Magnetic resonance imaging in precision radiation therapy for lung cancer.
暂无分享,去创建一个
Rob H N Tijssen | Jose Belderbos | Corinne Faivre-Finn | Andreas Wetscherek | Fiona McDonald | Michael Dubec | C. Faivre-Finn | J. Belderbos | A. Wetscherek | H. Bainbridge | F. McDonald | A. Salem | R. Tijssen | M. Dubec | C. V. van Es | Hannah Bainbridge | Ahmed Salem | Corinne Van Es
[1] G. Bydder,et al. Enhancement of relaxation rate with paramagnetic contrast agents in NMR imaging. , 1981, The Journal of computed tomography.
[2] K. Darwiche,et al. Superior sulcus (Pancoast) tumors: current evidence on diagnosis and radical treatment. , 2013, Journal of thoracic disease.
[3] D. Moses,et al. Magnetic resonance imaging in lung: a review of its potential for radiotherapy. , 2016, The British journal of radiology.
[4] P. Lambin,et al. A comparative study of the hypoxia PET tracers [¹⁸F]HX4, [¹⁸F]FAZA, and [¹⁸F]FMISO in a preclinical tumor model. , 2015, International journal of radiation oncology, biology, physics.
[5] B. Stieltjes,et al. Magnetic resonance imaging for staging of non-small-cell lung cancer-technical advances and unmet needs. , 2015, Journal of thoracic disease.
[6] Geoffrey D. Hugo,et al. Variabilities of Magnetic Resonance Imaging-, Computed Tomography-, and Positron Emission Tomography-Computed Tomography-Based Tumor and Lymph Node Delineations for Lung Cancer Radiation Therapy Planning. , 2017, International journal of radiation oncology, biology, physics.
[7] A N T J Kotte,et al. Integrating a MRI scanner with a 6 MV radiotherapy accelerator: dose deposition in a transverse magnetic field. , 2004, Physics in medicine and biology.
[8] B. Lord,et al. Planting the seeds of success: CT‐guided gold seed fiducial marker placement to guide robotic radiosurgery , 2013, Journal of medical imaging and radiation oncology.
[9] P. Grenier,et al. Primary lung cancer staging: prospective comparative study of MR imaging with CT. , 1986, Radiology.
[10] B. Nelms,et al. Anatomical contouring variability in thoracic organs at risk. , 2016, Medical dosimetry : official journal of the American Association of Medical Dosimetrists.
[11] Sasa Mutic,et al. The ViewRay system: magnetic resonance-guided and controlled radiotherapy. , 2014, Seminars in radiation oncology.
[12] James L Tatum,et al. Hypoxia: Importance in tumor biology, noninvasive measurement by imaging, and value of its measurement in the management of cancer therapy , 2006, International journal of radiation biology.
[13] E. V. van Beek,et al. PET/CT versus MRI for diagnosis, staging, and follow‐up of lung cancer , 2015, Journal of magnetic resonance imaging : JMRI.
[14] P C Levendag,et al. Lung tumor tracking during stereotactic radiotherapy treatment with the CyberKnife: Marker placement and early results , 2006, Acta oncologica.
[15] W. Oyen,et al. PET in the management of locally advanced and metastatic NSCLC , 2015, Nature Reviews Clinical Oncology.
[16] Jose Belderbos,et al. Meta-analysis of concomitant versus sequential radiochemotherapy in locally advanced non-small-cell lung cancer. , 2010, Journal of clinical oncology : official journal of the American Society of Clinical Oncology.
[17] C. Faivre-Finn,et al. Data mining identifies the base of the heart as a dose-sensitive region affecting survival in lung cancer patients. , 2016 .
[18] B. O'neill,et al. MR vs CT imaging: low rectal cancer tumour delineation for three-dimensional conformal radiotherapy. , 2009, The British journal of radiology.
[19] R. V. van Klaveren,et al. Stereotactic radiotherapy with real-time tumor tracking for non-small cell lung cancer: clinical outcome. , 2009, Radiotherapy and oncology : journal of the European Society for Therapeutic Radiology and Oncology.
[20] J. Debatin,et al. Whole-body MR imaging: evaluation of patients for metastases. , 2004, Radiology.
[21] S. Goyal,et al. Adaptive radiotherapy in lung cancer: dosimetric benefits and clinical outcome. , 2014, The British journal of radiology.
[22] M van Herk,et al. Definition of the prostate in CT and MRI: a multi-observer study. , 1999, International journal of radiation oncology, biology, physics.
[23] E. Rofstad,et al. Dynamic contrast‐enhanced‐MRI of tumor hypoxia , 2012, Magnetic resonance in medicine.
