Relationship between radiation dose and microbleed formation in patients with malignant glioma
暂无分享,去创建一个
Susan M. Chang | C. Hess | J. Lupo | M. Anwar | M. Wahl
[1] S. Nunes,et al. Microbleeds and cavernomas after radiotherapy for paediatric primary brain tumours , 2017, Journal of the Neurological Sciences.
[2] J. Lupo,et al. Presence of cerebral microbleeds is associated with worse executive function in pediatric brain tumor survivors. , 2016, Neuro-oncology.
[3] J. Lupo,et al. RO-02CEREBRAL MICROBLEEDS ARE ASSOCIATED WITH WORSE EXECUTIVE FUNCTION IN PEDIATRIC BRAIN TUMOR SURVIVORS , 2016 .
[4] Walter J. Curran,et al. Radiation plus Procarbazine, CCNU, and Vincristine in Low-Grade Glioma. , 2016, The New England journal of medicine.
[5] Yi Li,et al. Temporal Cerebral Microbleeds Are Associated With Radiation Necrosis and Cognitive Dysfunction in Patients Treated for Nasopharyngeal Carcinoma. , 2016, International journal of radiation oncology, biology, physics.
[6] Susan M. Chang,et al. The effects of anti-angiogenic therapy on the formation of radiation-induced microbleeds in normal brain tissue of patients with glioma. , 2016, Neuro-oncology.
[7] E. Mori,et al. A comparative study of the extent of cerebral microvascular injury following whole-brain irradiation versus reduced-field irradiation in long-term survivors of intracranial germ cell tumors. , 2015, Radiotherapy and oncology : journal of the European Society for Therapeutic Radiology and Oncology.
[8] S. Deadwyler,et al. Pathology of Fractionated Whole-Brain Irradiation in Rhesus Monkeys (Macaca mulatta) , 2015, Radiation research.
[9] P. Sneed,et al. Standardization and quality assurance of radiation therapy volumes for adults with high-grade gliomas. , 2014, Seminars in radiation oncology.
[10] A. Claviez,et al. Detection of irreversible changes in susceptibility-weighted images after whole-brain irradiation of children , 2013, Neuroradiology.
[11] Takashi Watanabe,et al. Radiation-Induced Microbleeds after Cranial Irradiation: Evaluation by Phase-Sensitive Magnetic Resonance Imaging with 3.0 Tesla , 2013, Yonago acta medica.
[12] T. Noguchi,et al. Distributional Impact of Brain Microbleeds on Global Cognitive Function in Adults Without Neurological Disorder , 2012, Stroke.
[13] Christopher P Hess,et al. 7-Tesla susceptibility-weighted imaging to assess the effects of radiotherapy on normal-appearing brain in patients with glioma. , 2012, International journal of radiation oncology, biology, physics.
[14] Andreas Charidimou,et al. Cerebral microbleeds: detection, mechanisms and clinical challenges , 2011 .
[15] V. Gudnason,et al. Cerebral microbleeds, retinopathy, and dementia , 2010, Neurology.
[16] K. Hess,et al. Neurocognition in patients with brain metastases treated with radiosurgery or radiosurgery plus whole-brain irradiation: a randomised controlled trial. , 2009, The Lancet. Oncology.
[17] W. M. van der Flier,et al. Patients With Alzheimer Disease With Multiple Microbleeds: Relation With Cerebrospinal Fluid Biomarkers and Cognition , 2009, Stroke.
[18] L. Douw,et al. Cognitive and radiological effects of radiotherapy in patients with low-grade glioma: long-term follow-up , 2009, The Lancet Neurology.
[19] Sharmila Majumdar,et al. GRAPPA-based susceptibility-weighted imaging of normal volunteers and patients with brain tumor at 7 T. , 2009, Magnetic resonance imaging.
[20] R. Mirimanoff,et al. Effects of radiotherapy with concomitant and adjuvant temozolomide versus radiotherapy alone on survival in glioblastoma in a randomised phase III study: 5-year analysis of the EORTC-NCIC trial. , 2009, The Lancet. Oncology.
[21] E Mark Haacke,et al. Susceptibility-weighted imaging: clinical angiographic applications. , 2009, Magnetic resonance imaging clinics of North America.
[22] Y. Nanri,et al. Brain Microbleeds and Global Cognitive Function in Adults Without Neurological Disorder , 2008, Stroke.
[23] Daniel B. Vigneron,et al. Development of a robust method for generating 7.0 T multichannel phase images of the brain with application to normal volunteers and patients with neurological diseases , 2008, NeuroImage.
[24] Toshinori Hirai,et al. Detection of hemorrhagic hypointense foci in the brain on susceptibility-weighted imaging clinical and phantom studies. , 2007, Academic radiology.
[25] U. Yoon,et al. Clinical Significance of Microbleeds in Subcortical Vascular Dementia , 2007, Stroke.
[26] E M Haacke,et al. Imaging cerebral amyloid angiopathy with susceptibility-weighted imaging. , 2007, AJNR. American journal of neuroradiology.
[27] S. Majumdar,et al. Autocalibrating parallel imaging of in vivo trabecular bone microarchitecture at 3 Tesla , 2006, Magnetic resonance in medicine.
[28] Yu-Chung N. Cheng,et al. Susceptibility weighted imaging (SWI) , 2004, Zeitschrift fur medizinische Physik.
[29] Eric E. Smith,et al. Spatial clustering of hemorrhages in probable cerebral amyloid angiopathy , 2005, Annals of neurology.
[30] E. Haacke,et al. Imaging iron stores in the brain using magnetic resonance imaging. , 2005, Magnetic resonance imaging.
[31] D. Werring,et al. Cognitive dysfunction in patients with cerebral microbleeds on T2*-weighted gradient-echo MRI. , 2004, Brain : a journal of neurology.
[32] J. Jolles,et al. Effect of radiotherapy and other treatment-related factors on mid-term to long-term cognitive sequelae in low-grade gliomas: a comparative study , 2002, The Lancet.
[33] Michael Brady,et al. Improved Optimization for the Robust and Accurate Linear Registration and Motion Correction of Brain Images , 2002, NeuroImage.
[34] D. Louis Collins,et al. Application of Information Technology: A Four-Dimensional Probabilistic Atlas of the Human Brain , 2001, J. Am. Medical Informatics Assoc..
[35] Stephen M. Smith,et al. A global optimisation method for robust affine registration of brain images , 2001, Medical Image Anal..
[36] K Schnabel,et al. Late radiation toxicity after whole brain radiotherapy: the influence of antiepileptic drugs. , 1999, American journal of clinical oncology.
[37] J. Debus,et al. Delayed vascular injury after single high-dose irradiation in the rat brain: histologic immunohistochemical, and angiographic studies. , 1999, Radiology.
[38] C. Hess,et al. Malignant glioma: patterns of failure following individually tailored limited volume irradiation. , 1994, Radiotherapy and oncology : journal of the European Society for Therapeutic Radiology and Oncology.
[39] E C Halperin,et al. Radiation therapy treatment planning in supratentorial glioblastoma multiforme: an analysis based on post mortem topographic anatomy with CT correlations. , 1989, International journal of radiation oncology, biology, physics.
[40] B A Kall,et al. Imaging-based stereotaxic serial biopsies in untreated intracranial glial neoplasms. , 1987, Journal of neurosurgery.
[41] P. Burger,et al. The morphologic effects of radiation administered therapeutically for intracranial gliomas.A Postmortem study of 25 cases , 1979, Cancer.