Automation of pattern recognition analysis of dynamic contrast-enhanced MRI data to characterize intratumoral vascular heterogeneity

被引:8
作者
Han, SoHyun [1 ,2 ]
Stoyanova, Radka [3 ]
Lee, Hansol [1 ]
Carlin, Sean D. [4 ,5 ]
Koutcher, Jason A. [4 ,6 ,7 ,8 ]
Cho, HyungJoon [1 ]
Ackerstaff, Ellen [4 ]
机构
[1] Ulsan Natl Inst Sci & Technol, Dept Biomed Engn, Ulsan, South Korea
[2] Inst Basic Sci IBS, Ctr Neurosci Imaging Res, Suwon, South Korea
[3] Univ Miami, Miller Sch Med, Dept Radiat Oncol, Miami, FL 33136 USA
[4] Mem Sloan Kettering Canc Ctr, Dept Med Phys, New York, NY 10021 USA
[5] Univ Penn, Dept Radiol, Perelman Sch Med, Philadelphia, PA 19104 USA
[6] Mem Sloan Kettering Canc Ctr, Dept Med, 1275 York Ave, New York, NY 10021 USA
[7] Mem Sloan Kettering Canc Ctr, Sloan Kettering Inst, Mol Pharmacol Program, 1275 York Ave, New York, NY 10021 USA
[8] Cornell Univ, Weill Cornell Med Coll, New York, NY 10021 USA
基金
美国国家卫生研究院;
关键词
DCE-MRI; pattern recognition analysis; principal component analysis; automation; intratumoral vascular heterogeneity; NMR SPECTRAL QUANTITATION; PROSTATE-CANCER; DCE-MRI; MODEL; RECOVERY; MICROENVIRONMENT; CLASSIFICATION; PROGRESSION; HYPOXIA; TUMORS;
D O I
10.1002/mrm.26822
中图分类号
R8 [特种医学]; R445 [影像诊断学];
学科分类号
1002 ; 100207 ; 1009 ;
摘要
PurposeTo automate dynamic contrast-enhanced MRI (DCE-MRI) data analysis by unsupervised pattern recognition (PR) to enable spatial mapping of intratumoral vascular heterogeneity. MethodsThree steps were automated. First, the arrival time of the contrast agent at the tumor was determined, including a calculation of the precontrast signal. Second, four criteria-based algorithms for the slice-specific selection of number of patterns (NP) were validated using 109 tumor slices from subcutaneous flank tumors of five different tumor models. The criteria were: half area under the curve, standard deviation thresholding, percent signal enhancement, and signal-to-noise ratio (SNR). The performance of these criteria was assessed by comparing the calculated NP with the visually determined NP. Third, spatial assignment of single patterns and/or pattern mixtures was obtained by way of constrained nonnegative matrix factorization. ResultsThe determination of the contrast agent arrival time at the tumor slice was successfully automated. For the determination of NP, the SNR-based approach outperformed other selection criteria by agreeing >97% with visual assessment. The spatial localization of single patterns and pattern mixtures, the latter inferring tumor vascular heterogeneity at subpixel spatial resolution, was established successfully by automated assignment from DCE-MRI signal-versus-time curves. ConclusionThe PR-based DCE-MRI analysis was successfully automated to spatially map intratumoral vascular heterogeneity. Magn Reson Med 79:1736-1744, 2018. (c) 2017 International Society for Magnetic Resonance in Medicine.
引用
收藏
页码:1736 / 1744
页数:9
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