[24] Jan-Jakob Sonke,et al. The PET-boost randomised phase II dose-escalation trial in non-small cell lung cancer. , 2012, Radiotherapy and oncology : journal of the European Society for Therapeutic Radiology and Oncology.
[25] Randall K Ten Haken,et al. Effect of Midtreatment PET/CT-Adapted Radiation Therapy With Concurrent Chemotherapy in Patients With Locally Advanced Non–Small-Cell Lung Cancer: A Phase 2 Clinical Trial , 2017, JAMA oncology.
[26] Andrew Scarsbrook,et al. The use of deformable image registration to integrate diagnostic MRI into the radiotherapy planning pathway for head and neck cancer. , 2017, Radiotherapy and oncology : journal of the European Society for Therapeutic Radiology and Oncology.
[27] J. Sedat,et al. Chest wall invasion by bronchogenic carcinoma: evaluation with MR imaging. , 1993, Radiology.
[28] C. Faivre-Finn,et al. Protocol for the isotoxic intensity modulated radiotherapy (IMRT) in stage III non-small cell lung cancer (NSCLC): a feasibility study , 2016, BMJ Open.
[29] M van Herk,et al. MRI-guided prostate adaptive radiotherapy - A systematic review. , 2016, Radiotherapy and oncology : journal of the European Society for Therapeutic Radiology and Oncology.
[30] R. Onimaru,et al. Intrafractional Baseline Shift or Drift of Lung Tumor Motion During Gated Radiation Therapy With a Real-Time Tumor-Tracking System. , 2016, International journal of radiation oncology, biology, physics.
[31] John E. Bayouth,et al. A dose homogeneity and conformity evaluation between ViewRay and pinnacle-based linear accelerator IMRT treatment plans , 2014, Journal of medical physics.
[32] D. Landau,et al. Optimizing collimator margins for isotoxically dose-escalated conformal radiation therapy of non-small cell lung cancer. , 2014, International journal of radiation oncology, biology, physics.
[33] W. Wilson,et al. Targeting hypoxia in cancer therapy , 2011, Nature Reviews Cancer.
[34] Thorsten Heußer,et al. 4D respiratory motion‐compensated image reconstruction of free‐breathing radial MR data with very high undersampling , 2017, Magnetic resonance in medicine.
[35] E. Haacke,et al. Preoperative mediastinal and hilar nodal staging with diffusion-weighted magnetic resonance imaging and fluorodeoxyglucose positron emission tomography/computed tomography in patients with non-small-cell lung cancer: which is better? , 2012, The Journal of surgical research.
[36] Carri Glide-Hurst,et al. High-quality t2-weighted 4-dimensional magnetic resonance imaging for radiation therapy applications. , 2015, International journal of radiation oncology, biology, physics.
[37] Jan-Jakob Sonke,et al. Differential motion between mediastinal lymph nodes and primary tumor in radically irradiated lung cancer patients. , 2014, International journal of radiation oncology, biology, physics.
[38] Geoff J M Parker,et al. Oxygen-Enhanced MRI Accurately Identifies, Quantifies, and Maps Tumor Hypoxia in Preclinical Cancer Models. , 2016, Cancer research.
[39] E. Rofstad,et al. Assessment of hypoxia and radiation response in intramuscular experimental tumors by dynamic contrast-enhanced magnetic resonance imaging. , 2012, Radiotherapy and oncology : journal of the European Society for Therapeutic Radiology and Oncology.
[40] Marcel van Herk,et al. Errors and margins in radiotherapy. , 2004, Seminars in radiation oncology.
[41] Thierry Gevaert,et al. Treating patients with real-time tumor tracking using the Vero gimbaled linac system: implementation and first review. , 2014, Radiotherapy and oncology : journal of the European Society for Therapeutic Radiology and Oncology.
[42] T. Iwasawa,et al. Prediction of postoperative pulmonary function using perfusion magnetic resonance imaging of the lung , 2002, Journal of magnetic resonance imaging : JMRI.
[43] B. G. Fallone,et al. Design and Optimization of Superconducting MRI Magnet Systems With Magnetic Materials , 2012, IEEE Transactions on Applied Superconductivity.
[44] Benjamin Movsas,et al. Consideration of dose limits for organs at risk of thoracic radiotherapy: atlas for lung, proximal bronchial tree, esophagus, spinal cord, ribs, and brachial plexus. , 2011, International journal of radiation oncology, biology, physics.
[45] P J Keall,et al. Dose enhancement in radiotherapy of small lung tumors using inline magnetic fields: A Monte Carlo based planning study. , 2015, Medical physics.
