Yıl: 2016 Cilt: 4 Sayı: 2 Sayfa Aralığı: 198 - 210 Metin Dili: Türkçe İndeks Tarihi: 29-07-2022

Serebrovasküler Olay

Öz:
-
Anahtar Kelime:

Konular: Radyoloji, Nükleer Tıp, Tıbbi Görüntüleme
Belge Türü: Makale Makale Türü: Araştırma Makalesi Erişim Türü: Erişime Açık
  • [1]. Writing Group M, Mozaffarian D, Benjamin EJ, Go AS, Arnett DK, Blaha MJ, et al. Heart Disease and Stroke Statistics-2016 Update: A Report From the American Heart Association. Circulation 2016; 133: e38-60. [CrossRef]
  • [2]. Ozturk Y, Demir C, Gursoy K, Koselerli R. What Factors Influence Survival In Stroke: Turkey Case. Value Health 2015; 18: A401-2. [CrossRef]
  • [3]. Campbell BC, Mitchell PJ, Kleinig TJ, Dewey HM, Churilov L, Yassi N, et al. Endovascular therapy for ischemic stroke with perfusion-imaging selection. N Engl J Med 2015; 372: 1009-18. [CrossRef]
  • [4]. Goyal M, Demchuk AM, Menon BK, Eesa M, Rempel JL, Thornton J, et al. Randomized assessment of rapid endovascular treatment of ischemic stroke. N Engl J Med 2015; 372: 1019-30. [CrossRef]
  • [5]. Berkhemer OA, Fransen PS, Beumer D, van den Berg LA, Lingsma HF, Yoo AJ, et al. A randomized trial of intraarterial treatment for acute ischemic stroke. N Engl J Med 2015; 372: 11-20. [CrossRef]
  • [6]. Saver JL, Goyal M, Bonafe A, Diener HC, Levy EI, Pereira VM, et al. Stent-retriever thrombectomy after intravenous t-PA vs. t-PA alone in stroke. N Engl J Med 2015; 372: 2285-95. [CrossRef]
  • [7]. ACR Appropriateness Criteria® Cerebrovascular Disease Available at https://acsearch.acr.org/ docs/69478/Narrative/ American College of Radiology. [database on the Internet]2016 [cited 07.2016].
  • [8]. Gonzalez RG. Low signal, high noise and large uncertainty make CT perfusion unsuitable for acute ischemic stroke patient selection for endovascular therapy. J Neurointerv Surg 2012; 4: 242-5. [CrossRef]
  • [9]. Fahmi F, Marquering HA, Streekstra GJ, Beenen LF, Velthuis BK, VanBavel E, et al. Differences in CT perfusion summary maps for patients with acute ischemic stroke generated by 2 software packages. AJNR Am J Neuroradiol 2012; 33: 2074-80. [CrossRef]
  • [10]. Dani KA, Thomas RG, Chappell FM, Shuler K, MacLeod MJ, Muir KW, et al. Computed tomography and magnetic resonance perfusion imaging in ischemic stroke: definitions and thresholds. Ann Neurol 2011; 70: 384-401. [CrossRef]
  • [11]. DeLaPaz RL, Wippold FJ, 2nd, Cornelius RS, Amin-Hanjani S, Angtuaco EJ, Broderick DF, et al. ACR Appropriateness Criteria(R) on cerebrovascular disease. J Am Coll Radiol 2011; 8: 532-8. [CrossRef]
  • [12]. Verma RK, Kottke R, Andereggen L, Weisstanner C, Zubler C, Gralla J, et al. Detecting subarachnoid hemorrhage: comparison of combined FLAIR/SWI versus CT. Eur J Radiol 2013; 82: 1539-45. [CrossRef]
  • [13]. Cheng AL, Batool S, McCreary CR, Lauzon ML, Frayne R, Goyal M, et al. Susceptibility-weighted imaging is more reliable than T2*-weighted gradient-recalled echo MRI for detecting microbleeds. Stroke 2013; 44: 2782-6. [CrossRef]
  • [14]. Deistung A, Rauscher A, Sedlacik J, Stadler J, Witoszynskyj S, Reichenbach JR. Susceptibility weighted imaging at ultra high magnetic field strengths: theoretical considerations and experimental results. Magn Reson Med 2008; 60: 1155-68. [CrossRef]
