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Chapter 64 - Radiation-Induced Vascular Disease

from Section 6 - Systemic Disorders That Also Involve the Cerebrovascular System

Published online by Cambridge University Press:  15 June 2018

Louis Caplan
Affiliation:
Beth Israel-Deaconess Medical Center, Boston
José Biller
Affiliation:
Loyola University Stritch School of Medicine, Chicago
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Publisher: Cambridge University Press
Print publication year: 2018

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References

Atkinson, JL, Sundt, TM Jr., Dale, AJ, Cascino, TL, Nichols, DA. 1989. Radiation-associated atheromatous disease of the cervical carotid artery: Report of seven cases and review of the literature. Neurosurgery 24:171–8.Google Scholar
Balentova, S, Adamkov, M. 2015. Molecular, cellular and functional effects of radiation-induced brain injury: A review. Int J Mol Sci 16:27796–815.CrossRefGoogle ScholarPubMed
Black, DF, Bartleson, JD, Bell, ML, Lachance, DH. 2006. SMART: Stroke-like migraine attacks after radiation therapy. Cephalalgia 26:1137–42.Google Scholar
Black, DF, Morris, JM, Lindell, EP, et al. 2013. Stroke-like migraine attacks after radiation therapy (SMART) syndrome is not always completely reversible: A case series. Am J Neuroradiol 34:2298–303.Google Scholar
Bowers, DC, McNeil, DE, Liu, Y, et al. 2005. Stroke as a late treatment effect of Hodgkin’s disease: A report from the Childhood Cancer Survivor Study. J Clin Oncol 23:6508–15.CrossRefGoogle ScholarPubMed
Bowers, DC, Liu, Y, Leisenring, W, et al. 2006. Late-occurring stroke among long-term survivors of childhood leukemia and brain tumors: A report from the Childhood Cancer Survivor Study. J Clin Oncol 24:5277–82.CrossRefGoogle ScholarPubMed
Brandsma, D, Stalpers, L, Taal, W, Sminia, P, van den Bent, MJ. 2008. Clinical features, mechanisms, and management of pseudoprogression in malignant gliomas. Lancet Oncol 9:453–61.Google Scholar
Brown, WR, Blair, RM, Moody, DM, et al. 2007. Capillary loss precedes the cognitive impairment induced by fractionated whole-brain irradiation: A potential rat model of vascular dementia. J Neurol Sci 257:6771.Google Scholar
Campen, CJ, Kranick, SM, Kasner, SE, et al. 2012. Cranial irradiation increases risk of stroke in pediatric brain tumor survivors. Stroke 43:3035–40.Google Scholar
Conomy, JP, Kellermeyer, RW. 1975. Delayed cerebrovascular consequences of therapeutic radiation. A clinicopathologic study of a stroke associated with radiation-related carotid arteriopathy. Cancer 36:1702–8.Google Scholar
Cullere, X, Plovie, E, Bennett, PM, MacRae, CA, Mayadas, TN. 2015. The cerebral cavernous malformation proteins CCM2L and CCM2 prevent the activation of the MAP kinase MEKK3. Proc Natl Acad Sci USA 112:14284–9.CrossRefGoogle ScholarPubMed
DeAngelis, LM, Delattre, JY, Posner, JB. 1989. Radiation-induced dementia in patients cured of brain metastases. Neurology 39:789–96.Google Scholar
Fajardo, LF, Berthrong, M. 1988. Vascular lesions following radiation. Pathol Annual 23:297330.Google Scholar
Glantz, MJ, Burger, PC, Friedman, AH, et al. 1994. Treatment of radiation-induced nervous system injury with heparin and warfarin. Neurology 44:2020–7.Google Scholar
Gómez-Cibeira, E, Calleja-Castaño, P, Gonzalez de la Aleja, J, et al. 2015. Brain magnetic resonance spectroscopy findings in the stroke-like migraine attacks after radiation therapy (SMART) syndrome. J Neuroimaging 25:1056–8.Google Scholar
Haymaker, W, Ibrahim, MZ, Miquel, J, Call, N, Riopelle, AJ. 1968. Delayed radiation effects in the brains of monkeys exposed to X- and gamma-rays. J Neuropathol Exp Neurol 27:5079.Google Scholar
Jabbour, P, Gault, J, Murk, SE, Awad, IA. 2004. Multiple spinal cavernous malformations with atypical phenotype after prior irradiation: Case report. Neurosurgery 55:1431.Google Scholar
Johannesen, TB, Lien, HH, Hole, KH, Lote, K. 2003. Radiological and clinical assessment of long-term brain tumour survivors after radiotherapy. Radiother Oncol 69:169–76.Google Scholar
Kölzer, M, Arenz, C, Ferlinz, K, et al. 2003. Phosphatidylinositol-3,5-bisphosphate is a potent and selective inhibitor of acid sphingomyelinase. Biol Chem 384:1293–8.Google Scholar
Li, YQ, Chen, P, Haimovitz-Friedman, A, Reilly, RM, Wong, CS. 2003. Endothelial apoptosis initiates acute blood–brain barrier disruption after ionizing radiation. Cancer Res 63:5950–6.Google Scholar
Ljubimova, NV, Levitman, MK, Plotnikova, ED, Eidus, LKh. 1991. Endothelial cell population dynamics in rat brain after local irradiation. Br J Radiol 64:934–40.Google Scholar