[46] T. Nägele,et al. Fast Whole-Body Assessment of Metastatic Disease Using a Novel Magnetic Resonance Imaging System: Initial Experiences , 2005, Investigative radiology.
[47] Geoff J M Parker,et al. Preliminary study of oxygen-enhanced longitudinal relaxation in MRI: a potential novel biomarker of oxygenation changes in solid tumors. , 2009, International journal of radiation oncology, biology, physics.
[48] S. Jolly,et al. Cardiac Events After Radiation Therapy: Combined Analysis of Prospective Multicenter Trials for Locally Advanced Non-Small-Cell Lung Cancer. , 2017, Journal of clinical oncology : official journal of the American Society of Clinical Oncology.
[49] J. Usuda,et al. Cine MRI enables better therapeutic planning than CT in cases of possible lung cancer chest wall invasion. , 2010, Lung cancer.
[50] Martin F Fast,et al. MRI-guided lung SBRT: Present and future developments. , 2017, Physica medica : PM : an international journal devoted to the applications of physics to medicine and biology : official journal of the Italian Association of Biomedical Physics.
[51] C. Baird,et al. The pilot study. , 2000, Orthopedic nursing.
[52] U. Oelfke. Magnetic Resonance Imaging-guided Radiation Therapy: Technological Innovation Provides a New Vision of Radiation Oncology Practice. , 2015, Clinical oncology (Royal College of Radiologists (Great Britain)).
[53] G. Beluffi,et al. MRI of the lung , 2010, La radiologia medica.
[54] R. Govindan,et al. PROCLAIM: Randomized Phase III Trial of Pemetrexed-Cisplatin or Etoposide-Cisplatin Plus Thoracic Radiation Therapy Followed by Consolidation Chemotherapy in Locally Advanced Nonsquamous Non-Small-Cell Lung Cancer. , 2016, Journal of clinical oncology : official journal of the American Society of Clinical Oncology.
[55] J. Dai,et al. The effect of image-guided radiation therapy on the margin between the clinical target volume and planning target volume in lung cancer , 2014, Journal of medical radiation sciences.
[56] Geoffrey D. Hugo,et al. Dosimetric impact of online correction via cone-beam CT-based image guidance for stereotactic lung radiotherapy. , 2010, International journal of radiation oncology, biology, physics.
[57] Aaron D. Falchook,et al. Dose-volume differences for computed tomography and magnetic resonance imaging segmentation and planning for proton prostate cancer therapy. , 2008, International journal of radiation oncology, biology, physics.
[58] M. Blettner,et al. Radiation dose distribution in functional heart regions from tangential breast cancer radiotherapy. , 2016, Radiotherapy and oncology : journal of the European Society for Therapeutic Radiology and Oncology.
[59] Sasa Mutic,et al. Quality of Intensity Modulated Radiation Therapy Treatment Plans Using a ⁶⁰Co Magnetic Resonance Image Guidance Radiation Therapy System. , 2015, International journal of radiation oncology, biology, physics.
[60] G. Starkschall,et al. Assessment of consistency in contouring of normal‐tissue anatomic structures , 2003, Journal of applied clinical medical physics.
[61] Marcel van Herk,et al. Reduction of observer variation using matched CT-PET for lung cancer delineation: a three-dimensional analysis. , 2006, International Journal of Radiation Oncology, Biology, Physics.
[62] Geoffrey D. Hugo,et al. Interfraction displacement of primary tumor and involved lymph nodes relative to anatomic landmarks in image guided radiation therapy of locally advanced lung cancer. , 2014, International journal of radiation oncology, biology, physics.
[63] Radhe Mohan,et al. Four-dimensional radiotherapy planning for DMLC-based respiratory motion tracking. , 2005, Medical physics.
[64] Steve B. Jiang,et al. MRI-guided tumor tracking in lung cancer radiotherapy , 2011, Physics in medicine and biology.
[65] C. Rowbottom,et al. New radiotherapy approaches in locally advanced non-small cell lung cancer. , 2014, European journal of cancer.
[66] Sara Ramella,et al. Local Control and Toxicity of Adaptive Radiotherapy Using Weekly CT Imaging: Results from the LARTIA Trial in Stage III NSCLC , 2017, Journal of thoracic oncology : official publication of the International Association for the Study of Lung Cancer.
[67] D. Yan,et al. Clinicopathologic analysis of microscopic extension in lung adenocarcinoma: defining clinical target volume for radiotherapy. , 2007, International journal of radiation oncology, biology, physics.