  • [15]. Haacke EM, Xu Y, Cheng YC, Reichenbach JR. Susceptibility weighted imaging (SWI). Magn Reson Med 2004; 52: 612-8. [CrossRef]
  • [16]. Tong KA, Ashwal S, Obenaus A, Nickerson JP, Kido D, Haacke EM. Susceptibility-weighted MR imaging: a review of clinical applications in children. AJNR Am J Neuroradiol 2008; 29: 9-17. [CrossRef]
  • [17]. Lansberg MG, Straka M, Kemp S, Mlynash M, Wechsler LR, Jovin TG, et al. MRI profile and response to endovascular reperfusion after stroke (DEFUSE 2): a prospective cohort study. Lancet Neurol 2012; 11: 860-7. [CrossRef]
  • [18]. Furlan AJ, Eyding D, Albers GW, Al-Rawi Y, Lees KR, Rowley HA, et al. Dose Escalation of Desmoteplase for Acute Ischemic Stroke (DEDAS): evidence of safety and efficacy 3 to 9 hours after stroke onset. Stroke 2006; 37: 1227-31. [CrossRef]
  • [19]. Butcher KS, Parsons M, MacGregor L, Barber PA, Chalk J, Bladin C, et al. Refining the perfusion-diffusion mismatch hypothesis. Stroke 2005; 36: 1153-9. [CrossRef]
  • [20]. Gonzalez RG, Copen WA, Schaefer PW, Lev MH, Pomerantz SR, Rapalino O, et al. The Massachusetts General Hospital acute stroke imaging algorithm: an experience and evidence based approach. J Neurointerv Surg 2013; 5(Suppl 1): i7-12. [CrossRef]
  • [21]. Gonzalez RG. Current state of acute stroke imaging. Stroke 2013; 44: 3260-4. [CrossRef]
  • [22]. Petrella JR, Provenzale JM. MR perfusion imaging of the brain: techniques and applications. AJR Am J Roentgenol 2000; 175: 207-19. [CrossRef]
  • [23]. Arakawa S, Wright PM, Koga M, Phan TG, Reutens DC, Lim I, et al. Ischemic thresholds for gray and white matter: a diffusion and perfusion magnetic resonance study. Stroke 2006; 37: 1211-6. [CrossRef]
  • [24]. Schramm P, Schellinger PD, Klotz E, Kallenberg K, Fiebach JB, Kulkens S, et al. Comparison of perfusion computed tomography and computed tomography angiography source images with perfusion-weighted imaging and diffusion-weighted imaging in patients with acute stroke of less than 6 hours' duration. Stroke 2004; 35: 1652-8. [CrossRef]
  • [25]. Albers GW, Thijs VN, Wechsler L, Kemp S, Schlaug G, Skalabrin E, et al. Magnetic resonance imaging profiles predict clinical response to early reperfusion: the diffusion and perfusion imaging evaluation for understanding stroke evolution (DEFUSE) study. Ann Neurol 2006; 60: 508-17. [CrossRef]
  • [26]. Wintermark M, Sanelli PC, Albers GW, Bello J, Derdeyn C, Hetts SW, et al. Imaging recommendations for acute stroke and transient ischemic attack patients: A joint statement by the American Society of Neuroradiology, the American College of Radiology, and the Society of NeuroInterventional Surgery. AJNR Am J Neuroradiol 2013; 34: E117-27. [CrossRef]
  • [27]. Huisman TA. Tumor-like lesions of the brain. Cancer Imaging 2009; 9: S10-3. [CrossRef]
  • [28]. Liu YJ, Chen CY, Chung HW, Huang IJ, Lee CS, Chin SC, et al. Neuronal damage after ischemic injury in the middle cerebral arterial territory: deep watershed versus territorial infarction at MR perfusion and spectroscopic imaging. Radiology 2003; 229: 366-74. [CrossRef]
  • [29]. Lin AQ, Shou JX, Li XY, Ma L, Zhu XH. Metabolic changes in acute cerebral infarction: Findings from proton magnetic resonance spectroscopic imaging. Exp Ther Med 2014; 7: 451-5.