Maraire, JN, Abdulrauf, SI, Berger, S, Knisely, J, Awad, IA. 1999. De novo development of a cavernous malformation of the spinal cord. J Neurosurg 90:S2348.Google Scholar
Marchi, S, Corricelli, M, Trapani, E, et al. 2015. Defective autophagy is a key feature of cerebral cavernous malformations. EMBO Mol Med 7:1403–17.Google Scholar
Mueller, S, Fullerton, HJ, Stratton, K, et al. 2013. Radiation, atherosclerotic risk factors, and stroke risk in survivors of pediatric cancer: A report from the Childhood Cancer Survivor Study. Int J Radiat Oncol Biol Phys 86:649–55.CrossRefGoogle Scholar
Nieder, C, Zimmermann, FB, Adam, M, Molls, M. 2005. The role of pentoxifylline as a modifier of radiation therapy. Cancer Treat Rev 6:448–55.Google Scholar
Nimjee, SM, Powers, CJ, Bulsara, KR. 2006. Review of the literature system after radiation therapy. Neurosurg Focus 21: e4.Google Scholar
Nordal, RA, Nagy, A, Pintilie, M, Wong, CS. 2004. Hypoxia and hypoxia-inducible factor-1 target genes in central nervous system radiation injury: A role for vascular endothelial growth factor. Clin Cancer Res 10:3342–53.CrossRefGoogle ScholarPubMed
Olsen, AL, Miller, JJ, Bhattacharyya, S, Voinescu, PE, Klein, JP. 2016. Cerebral perfusion in stroke-like migraine attacks after radiation therapy syndrome. Neurology 86:787–9.Google Scholar
Otite, F, Mink, S, Tan, CO, et al. 2014. Impaired cerebral auto-regulation is associated with vasospasm and delayed cerebral ischemia in subarachnoid hemorrhage. Stroke 45:677–82.Google Scholar
Peña, LA, Fuks, Z, Kolesnick, RN. 2000. Radiation-induced apoptosis of endothelial cells in the murine central nervous system: Protection by fibroblast growth factor and sphingomyelinase deficiency. Cancer Res 60:321–7.Google Scholar
Peterson, K, Clark, HB, Hall, WA, Truwit, CL. 1995. Multifocal enhancing magnetic resonance imaging lesions following cranial irradiation. Ann Neurol 38:237–44.Google Scholar
Proescholdt, MA, Heiss, JD, Walbridge, S, et al. 1999. Vascular endothelial growth factor (VEGF) modulates vascular permeability and inflammation in rat brain. J Neuropathol Exp Neurol 58:613–27.Google Scholar
Rizzoli, HV, Paganelli, DM. 1984. Treatment of delayed radiation necrosis of the brain. A clinical observation. J Neurosurg 60:589–94.Google Scholar
Rotolo, J, Stancevic, B, Zhang, J, et al. 2012. Anti-ceramide antibody prevents the radiation gastrointestinal syndrome in mice. J Clin Invest 122:1786–90.Google Scholar
Santana, P, Peña, LA, Haimovitz-Friedman, A, et al. 1996. Acid sphingomyelinase-deficient human lymphoblasts and mice are defective in radiation-induced apoptosis. Cell 86:189–99.Google Scholar
Schultheiss, TE, Stephens, LC. 1992. Permanent radiation myelopathy. Br J Radiol 65:737–53.Google Scholar
Siegal, T, Pfeffer, MR. 1995. Radiation-induced changes in the profile of spinal cord serotonin, prostaglandin synthesis, and vascular permeability. Int J Radiat Oncol Biol Phys 31:5764.Google Scholar
Silverberg, GD, Britt, RH, Goffinet, DR. 1978. Radiation-induced carotid artery disease. Cancer 41:130–7.Google Scholar
Smith, ER. 2015. Structural causes of ischemic and hemorrhagic stroke in children: Moyamoya and arteriovenous malformations. Curr Opin Pediatr 27:706–11.CrossRefGoogle ScholarPubMed
Stancevic, B, Varda-Bloom, N, Cheng, J, et al. 2013. Adenoviral transduction of human acid sphingomyelinase into neo-angiogenic endothelium radiosensitizes tumor cure. PLoS One 8:e69025.Google Scholar
Tsao, MN, Li, YQ, Lu, G, Xu, Y, Wong, CS. 1999. Upregulation of vascular endothelial growth factor is associated with radiation-induced blood–spinal cord barrier breakdown. J Neuropathol Exp Neurol 58:1051–60.Google Scholar
Ullrich, NJ, Robertson, R, Kinnamon, DD, et al. 2007. Moyamoya following cranial irradiation for primary brain tumors in children. Neurology 68:932–8.Google Scholar
Warrington, JP, Csiszar, A, Mitschelen, M, Lee, YW, Sonntag, WE. 2012. Whole brain radiation-induced impairments in learning and memory are time-sensitive and reversible by systemic hypoxia. PLoS One 7:e30444.Google Scholar
Yoshino, M, Morita, A, Shibahara, J, Kirino, T. 2005. Radiation-induced spinal cord cavernous malformation. Case report. J Neurosurg 102:S1014.Google Scholar
Yuan, H, Gaber, MW, McColgan, T, et al. 2003. Radiation-induced permeability and leukocyte adhesion in the rat blood–brain barrier: Modulation with anti-ICAM-1 antibodies. Brain Res 969:5969.Google Scholar
Yuan, H, Gaber, MW, Boyd, K, et al. 2006. Effects of fractionated radiation on the brain vasculature in a murine model: Blood–brain barrier permeability, astrocyte proliferation, and ultrastructural changes. Int J Radiat Oncol Biol Phys 66:860–6.CrossRefGoogle Scholar

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