[68] Jan-Jakob Sonke,et al. Comparison of different strategies to use four-dimensional computed tomography in treatment planning for lung cancer patients. , 2008, International journal of radiation oncology, biology, physics.
[69] Uwe Oelfke,et al. Lung stereotactic body radiotherapy with an MR-linac – Quantifying the impact of the magnetic field and real-time tumor tracking , 2016, Radiotherapy and oncology : journal of the European Society for Therapeutic Radiology and Oncology.
[70] Y. Ohno,et al. Diffusion-weighted MRI versus 18F-FDG PET/CT: performance as predictors of tumor treatment response and patient survival in patients with non-small cell lung cancer receiving chemoradiotherapy. , 2012, AJR. American journal of roentgenology.
[71] G. Weinstein,et al. Prediction of Response to Chemoradiation Therapy in Squamous Cell Carcinomas of the Head and Neck Using Dynamic Contrast-Enhanced MR Imaging , 2010, American Journal of Neuroradiology.
[72] Stuart Crozier,et al. The Australian magnetic resonance imaging-linac program. , 2014, Seminars in radiation oncology.
[73] Satyapal Rathee,et al. Prior data assisted compressed sensing: a novel MR imaging strategy for real time tracking of lung tumors. , 2014, Medical physics.
[74] B. Fallone,et al. First MR images obtained during megavoltage photon irradiation from a prototype integrated linac-MR system. , 2009, Medical physics.
[75] W. Curran,et al. Standard-dose versus high-dose conformal radiotherapy with concurrent and consolidation carboplatin plus paclitaxel with or without cetuximab for patients with stage IIIA or IIIB non-small-cell lung cancer (RTOG 0617): a randomised, two-by-two factorial phase 3 study. , 2015, The Lancet. Oncology.
[76] George Starkschall,et al. Assessment of gross tumor volume regression and motion changes during radiotherapy for non-small-cell lung cancer as measured by four-dimensional computed tomography. , 2007, International journal of radiation oncology, biology, physics.
[77] Matthias Guckenberger,et al. kV Cone-Beam CT-Based IGRT , 2011, Strahlentherapie und Onkologie.
[78] F. Detterbeck,et al. Special treatment issues in non-small cell lung cancer: Diagnosis and management of lung cancer, 3rd ed: American College of Chest Physicians evidence-based clinical practice guidelines. , 2013, Chest.
[79] Heinz-Peter Schlemmer,et al. PET/MRI: Paving the Way for the Next Generation of Clinical Multimodality Imaging Applications , 2010, Journal of Nuclear Medicine.
[80] A. Jackson,et al. Noninvasive tumor hypoxia measurement using magnetic resonance imaging in murine U87 glioma xenografts and in patients with glioblastoma , 2014, Magnetic resonance in medicine.
[81] Nikolai J Mickevicius,et al. Investigation of undersampling and reconstruction algorithm dependence on respiratory correlated 4D-MRI for online MR-guided radiation therapy , 2017, Physics in medicine and biology.
[82] You Lu,et al. Prognostic role of hypoxic inducible factor expression in non-small cell lung cancer: a meta-analysis. , 2013, Asian Pacific journal of cancer prevention : APJCP.
[83] Matthias Guckenberger,et al. Accuracy and inter-observer variability of 3D versus 4D cone-beam CT based image-guidance in SBRT for lung tumors , 2012, Radiation oncology.
[84] Matthias Guckenberger,et al. Potential of image-guidance, gating and real-time tracking to improve accuracy in pulmonary stereotactic body radiotherapy. , 2009, Radiotherapy and oncology : journal of the European Society for Therapeutic Radiology and Oncology.
[85] K. Suga,et al. Perfusion Characteristics of Radiation-Injured Lung on Gd-DTPA-Enhanced Dynamic Magnetic Resonance Imaging , 2002, Investigative radiology.
[86] Gregor Sommer,et al. Multimodal hypoxia imaging and intensity modulated radiation therapy for unresectable non-small-cell lung cancer: the HIL trial , 2012, Radiation oncology.
[87] C. Ménard,et al. Introduction: Systems for magnetic resonance image guided radiation therapy. , 2014, Seminars in radiation oncology.
[88] Geoffrey D. Hugo,et al. Apparent diffusion coefficient (ADC) change on repeated diffusion-weighted magnetic resonance imaging during radiochemotherapy for non-small cell lung cancer: A pilot study. , 2016, Lung cancer.
[89] Jane Higgins,et al. Comparison of spine, carina, and tumor as registration landmarks for volumetric image-guided lung radiotherapy. , 2009, International journal of radiation oncology, biology, physics.
