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Magnetic Resonance Imaging Quantification of Pulmonary Perfusion using Calibrated Arterial Spin Labeling
Published on: May 30, 2011
Multidelay Pseudocontinuous Arterial Spin Labelling and Conventional Single-delay Pseudocontinuous Arterial Spin
Tongtong Tian1, Liqin Liu2, Jun Sun3
1Department of Radiology, Clinical Medical College of Shanghai Tenth People's Hospital of Nanjing Medical University, 301 Middle Yanchang Road, Shanghai 200072, PR China; Department of Radiology, Northern Jiangsu People's Hospital Affiliated to Yangzhou University, Clinical Hospital of Nanjing Medical University, No. 98 Nantong Road, Yangzhou 225001, Jiangsu, China.
Abstract:
The purpose of this prospective study was to investigate the potential correlations among three perfusion methods-multidelay pseudocontinuous arterial spin labelling (MD-PCASL), conventional single-delay pseudocontinuous arterial spin labelling (SD-PCASL), and dynamic contrast-enhanced magnetic resonance imaging (DCE-MRI)-in patients with locoregionally advanced nasopharyngeal carcinoma (ANPC). Forty-seven patients with locoregional ANPC were prospectively recruited. Two observers independently calculated the MD-PCASL parameters, including the ATT-corrected tumour blood flow (c-TBF), arterial transit time (ATT), and arterial tumour blood volume (aTBV); the SD-PCASL parameters, including the noncorrected tumour blood flow (nc-TBF); and the DCE-MRI quantitative parameters, including Ktrans, Kep, Ve, and Vp. The intra- and interobserver agreement was evaluated via the intraclass correlation coefficient (ICC) and BlandAltman analysis. Relationships between the MD-PCASL, SD-PCASL and DCE-MRI parameters were assessed via Spearman's rank correlation. The intra- and interobserver reproducibility were excellent, with ICCs ranging from 0.81 to 0.997 and a narrow width of 95% limits of agreement. A good positive correlation was observed between MD-PCASL-related perfusion parameters (c-TBF, aTBV) and DCE-MRI parameters (Ktrans, Kep) (Spearman's rank correlation coefficients: 0.61 to 0.71, p < 0.001). The SD-PCASL (nc-TBF) values were fairly correlated with Ktrans (p<0.001, r = 0.53) and Kep (p<0.001, r=0.51). In addition, there was a good correlation between the MD-PCASL-related perfusion parameters (c-TBF) and the SD-PCASL parameters (nc-TBF) (Spearman's rank correlation coefficients: 0.70, p < 0.001). No correlation was detected between MD-PCASL-related perfusion parameters (c-TBF and aTBV), SD-PCASL (nc-TBF) and DCE-MRI parameters (Ve and Vp) (Spearman's rank correlation coefficients: 0.07 to 0.145, p > 0.05). MD-PCASL multiparametric perfusion, SD-PCASL single-parameter perfusion and quantitative DCE-MRI parameters were correlated and reproducible in the assessment of ANPC. Although SD-PCASL demonstrated a fair correlation with DCE-MRI, the correlation was inferior to that of MD-PCASL with multiple parameters. MD-PCASL, as a noninvasive perfusion imaging tool, may become an alternative for assessing ANPC perfusion levels in the future.
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