يعرض 1 - 20 نتائج من 205 نتيجة بحث عن '"DWI Diffusion"', وقت الاستعلام: 0.55s تنقيح النتائج
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    Academic Journal

    المصدر: Journal of Neurosurgery Pediatrics. 23(4)

    وصف الملف: application/pdf

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    Academic Journal
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    Academic Journal
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    Academic Journal

    المساهمون: Moreno Gómez, Luz Ángela, Álzate Granados, Juan Pablo

    وصف الملف: application/pdf

    Relation: 1. Barkovich A, Raybaud Ch, Pediatric Neuroimaging: 5ª ed. Philadelphia: Lippincott Williams y Wilkins; 2012. 2. Poretti, A., Meoded, A., & Huisman, T. A. G. M. Neuroimaging of pediatric posterior fossa tumors including review of the literature. Journal of Magnetic Resonance Imaging. JMRI; 2012. 35(1), 32–47. 3. Cano Muñoz, I., & Enriquez Caballero, N. C. Tumores de fosa posterior en pacientes pediátricos y su correlación clínica , radiológica y anatomopatológica. Anales de Radiologia Mexico. SMRI; 2010. 4, 185–205. 4. Louis, D. N., Perry, A., Reifenberger, G., von Deimling, A., Figarella-Branger, D., Cavenee, W. K., … Ellison, D. W. The 2016 World Health Organization Classification of Tumors of the Central Nervous System: a summary. Acta Neuropathologica. Acta Neuropathol; 2016. 131(6), 803–820. 5. Rumboldt, Z., Camacho, D. L. A., Lake, D., Welsh, C. T., & Castillo, M. Apparent diffusion coefficients for differentiation of cerebellar tumors in children. American Journal of Neuroradiology, AJNR. 2006; 27(6), 1362–1369. 6. Koral, K., Mathis, D., Gimi, B., Gargan, L., Weprin, B., Bowers, D. C., & Margraf, L. Common pediatric cerebellar tumors : Correlation between cell densities and apparent diffusion coefficient metrics. Radiology. 2013. 268(2), 532–537. 7. Pierec T, Kranz P, Roth C. Use of apparent diffusion coefficient values for diagnosis of pediatric posterior fossa tumors. Neuroradiology Journal. NRJ; 2014. 27(2), 233–244. Jaremko, J. L., Jans, L. B. O., Coleman, L. T., & Ditchfield, M. R. Value and limitations of diffusion-weighted imaging in grading and diagnosis of pediatric posterior fossa tumors. American Journal of Neuroradiology. AJNR; 2010. 31(9), 1613–1616. 9. Al-Sharydah, A. M., Al-Arfaj, H. K., Saleh Al-Muhaish, H., Al-Suhaibani, S. S., Al- Aftan, M. S., Almedallah, D. K., … Al-Jubran, S. A. Can apparent diffusion coefficient values help distinguish between different types of pediatric brain tumors? European Journal of Radiology Open, 6(December 2018),Eur J Radiol; 2019. 49–55. 10. Ahmeda, H., Darwisha, E. A., & abo-bakrkhattabb, O. M. Role of Diffusion Mri In Differentiation Between The Common Pediatric Posterior Fossa Brain Tumors. The Egyptian Journal of Hospital Medicine, 2018. 73(2), 6090–6096. 11. Raúl, A. C. H., Guillermo, L. H., Alberto, S. C., Egidio, C. G., Guillermo, S. A., & Juan, V. P. Utilidad del coeficiente de difusión aparente en resonancia magnética como método auxiliar para la diferenciación entre meduloblastomas y ependimomas de la fosa craneal posterior en niños y adultos tratados en el Hospital Carlos Van Buren de Valparaíso. Una experiencia preliminar. Revista Chilena de Radiología. rchradiol; 2017. 23(3), 98–105. 12. de la Cruz Pabón, J. R., Patiño Hoyos, M. A., Quiceno Restrepo, E., & Toro Montoya, A. E. Meduloblastoma: de la clasificación histológica a la molecular. Medicina UPB. 2018; 37(1), 47–54. 13. Perreault, S., Ramaswamy, V., Achrol, A. S., Chao, K., Liu, T. T., Shih, D., … Yeom, K. W. MRI surrogates for molecular subgroups of medulloblastoma. American Journal of Neuroradiology. AJNR; 2014. 35(7), 1263–1269. 14. Castillo, M., Smith, J. K., Kwock, L., & Wilber, K. (2001). Apparent diffusion coefficients in the evaluation of high-grade cerebral gliomas. American Journal of Neuroradiology. AJNR; 2001. 22(1), 60–64. 15. Kono, K., Inoue, Y., Nakayama, K., Shakudo, M., Morino, M., Ohata, K., … Yamada, R. The role of diffusion-weighted imaging in patients with brain tumors. American Journal of Neuroradiology. AJNR; 2001. 22(6), 1081–1088. 16. Koral, K., Zhang, S., Gargan, L., Moore, W., Garvey, B., Fiesta, M.,Choudhury, N. Diffusion MRI improves the accuracy of preoperative diagnosis of common pediatric cerebellar tumors among reviewers with different experience levels. American Journal of Neuroradiology. AJNR; 2013. 34(12), 2360–2365. 17.Gimi B, Cederberg K, Derinkuyu B, et al. Utility of apparent diffusion coefficient ratios in distinguishing common pediatric cerebellar tumors. Acad Radiol. 2012;19:794–800. 18.Provenzale JM, Mukundan S, Barboriak DP. Diffusion-weighted and perfusion MR imaging for brain tumor characterization and assessment of treatment response. Radiology 2006;239:632–49 19.Schneider, J. F., Confort-Gouny, S., Viola, A., Le Fur, Y., Viout, P., Bennathan, Girard, N. Multiparametric differentiation of posterior fossa tumors in children using diffusion-weighted imaging and short echo-time 1H-MR spectroscopy. Journal of Magnetic Resonance Imaging. JMRI; 2007. 26(6), 1390–1398. 20. O’Brien, W. Imaging of Primary Posterior Fossa Brain Tumors in Children. Journal of the American Osteopathic College of Radiology. AOCR; 2013. 2(3), 2– 12. 21. Ji, Y. M., Geng, D. Y., Huang, B. C., Li, Y. X., Ren, G., & Zhu, L. Value of diffusion-weighted imaging in grading tumours localized in the fourth ventricle region by visual and quantitative assessments. Journal of International Medical Research. JIMR; 2011. 39(3), 912–919. 22. Forbes JA, Reig AS, Smith JG, et al. Findings on preoperative brain MRI predict histopathology in children with cerebellar neoplasms. Pediatr Neurosurg 2011;47:51–59 23. Porto L, et al. Differentiation between high and low grade tumours in paediatric patients by using apparent diffusion coefficients. European Journal of Paediatric Neurology. EJPN; 2013. Volume 17; 3: 302 – 307 24. Niwa T, Aida N, Tanaka M, Okubo J, Sasano M, Shishikura A, Fujita K, Ito S, Tanaka Y, Kigasawa H. Diffusion-weighted imaging of an atypical teratoid/rhabdoid tumor of the cervical spine. Magn Reson Med Sci; 2009. 8:135–138 25. CostaJ, Soria A, Resonancia Magentica dirigida a técnicos superiores en Imagen para el diagnostico. Barcelona: Elsevier; 2015. 26. Westbrook C, Handbook of MRI thecnique: 4ª ed. Cambridge, UK: Willey Blackwell; 2014.; https://repositorio.unal.edu.co/handle/unal/75592

