Cerebral Radiation Necrosis: Incidence, Pathogenesis, Diagnostic Challenges, and Future Opportunities
暂无分享,去创建一个
N. Tandon | A. Blanco | R. Riascos | L. Ballester | Y. Esquenazi | O. Arevalo | A. Patrizz | Faisal S. Ali | S. Zorofchian | Anthony N Patrizz
[1] C. Brennan,et al. Tracking Tumor Evolution in Glioma through Liquid Biopsies of Cerebrospinal Fluid , 2018, Nature.
[2] P. Aung,et al. Circulating tumour DNA, microRNA and metabolites in cerebrospinal fluid as biomarkers for central nervous system malignancies , 2018, Journal of Clinical Pathology.
[3] Ying Sun,et al. Genome-Wide Association Study of Susceptibility Loci for Radiation-Induced Brain Injury , 2018, Journal of the National Cancer Institute.
[4] Jay-Jiguang Zhu,et al. Detection of the MYD88 p.L265P Mutation in the CSF of a Patient With Secondary Central Nervous System Lymphoma , 2018, Front. Oncol..
[5] Jay-Jiguang Zhu,et al. Analysis of cerebrospinal fluid metabolites in patients with primary or metastatic central nervous system tumors , 2018, Acta neuropathologica communications.
[6] A. Laxton,et al. Staged Stereotactic Radiosurgery for Large Brain Metastases: Local Control and Clinical Outcomes of a One-Two Punch Technique , 2018, Neurosurgery.
[7] Cheng Yu,et al. Stereotactic radiosurgery and ipilimumab for patients with melanoma brain metastases: clinical outcomes and toxicity , 2018, Journal of Neuro-Oncology.
[8] A. Blanco,et al. Cognitive disability in adult patients with brain tumors. , 2018, Cancer treatment reviews.
[9] J. Engelbach,et al. Inhibitors of HIF-1α and CXCR4 Mitigate the Development of Radiation Necrosis in Mouse Brain. , 2017, International journal of radiation oncology, biology, physics.
[10] A. Sloan,et al. RTHP-07. TREATMENT OF BRAIN RADIATION NECROSIS WITH HYPERBARIC OXYGEN: REPORT OF 6 CASES , 2017 .
[11] K. Blackwell,et al. Biopsy of enlarging lesions after stereotactic radiosurgery for brain metastases frequently reveals radiation necrosis , 2017, Neuro-oncology.
[12] Lingjiao Zhang,et al. Survival and complications of stereotactic radiosurgery , 2017, Medicine.
[13] W. Curran,et al. Single-Fraction Stereotactic Radiosurgery (SRS) Alone Versus Surgical Resection and SRS for Large Brain Metastases: A Multi-institutional Analysis. , 2017, International journal of radiation oncology, biology, physics.
[14] T. Kinsella,et al. Repeat Stereotactic Radiosurgery for Locally Recurrent Brain Metastases. , 2017, World neurosurgery.
[15] A. Sloan,et al. The ratio of HLA-DR and VNN2+ expression on CD14+ myeloid derived suppressor cells can distinguish glioblastoma from radiation necrosis patients , 2017, Journal of Neuro-Oncology.
[16] G. Barnett,et al. The risk of radiation necrosis following stereotactic radiosurgery with concurrent systemic therapies , 2017, Journal of Neuro-Oncology.
[17] M. Fabrini,et al. Bevacizumab for the Treatment of Radiation-Induced Cerebral Necrosis: A Systematic Review of the Literature , 2017, Journal of clinical medicine research.
[18] Jiye Li,et al. IDH mutation and MGMT promoter methylation are associated with the pseudoprogression and improved prognosis of glioblastoma multiforme patients who have undergone concurrent and adjuvant temozolomide-based chemoradiotherapy , 2016, Clinical Neurology and Neurosurgery.
[19] Jennifer S. Yu,et al. Association Between Radiation Necrosis and Tumor Biology After Stereotactic Radiosurgery for Brain Metastasis. , 2016, International journal of radiation oncology, biology, physics.