  • [30]. Allen LM, Hasso AN, Handwerker J, Farid H. Sequence-specific MR imaging findings that are useful in dating ischemic stroke. Radiographics 2012; 32: 1285-97. [CrossRef]
  • [31]. Copen WA, Rezai Gharai L, Barak ER, Schwamm LH, Wu O, Kamalian S, et al. Existence of the diffusion-perfusion mismatch within 24 hours after onset of acute stroke: dependence on proximal arterial occlusion. Radiology 2009; 250: 878-86. [CrossRef]
  • [32]. Westerlaan HE, van Dijk JM, Jansen-van der Weide MC, de Groot JC, Groen RJ, Mooij JJ, et al. Intracranial aneurysms in patients with subarachnoid hemorrhage: CT angiography as a primary examination tool for diagnosis--systematic review and meta-analysis. Radiology 2011; 258: 134-45. [CrossRef]
  • [33]. Jayaraman MV, Mayo-Smith WW, Tung GA, Haas RA, Rogg JM, Mehta NR, et al. Detection of intracranial aneurysms: multi-detector row CT angiography compared with DSA. Radiology 2004; 230: 510-8. [CrossRef]
  • [34]. Dammert S, Krings T, Moller-Hartmann W, Ueffing E, Hans FJ, Willmes K, et al. Detection of intracranial aneurysms with multislice CT: comparison with conventional angiography. Neuroradiology 2004; 46: 427-34. [CrossRef]
  • [35]. Donmez H, Serifov E, Kahriman G, Mavili E, Durak AC, Menku A. Comparison of 16-row multislice CT angiography with conventional angiography for detection and evaluation of intracranial aneurysms. Eur J Radiol 2011; 80: 455-61. [CrossRef]
  • [36]. Bakker NA, Groen RJ, Foumani M, Uyttenboogaart M, Eshghi OS, Metzemaekers JD, et al. Repeat digital subtraction angiography after a negative baseline assessment in nonperimesencephalic subarachnoid hemorrhage: a pooled data meta-analysis. J Neurosurg 2014; 120: 99-103. [CrossRef]
  • [37]. Delgado Almandoz JE, Jagadeesan BD, Refai D, Moran CJ, Cross DT, 3rd, Chicoine MR, et al. Diagnostic yield of computed tomography angiography and magnetic resonance angiography in patients with catheter angiography-negative subarachnoid hemorrhage. J Neurosurg 2012; 117: 309-15. [CrossRef]
  • [38]. Saposnik G, Barinagarrementeria F, Brown RD, Jr., Bushnell CD, Cucchiara B, Cushman M, et al. Diagnosis and management of cerebral venous thrombosis: a statement for healthcare professionals from the American Heart Association/American Stroke Association. Stroke 2011; 42: 1158-92. [CrossRef]
  • [39]. Sadigh G, Mullins ME, Saindane AM. Diagnostic Performance of MRI Sequences for Evaluation of Dural Venous Sinus Thrombosis. AJR Am J Roentgenol 2016; 206: 1298-306. [CrossRef]
APA SADE R, OĞUL H (2016). Serebrovasküler Olay. , 198 - 210.
Chicago SADE Recep,OĞUL Hayri Serebrovasküler Olay. (2016): 198 - 210.
MLA SADE Recep,OĞUL Hayri Serebrovasküler Olay. , 2016, ss.198 - 210.
AMA SADE R,OĞUL H Serebrovasküler Olay. . 2016; 198 - 210.
Vancouver SADE R,OĞUL H Serebrovasküler Olay. . 2016; 198 - 210.
IEEE SADE R,OĞUL H "Serebrovasküler Olay." , ss.198 - 210, 2016.
ISNAD SADE, Recep - OĞUL, Hayri. "Serebrovasküler Olay". (2016), 198-210.
APA SADE R, OĞUL H (2016). Serebrovasküler Olay. Türk Radyoloji Seminerleri, 4(2), 198 - 210.
Chicago SADE Recep,OĞUL Hayri Serebrovasküler Olay. Türk Radyoloji Seminerleri 4, no.2 (2016): 198 - 210.
MLA SADE Recep,OĞUL Hayri Serebrovasküler Olay. Türk Radyoloji Seminerleri, vol.4, no.2, 2016, ss.198 - 210.
AMA SADE R,OĞUL H Serebrovasküler Olay. Türk Radyoloji Seminerleri. 2016; 4(2): 198 - 210.
Vancouver SADE R,OĞUL H Serebrovasküler Olay. Türk Radyoloji Seminerleri. 2016; 4(2): 198 - 210.
IEEE SADE R,OĞUL H "Serebrovasküler Olay." Türk Radyoloji Seminerleri, 4, ss.198 - 210, 2016.
ISNAD SADE, Recep - OĞUL, Hayri. "Serebrovasküler Olay". Türk Radyoloji Seminerleri 4/2 (2016), 198-210.