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    المصدر: Radiology Case Reports, Vol 16, Iss 7, Pp 1740-1744 (2021)
    Radiology Case Reports

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    المصدر: Radiology Case Reports
    Radiology Case Reports, Vol 16, Iss 4, Pp 835-842 (2021)

    وصف الملف: application/pdf

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    Academic Journal

    المساهمون: Giordano, Flavio, Peri, Giacomo, Bacci, Giacomo M, Basile, Massimo, Guerra, Azzurra, Bergonzini, Patrizia, Buccoliero, Anna Maria, Spacca, Barbara, Iughetti, Lorenzo, Donati, Pierarturo, Genitori, Lorenzo

    وصف الملف: STAMPA

    Relation: info:eu-repo/semantics/altIdentifier/pmid/27935468; info:eu-repo/semantics/altIdentifier/wos/WOS:000394925800013; volume:19; issue:3; firstpage:354; lastpage:360; numberofpages:7; journal:JOURNAL OF NEUROSURGERY. PEDIATRICS; http://hdl.handle.net/11380/1128051; info:eu-repo/semantics/altIdentifier/scopus/2-s2.0-85015594514

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    المصدر: IBRO Neuroscience Reports
    IBRO Neuroscience Reports, Vol 10, Iss, Pp 18-30 (2021)

    مصطلحات موضوعية: Baic, Baicalin, Tan IIA-NPs, Tan IIA-loaded nanoparticles, ICH, intracerebral hemorrhage, ddH2O, double-distilled water, NP, nanoparticle, NSCs, neural stem cells, MLS, midline shift, T2W, T2Weighted, FA, fractional anisotropy, Lead (electronics), Stroke, TNF-α, tumor necrosis factor α, ANOVA, analysis of variance, Tan IIA-NPs, Tan IIA PLGA NPs, PLGA-b-PEG-OH, poly (lactide-co-glycolide)-b-poly (ethylene glycol)-maleimide, DLS, dynamic light scattering, Ischemic stroke, General Neuroscience, T2FLAIR, T2 Fluid Attenuated Inversion Recovery, Neural stem cell, TD, transdermal, Tan IIA, Tanshinone IIA, DAMPS, damaged-associated molecular patterns, BBB, blood brain barrier, UGA, University of Georgia, IL-6, interleukin 6, medicine.anatomical_structure, Nanomedicine, Cardiology, PLGA, Poly (lactic-co-glycolic acid), AU, arbitrary units, LPS, lipopolysaccharide, Edar, Edaravone, RC321-571, Research Paper, Resv, Resveratrol, medicine.medical_specialty, STAIR, Stroke Therapy Academic and Industry Roundtable, DTI, Diffusion Tensor Imaging, Neurosciences. Biological psychiatry. Neuropsychiatry, Tanshinone IIA, CNS, central nervous system, White matter, Piog, Pioglitazone, CSF, cerebral spinal fluid, ROS, reactive oxygen species, Midline shift, PBS, phosphate buffered saline, Internal medicine, SOD, superoxide dismutase, medicine, IM, intramuscular, DWI, Diffusion-Weighted Imaging, WM, white matter, TEM, transmission electron microscopy, MCAO, middle cerebral artery occlusion, Pathological, business.industry, Pig stroke model, Therapeutic effect, T2*, T2Star, PLGA nanoparticle, medicine.disease, PEG–PLGA, polyethyleneglycol–polylactic-co-glycolic acid, FDA, Food and Drug Administration, tPA, Tissue plasminogen activator, Bioavailability, Puer, Puerarin, GM, gray matter, IC, inhibitory concentration, MCA, middle cerebral artery, business, ADC, Apparent Diffusion Coefficient, GABA, γ-aminobutyric acid

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