[20] S. Paek,et al. Fractionated Stereotactic Gamma Knife Radiosurgery for Large Brain Metastases: A Retrospective, Single Center Study , 2016, PloS one.
[21] K. Patel,et al. BRAF inhibitor and stereotactic radiosurgery is associated with an increased risk of radiation necrosis , 2016, Melanoma research.
[22] V. Esposito,et al. Single-Fraction Versus Multifraction (3 × 9 Gy) Stereotactic Radiosurgery for Large (>2 cm) Brain Metastases: A Comparative Analysis of Local Control and Risk of Radiation-Induced Brain Necrosis. , 2016, International journal of radiation oncology, biology, physics.
[23] H. Ying,et al. Treatment of cerebral radiation necrosis with nerve growth factor: A prospective, randomized, controlled phase II study. , 2016, Radiotherapy and oncology : journal of the European Society for Therapeutic Radiology and Oncology.
[24] H. Kluger,et al. Does immunotherapy increase the rate of radiation necrosis after radiosurgical treatment of brain metastases? , 2016, Journal of neurosurgery.
[25] G. Barnett,et al. Laser interstitial thermal therapy in the management of brain metastasis and radiation necrosis after radiosurgery: An overview , 2016, Expert review of neurotherapeutics.
[26] Joe Y. Chang,et al. Analysis of risk and predictors of brain radiation necrosis after radiosurgery , 2015, Oncotarget.
[27] A. Sloan,et al. Monteris AXiiiS Stereotactic Miniframe for Intracranial Biopsy: Precision, Feasibility, and Ease of Use , 2015, Operative neurosurgery.
[28] S. Jefferies,et al. Tumour progression or pseudoprogression? A review of post-treatment radiological appearances of glioblastoma. , 2015, Clinical radiology.
[29] Jeong Hoon Kim,et al. Efficacy and Safety of Fractionated Stereotactic Radiosurgery for Large Brain Metastases , 2015, Journal of Korean Neurosurgical Society.
[30] M. McDermott,et al. Adverse radiation effect after stereotactic radiosurgery for brain metastases: incidence, time course, and risk factors. , 2015, Journal of neurosurgery.
[31] R. Wolf,et al. Microvesicles as a Biomarker for Tumor Progression versus Treatment Effect in Radiation/Temozolomide-Treated Glioblastoma Patients , 2014, Translational oncology.
[32] Gelareh Zadeh,et al. The Diagnosis and Treatment of Pseudoprogression, Radiation Necrosis and Brain Tumor Recurrence , 2014, International journal of molecular sciences.
[33] T. Shirao,et al. Comparison of the radiosensitivities of neurons and glial cells derived from the same rat brain , 2014, Experimental and therapeutic medicine.
[34] T. Chenevert,et al. Response-driven imaging biomarkers for predicting radiation necrosis of the brain , 2014, Physics in medicine and biology.
[35] N. Nonoguchi,et al. Inflammation as well as angiogenesis may participate in the pathophysiology of brain radiation necrosis , 2014, Journal of radiation research.
[36] G. Kalamangalam,et al. Stereotactic laser ablation of epileptogenic periventricular nodular heterotopia , 2014, Epilepsy Research.
[37] Samuel T Chao,et al. Challenges with the diagnosis and treatment of cerebral radiation necrosis. , 2013, International journal of radiation oncology, biology, physics.
[38] O. Craciunescu,et al. Concurrent stereotactic radiosurgery and bevacizumab in recurrent malignant gliomas: a prospective trial. , 2013, International journal of radiation oncology, biology, physics.
[39] Tomas Garzon-Muvdi,et al. Histopathological correlates with survival in reoperated glioblastomas , 2013, Journal of Neuro-Oncology.
[40] M. Markey,et al. Differentiating tumor recurrence from treatment necrosis: a review of neuro-oncologic imaging strategies. , 2013, Neuro-oncology.