[90] Satyapal Rathee,et al. Evaluation of a lung tumor autocontouring algorithm for intrafractional tumor tracking using low-field MRI: a phantom study. , 2012, Medical physics.
[91] J. Galvin,et al. Contouring variations and the role of atlas in non-small cell lung cancer radiation therapy: Analysis of a multi-institutional preclinical trial planning study. , 2015, Practical radiation oncology.
[92] J. Choi,et al. Non-small cell lung cancer staging: efficacy comparison of integrated PET/CT versus 3.0-T whole-body MR imaging. , 2008, Radiology.
[93] Charis Kontaxis,et al. Towards adaptive IMRT sequencing for the MR-linac , 2015, Physics in medicine and biology.
[94] Bjorn Stemkens,et al. Optimizing 4-dimensional magnetic resonance imaging data sampling for respiratory motion analysis of pancreatic tumors. , 2015, International journal of radiation oncology, biology, physics.
[95] Byung-Tae Kim,et al. Non-small cell lung cancer: prospective comparison of integrated FDG PET/CT and CT alone for preoperative staging. , 2005, Radiology.
[96] Evis Sala,et al. Semiquantitative and quantitative dynamic contrast-enhanced magnetic resonance imaging measurements predict radiation response in cervix cancer. , 2009, International journal of radiation oncology, biology, physics.
[97] S P M Crijns,et al. Proof of concept of MRI-guided tracked radiation delivery: tracking one-dimensional motion , 2012, Physics in medicine and biology.
[98] Z. Jia,et al. Comparison of 18F-FDG PET/CT and DWI for detection of mediastinal nodal metastasis in non-small cell lung cancer: A meta-analysis , 2017, PloS one.
[99] T. Nyholm,et al. A review of substitute CT generation for MRI-only radiation therapy , 2017, Radiation oncology.
[100] Yue Cao,et al. Metabolic tumor volume on PET reduced more than gross tumor volume on CT during radiotherapy in patients with non-small cell lung cancer treated with 3DCRT or SBRT , 2013, Journal of Radiation Oncology.
[101] H Shirato,et al. Magnetic resonance imaging system for three-dimensional conformal radiotherapy and its impact on gross tumor volume delineation of central nervous system tumors. , 2001, International journal of radiation oncology, biology, physics.
[102] Byung-Tae Kim,et al. Coregistered whole body magnetic resonance imaging‐positron emission tomography (MRI‐PET) versus PET‐computed tomography plus brain MRI in staging resectable lung cancer , 2013, Cancer.
[103] Bjorn Stemkens,et al. Image-driven, model-based 3D abdominal motion estimation for MR-guided radiotherapy , 2016, Physics in medicine and biology.
[104] Baosheng Li,et al. Magnetic resonance imaging for N staging in non-small cell lung cancer: A systematic review and meta-analysis , 2015, Thoracic cancer.
[105] Jan-Jakob Sonke,et al. Intra thoracic anatomical changes in lung cancer patients during the course of radiotherapy. , 2014, Radiotherapy and oncology : journal of the European Society for Therapeutic Radiology and Oncology.
[106] A. Kishan,et al. A treatment planning comparison between modulated tri-cobalt-60 teletherapy and linear accelerator-based stereotactic body radiotherapy for central early-stage non-small cell lung cancer. , 2016, Medical dosimetry : official journal of the American Association of Medical Dosimetrists.
[107] A J Cole,et al. Motion management for radical radiotherapy in non-small cell lung cancer. , 2014, Clinical oncology (Royal College of Radiologists (Great Britain)).
[108] Kazem Rahimi,et al. A cardiac contouring atlas for radiotherapy , 2017, Radiotherapy and oncology : journal of the European Society for Therapeutic Radiology and Oncology.
[109] N. Wu,et al. Diffusion-weighted magnetic resonance imaging of lung cancer at 3.0 T: a preliminary study on monitoring diffusion changes during chemoradiation therapy. , 2012, Clinical imaging.
[110] Sungheon Kim,et al. Golden‐angle radial sparse parallel MRI: Combination of compressed sensing, parallel imaging, and golden‐angle radial sampling for fast and flexible dynamic volumetric MRI , 2014, Magnetic resonance in medicine.
[111] Charis Kontaxis,et al. A new methodology for inter- and intrafraction plan adaptation for the MR-linac , 2015, Physics in medicine and biology.
[112] Shipboard ScientiÞc Party. 3. Methods , 1993, Framing Prior Consultation in Brazil.
[113] Jan J W Lagendijk,et al. MRI/linac integration. , 2008, Radiotherapy and oncology : journal of the European Society for Therapeutic Radiology and Oncology.