A model for gastrointestinal tract motility in a 4D imaging phantom of human anatomy

被引:3
|
作者
Subashi, Ergys [1 ]
Segars, Paul [2 ]
Veeraraghavan, Harini [1 ]
Deasy, Joseph [1 ]
Tyagi, Neelam [1 ]
机构
[1] Mem Sloan Kettering Canc Ctr, Dept Med Phys, New York, NY USA
[2] Duke Univ, Dept Radiol, Med Ctr, Durham, NC USA
关键词
adaptive planning; digital phantom; dose accumulation; image registration; MR-guided RT; ADAPTIVE RADIATION-THERAPY; MOTION; DISPERSION; ADULT; WAVES;
D O I
10.1002/mp.16305
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
BackgroundGastrointestinal (GI) tract motility is one of the main sources for intra/inter-fraction variability and uncertainty in radiation therapy for abdominal targets. Models for GI motility can improve the assessment of delivered dose and contribute to the development, testing, and validation of deformable image registration (DIR) and dose-accumulation algorithms. PurposeTo implement GI tract motion in the 4D extended cardiac-torso (XCAT) digital phantom of human anatomy. Materials and MethodsMotility modes that exhibit large amplitude changes in the diameter of the GI tract and may persist over timescales comparable to online adaptive planning and radiotherapy delivery were identified based on literature research. Search criteria included amplitude changes larger than planning risk volume expansions and durations of the order of tens of minutes. The following modes were identified: peristalsis, rhythmic segmentation, high amplitude propagating contractions (HAPCs), and tonic contractions. Peristalsis and rhythmic segmentations were modeled by traveling and standing sinusoidal waves. HAPCs and tonic contractions were modeled by traveling and stationary Gaussian waves. Wave dispersion in the temporal and spatial domain was implemented by linear, exponential, and inverse power law functions. Modeling functions were applied to the control points of the nonuniform rational B-spline surfaces defined in the reference XCAT library. GI motility was combined with the cardiac and respiratory motions available in the standard 4D-XCAT phantom. Default model parameters were estimated based on the analysis of cine MRI acquisitions in 10 patients treated in a 1.5T MR-linac. ResultsWe demonstrate the ability to generate realistic 4D multimodal images that simulate GI motility combined with respiratory and cardiac motion. All modes of motility, except tonic contractions, were observed in the analysis of our cine MRI acquisitions. Peristalsis was the most common. Default parameters estimated from cine MRI were used as initial values for simulation experiments. It is shown that in patients undergoing stereotactic body radiotherapy for abdominal targets, the effects of GI motility can be comparable or larger than the effects of respiratory motion. ConclusionThe digital phantom provides realistic models to aid in medical imaging and radiation therapy research. The addition of GI motility will further contribute to the development, testing, and validation of DIR and dose accumulation algorithms for MR-guided radiotherapy.
引用
收藏
页码:3066 / 3075
页数:10
相关论文
共 50 条
  • [31] 4D STATIC SOLUTIONS WITH INTERACTING PHANTOM FIELDS
    Dzhunushaliev, Vladimir
    Folomeev, Vladimir
    INTERNATIONAL JOURNAL OF MODERN PHYSICS D, 2008, 17 (11): : 2125 - 2142
  • [32] A 4D Multimodal Lung Phantom for Regmentation Evaluation
    Markerl, D.
    Levesque, I. R.
    El Naqa, I.
    MEDICAL PHYSICS, 2014, 41 (08) : 21 - 21
  • [33] Validation in 4D Dosimetry Using Dynamic Phantom
    Lin, C.
    Huang, T.
    Lin, C.
    Nien, H.
    Tu, P.
    Lui, L.
    Wu, C.
    MEDICAL PHYSICS, 2016, 43 (06) : 3552 - 3553
  • [34] A deformable phantom for quality assurance in 4D radiotherapy
    Margeanu, M.
    Heath, E.
    Stroian, G.
    Seuntjens, J.
    RADIOTHERAPY AND ONCOLOGY, 2007, 84 : S80 - S81
  • [35] A robotic 4D phantom for the radiotherapy of moving objects
    Baier, K.
    Wilbert, J.
    Richter, A.
    Guckenberger, M.
    Flentje, M.
    STRAHLENTHERAPIE UND ONKOLOGIE, 2007, 183 : 15 - 15
  • [36] Development of a Dynamic 4D Anthropomorphic Breast Phantom for Contrast-based Breast Imaging
    Kiarashi, Nooshin
    Lin, Yuan
    Segars, Willliam P.
    Ghate, Sujata V.
    Ikejimba, Lynda
    Chen, Baiyu
    Lo, Joseph Y.
    Dobbins, James T., III
    Nolte, Loren W.
    Samei, Ehsan
    MEDICAL IMAGING 2012: PHYSICS OF MEDICAL IMAGING, 2012, 8313
  • [37] A Lifelike Breathing Phantom and Model Tumor for IGRT and 4D Dose Calculation Applications
    Court, L.
    Seco, J.
    Lu, X.
    Ebe, K.
    Mayo, C.
    Ionascu, D.
    Winey, B.
    Giakoumakis, N.
    Aristophanous, M.
    Berbeco, R.
    Rottmann, J.
    Bogdanov, M.
    Schofield, D.
    Lingos, T.
    MEDICAL PHYSICS, 2010, 37 (06)
  • [38] INVITRO STUDY OF THE SPONTANEOUS MOTILITY OF HUMAN GASTROINTESTINAL-TRACT
    MARTIN, MI
    ALEIXANDRE, MA
    MANSO, G
    DEJALON, PDG
    REVISTA ESPANOLA DE LAS ENFERMEDADES DEL APARATO DIGESTIVO, 1986, 69 (03): : 195 - 200
  • [39] A Novel 3D Printed Phantom for 4D PET/CT Imaging and SIB Radiotherapy Verification
    Soultan, D.
    Murphy, J.
    Gill, B.
    Moiseenko, V.
    Cervino, L.
    MEDICAL PHYSICS, 2015, 42 (06) : 3659 - 3659
  • [40] 4D iRIOM: 4D Imaging Radar Inertial Odometry and Mapping
    Zhuang, Yuan
    Wang, Binliang
    Huai, Jianzhu
    Li, Miao
    IEEE ROBOTICS AND AUTOMATION LETTERS, 2023, 8 (06): : 3246 - 3253