[41] Nicholas F. Marko,et al. Cerebral radiation necrosis: A review of the pathobiology, diagnosis and management considerations , 2013, Journal of Clinical Neuroscience.
[42] Gene H. Barnett,et al. Laser Interstitial Thermal Therapy for Focal Cerebral Radiation Necrosis: A Case Report and Literature Review , 2012, Stereotactic and Functional Neurosurgery.
[43] Y. Yamada,et al. Radiation necrosis following treatment of high grade glioma—a review of the literature and current understanding , 2012, Acta Neurochirurgica.
[44] Qun-ying Yang,et al. Surgical management of radiation‐induced temporal lobe necrosis in patients with nasopharyngeal carcinoma: Report of 14 cases , 2011, Head & neck.
[45] A. Bozzao,et al. Stereotactic radiosurgery for brain metastases: analysis of outcome and risk of brain radionecrosis , 2011, Radiation oncology.
[46] M. Gilbert,et al. Randomized double-blind placebo-controlled trial of bevacizumab therapy for radiation necrosis of the central nervous system. , 2011, International journal of radiation oncology, biology, physics.
[47] A Heerschap,et al. Discrimination between Metastasis and Glioblastoma Multiforme Based on Morphometric Analysis of MR Images , 2010, American Journal of Neuroradiology.
[48] W. Franklin,et al. Favorable prognosis in patients with high-grade glioma with radiation necrosis: the University of Colorado reoperation series. , 2010, International journal of radiation oncology, biology, physics.
[49] K. Kang,et al. Differentiating radiation necrosis from tumor recurrence in high-grade gliomas: Assessing the efficacy of 18F-FDG PET, 11C-methionine PET and perfusion MRI , 2010, Clinical Neurology and Neurosurgery.
[50] R. Warnick,et al. Irradiated volume as a predictor of brain radionecrosis after linear accelerator stereotactic radiosurgery. , 2010, International journal of radiation oncology, biology, physics.
[51] Adam P Dicker,et al. Hypofractionated stereotactic radiation therapy: an effective therapy for recurrent high-grade gliomas. , 2010, Journal of clinical oncology : official journal of the American Society of Clinical Oncology.
[52] Adam P Dicker,et al. Radiation dose-volume effects in the brain. , 2010, International journal of radiation oncology, biology, physics.
[53] M. Endo,et al. Perfusion weighted magnetic resonance imaging to distinguish the recurrence of metastatic brain tumors from radiation necrosis after stereotactic radiosurgery , 2010, Journal of Neuro-Oncology.
[54] Y. Cihan,et al. Hyperbaric oxygen therapy for radiation‐induced brain necrosis in a patient with primary central nervous system lymphoma , 2009, Journal of surgical oncology.
[55] J. Fike,et al. Neural precursor cells and central nervous system radiation sensitivity. , 2009, Seminars in radiation oncology.
[56] W. Friedman,et al. CAN STANDARD MAGNETIC RESONANCE IMAGING RELIABLY DISTINGUISH RECURRENT TUMOR FROM RADIATION NECROSIS AFTER RADIOSURGERY FOR BRAIN METASTASES? A RADIOGRAPHIC‐PATHOLOGICAL STUDY , 2008, Neurosurgery.
[57] D. Kondziolka,et al. Adverse Radiation Effects after Radiosurgery May Benefit from Oral Vitamin E and Pentoxifylline Therapy: A Pilot Study , 2008, Stereotactic and Functional Neurosurgery.
[58] A. Brandes,et al. MGMT promoter methylation status can predict the incidence and outcome of pseudoprogression after concomitant radiochemotherapy in newly diagnosed glioblastoma patients. , 2008, Journal of clinical oncology : official journal of the American Society of Clinical Oncology.
[59] P. Sminia,et al. Reirradiation tolerance of the human brain. , 2008, International journal of radiation oncology, biology, physics.
[60] Thomas L Chenevert,et al. Differentiation of recurrent brain tumor versus radiation injury using diffusion tensor imaging in patients with new contrast-enhancing lesions. , 2006, Magnetic resonance imaging.
