonary arteries in under four seconds. J Magn Reson Imaging. 2001;13:372–7.PubMedCrossRefGoogle Scholar
- 36.Sodickson DK, Manning WJ. Simultaneous acquisition of spatial harmonics (SMASH): fast imaging with radiofrequency coil arrays. Magn Reson Med. 1997;38:591–603.PubMedCrossRefGoogle Scholar
- 37.Pruessmann KP, Weiger M, Scheidegger MB, et al. SENSE: sensitivity encoding for fast MRI. Magn Reson Med. 1999;42:952–62.PubMedCrossRefGoogle Scholar
- 38.Sodickson DK, McKenzie CA, Ohliger MA, et al. Recent advances in image reconstruction, coil sensitivity calibration, and coil array design for SMASH and generalized parallel MRI. Magma. 2002;13:158–63.PubMedCrossRefGoogle Scholar
- 39.Madore B, Pelc NJ. SMASH and SENSE: experimental and numerical comparisons. Magn Reson Med. 2001;45:1103–11.PubMedCrossRefGoogle Scholar
- 40.Ahlstrom KH, Johansson LO, Rodenburg JB, et al. Pulmonary MR angiography with ultrasmall superparamagnetic iron oxide particles as a blood pool agent and a navigator echo for respiratory gating: pilot study. Radiology. 1999;211:865–9.PubMedGoogle Scholar
- 41.Nolte-Ernsting CC, Krombach G, Staatz G, et al. [Virtual endoscopy of the upper urinary tract based on contrast-enhanced MR urography data sets]. Rofo. 1999;170:550–6.PubMedGoogle Scholar
- 42.Zheng J, Carr J, Harris K, et al. Three-dimensional MR pulmonary perfusion imaging and angiography with an injection of a new blood pool contrast agent B-22956/1. J Magn Reson Imaging. 2001;14:425–32.PubMedCrossRefGoogle Scholar
- 43.Viallon M, Berthezene Y, Decorps M, et al. Laser-polarized (3)He as a probe for dynamic regional measurements of lung perfusion and ventilation using magnetic resonance imaging. Magn Reson Med. 2000;44:1–4.PubMedCrossRefGoogle Scholar
- 44.Callot V, Canet E, Brochot J, et al. MR perfusion imaging using encapsulated laser-polarized 3He. Magn Reson Med. 2001;46:535–40.PubMedCrossRefGoogle Scholar
- 45.Detre JA, Leigh JS, Williams DS, et al. Perfusion imaging. Magn Reson Med. 1992;23:37–45.PubMedCrossRefGoogle Scholar
- 46.Roberts DA, Gefter WB, Hirsch JA, et al. Pulmonary perfusion: respiratory-triggered three-dimensional MR imaging with arterial spin tagging–preliminary results in healthy volunteers. Radiology. 1999;212:890–5.PubMedGoogle Scholar
- 47.Roberts DA, Rizi RR, Lipson DA, et al. Dynamic observation of pulmonary perfusion using continuous arterial spin-labeling in a pig model. J Magn Reson Imaging. 2001;14:175–80.PubMedCrossRefGoogle Scholar
- 48.Edelman RR, Siewert B, Darby DG, et al. Qualitative mapping of cerebral blood flow and functional localization with echo-planar MR imaging and signal targeting with alternating radio frequency. Radiology. 1994;192:513–20.PubMedGoogle Scholar
- 49.Kwong KK, Belliveau JW, Chesler DA, et al. Dynamic magnetic resonance imaging of human brain activity during primary sensory stimulation. Proc Natl Acad Sci U S A. 1992;89:5675–9.PubMedCrossRefGoogle Scholar
- 50.Kim SG. Quantification of relative cerebral blood flow change by flow-sensitive alternating inversion recovery (FAIR) technique: application to functional mapping. Magn Reson Med. 1995;34:293–301.PubMedCrossRefGoogle Scholar
- 51.Hatabu H, Wielopolski PA, Tadamura E. An attempt of pulmonary perfusion imaging utilizing ultrashort echo time turbo FLASH sequence with signal targeting and alternating radio-frequency (STAR). Eur J Radiol. 1999e;29:160–3.CrossRefGoogle Scholar
- 52.Hatabu H, Tadamura E, Prasad PV, et al. Noninvasive pulmonary perfusion imaging by STAR-HASTE sequence. Magn Reson Med. 2000;44:808–12.PubMedCrossRefGoogle Scholar
- 53.Roman KS, Kellenberger CJ, Farooq S, et al. Comparative imaging of differential pulmonary blood flow in patients with congenital heart disease: magnetic resonance imaging versus lung perfusion scintigraphy. Pediatr Radiol. 2005;35:295–301.PubMedCrossRefGoogle Scholar
- 54.Nikolaou K, Schoenberg SO, Attenberger U, et al. Pulmonary arterial hypertension: diagnosis with fast perfusion MR imaging and high-spatial-resolution MR angiography–preliminary experience. Radiology. 2005;236:694–703.PubMedCrossRefGoogle Scholar
- 55.Ohno Y, Hatabu H, Murase K, et al. Quantitative assessment of regional pulmonary perfusion in the entire lung using three-dimensional ultrafast dynamic contrast-enhanced magnetic resonance imaging: Preliminary experience in 40 subjects. J Magn Reson Imaging. 2004;20:353–65.PubMedCrossRefGoogle Scholar
- 56.Jones AT, Hansell DM, Evans TW. Quantifying pulmonary perfusion in primary pulmonary hypertension using electron-beam computed tomography. Eur Respir J. 2004;23:202–7.PubMedCrossRefGoogle Scholar
- 57.Glenny RW, Robertson HT. Fractal modeling of pulmonary blood flow heterogeneity. J Appl Physiol. 1991;70:1024–30.PubMedGoogle Scholar
- 58.Horn M, Hooper W, Brach B, et al. Postural changes in pulmonary blood flow in pulmonary hypertension: a noninvasive technique using ventilation-perfusion scans. Circulation. 1982;66:621–6.PubMedGoogle Scholar
Copyright information
© Springer-Verlag London Limited 2009