[61] J. Ruben,et al. Cerebral radiation necrosis: incidence, outcomes, and risk factors with emphasis on radiation parameters and chemotherapy. , 2006, International journal of radiation oncology, biology, physics.
[62] Susan M. Chang,et al. Prognostic value of detecting recurrent glioblastoma multiforme in surgical specimens from patients after radiotherapy: should pathology evaluation alter treatment decisions? , 2006, Human pathology.
[63] R. Maciunas,et al. 12 Gy gamma knife radiosurgical volume is a predictor for radiation necrosis in non-AVM intracranial tumors. , 2006, International journal of radiation oncology, biology, physics.
[64] M. Pomper,et al. Quantitative proton magnetic resonance spectroscopic imaging: Regional variations in the corpus callosum and cortical gray matter , 2005, Journal of magnetic resonance imaging : JMRI.
[65] M. Pintilie,et al. Hypoxia and Hypoxia-Inducible Factor-1 Target Genes in Central Nervous System Radiation Injury , 2004, Clinical Cancer Research.
[66] T. Mikkelsen,et al. Associations among Magnetic Resonance Spectroscopy, Apparent Diffusion Coefficients, and Image-Guided Histopathology with Special Attention to Radiation Necrosis , 2004, Neurosurgery.
[67] C. Eskey,et al. Diffusion-weighted imaging in the follow-up of treated high-grade gliomas: tumor recurrence versus radiation injury. , 2004, AJNR. American journal of neuroradiology.
[68] Z. Fuks,et al. Radiation and ceramide-induced apoptosis , 2003, Oncogene.
[69] H. Sugiura,et al. Delayed radiation necrosis with extensive brain edema after gamma knife radiosurgery for multiple cerebral cavernous malformations--case report. , 2003, Neurologia medico-chirurgica.
[70] F. Alessandrini,et al. Gamma knife radiosurgery for brain metastases: a primary therapeutic option. , 2002, Journal of neurosurgery.
[71] Zbigniew Petrovich,et al. Survival and pattern of failure in brain metastasis treated with stereotactic gamma knife radiosurgery , 2002 .
[72] B. Scheithauer,et al. Prospective randomized trial of low- versus high-dose radiation therapy in adults with supratentorial low-grade glioma: initial report of a North Central Cancer Treatment Group/Radiation Therapy Oncology Group/Eastern Cooperative Oncology Group study. , 2002, Journal of clinical oncology : official journal of the American Society of Clinical Oncology.
[73] Mark E Bastin,et al. Diffusion tensor MR imaging of high-grade cerebral gliomas. , 2002, AJNR. American journal of neuroradiology.
[74] B. Alter. Radiosensitivity in Fanconi's anemia patients. , 2002, Radiotherapy and oncology : journal of the European Society for Therapeutic Radiology and Oncology.
[75] R. Gatti. The Inherited Basis of Human Radiosensitivity , 2001, Acta oncologica.
[76] D. Evans,et al. Heritability of cellular radiosensitivity: a marker of low-penetrance predisposition genes in breast cancer? , 1999, American journal of human genetics.
[77] S. Leung,et al. Proton magnetic resonance spectroscopy of late delayed radiation‐induced injury of the brain , 1999, Journal of magnetic resonance imaging : JMRI.
[78] H. Withers,et al. Induction of c-fos and junB mRNA following in vivo brain irradiation. , 1997, Brain research. Molecular brain research.
[79] D. Nelson,et al. White matter changes are correlated significantly with radiation dose. Observations from a randomized dose‐escalation trial for malignant glioma (radiation therapy oncology group 83‐02) , 1994, Cancer.
[80] A. Friedman,et al. Treatment of radiation‐induced nervous system injury with heparin and warfarin , 1994, Neurology.
[81] M. Prados,et al. External irradiation followed by an interstitial high activity iodine-125 implant "boost" in the initial treatment of malignant gliomas: NCOG study 6G-82-2. , 1991, International journal of radiation oncology, biology, physics.
[82] B. Wen,et al. Preliminary results of a pilot study of pentoxifylline in the treatment of late radiation soft tissue necrosis. , 1990, International journal of radiation oncology, biology, physics.
[83] Jiahuai Han,et al. Dexamethasone and pentoxifylline inhibit endotoxin-induced cachectin/tumor necrosis factor synthesis at separate points in the signaling pathway , 1990, The Journal of experimental medicine.
[84] William H. Oldendorf,et al. N-Acetyl-L-Aspartic acid: A literature review of a compound prominent in 1H-NMR spectroscopic studies of brain , 1989, Neuroscience & Biobehavioral Reviews.
[85] P. W. Lee,et al. Cerebral radionecrosis: is surgery necessary? , 1987, Journal of neurology, neurosurgery, and psychiatry.
[86] M. Remler,et al. The late effects of radiation on the blood brain barrier. , 1986, International journal of radiation oncology, biology, physics.
[87] J. Marks,et al. Cerebral radionecrosis: incidence and risk in relation to dose, time, fractionation and volume. , 1981, International journal of radiation oncology, biology, physics.
[88] V. Smith,et al. Therapeutic irradiation and brain injury. , 1980, International journal of radiation oncology, biology, physics.
[89] A. Taylor,et al. Ataxia telangiectasia: a human mutation with abnormal radiation sensitivity , 1975, Nature.
[90] C. G. Hart,et al. The Treatment of Cerebral Ischemia with Hyperbaric Oxygen (OHP) , 1971, Stroke.
[91] A. W. Fischer,et al. Lokales Amyloid im Gehirn , 1930, Deutsche Zeitschrift für Chirurgie.
[92] P. Brown,et al. Treatment of brain metastases with stereotactic radiosurgery and immune checkpoint inhibitors: An international meta-analysis of individual patient data. , 2018, Radiotherapy and oncology : journal of the European Society for Therapeutic Radiology and Oncology.
[93] Monteris AXiiiS Stereotactic Miniframe for Intracranial Biopsy: Precision, Feasibility, and Ease of Use: Erratum. , 2016, Operative neurosurgery.
[94] Y. Korogi,et al. Effect of prophylactic hyperbaric oxygen treatment for radiation-induced brain injury after stereotactic radiosurgery of brain metastases. , 2007, International journal of radiation oncology, biology, physics.
[95] B. Ozturk,et al. Pentoxifylline in prevention of radiation-induced lung toxicity in patients with breast and lung cancer: a double-blind randomized trial. , 2004, International journal of radiation oncology, biology, physics.
[96] A. Friedman,et al. Prognostic value of magnetic resonance imaging-guided stereotactic biopsy in the evaluation of recurrent malignant astrocytoma compared with a lesion due to radiation effect. , 2003, Journal of neurosurgery.
[97] Zbigniew Petrovich,et al. Survival and pattern of failure in brain metastasis treated with stereotactic gamma knife radiosurgery. , 2002, Journal of neurosurgery.
[98] F. Alessandrini,et al. Gamma knife radiosurgery in brain metastases. A primary therapeutic option, even in challenging indications , 2002 .
[99] R. Müller,et al. Risk analysis of LINAC radiosurgery in patients with arteriovenous malformation (AVM). , 1997, Acta neurochirurgica. Supplement.
[100] D. Kondziolka,et al. Radiosurgery and brain tolerance: an analysis of neurodiagnostic imaging changes after gamma knife radiosurgery for arteriovenous malformations. , 1992, International journal of radiation oncology, biology, physics.
[101] L. F. Fajardo,et al. Vascular lesions following radiation. , 1988, Pathology annual.
[102] A. Lok,et al. Apoplectic Intracerebral Hemorrhage: An Unusual Complication of Cerebral Radiation Necrosis , 1987, Pathology.
[103] D. Jewett,et al. Diagnosis of acute nerve compression in the cat with high frequency nerve trains evoked responses. , 1983, Neurosurgery.