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Squintani GM. Awake surgery between art and science. Part I: clinical   for  interventional  neurosurgical  procedures  and  tumor  resection
               and operative settings. Funct Neurol 2013;28: 205-21.  control in children. Childs Nerv Syst 2006; 22:674-8.
           17.  Talacchi A,  Santini  B,  Casartelli  M,  Monti A,  Capasso  R,  Miceli   36.  Senft C, Franz K, Ulrich CT, Bink A, Szelényi A, Gasser T, Seifert
               G. Awake  surgery  between  art  and  science.  Part  II:  language  and   V. Low field intraoperative MRI-guided surgery of gliomas: a single
               cognitive mapping . Funct Neurol 2013;28: 223-9.  center experience. Clin Neurol Neurosurg 2010;112:237-43.
           18.  Shinoura N, Midorikawa A, Yamada R, Hana T, Saito A, Hiromitsu   37.  Fahlbusch  R, Ganslandt  O, Buchfelder  M,  Schott  W,  Nimsky  C.
               K, Itoi C, Saito S, Yagi K. Awake craniotomy for brain lesions within   Intraoperative  magnetic  resonance  imaging  during  transsphenoidal
               and near the primary motor area: A retrospective analysis of factors   surgery. J Neurosurg 2001;95:381-90.
               associated with worsened paresis in 102 consecutive patients. Surg   38.  Kubben  PL,  ter  Meulen  KJ,  Schijns  OE,  ter  Laak-Poort  MP,  van
               Neurol Int 2013;4:149.                            Overbeeke JJ, van Santbrink H. Intraoperative MRI-guided resection
           19.  Ojemann JG, Miller JW, Silbergeld DL. Preserved function in brain   of  glioblastoma  multiforme:  a  systematic  review.  Lancet  Oncol
               invaded by tumor. Neurosurgery 1996;39:253-8.     2011;12:1062-70.
           20.  Bello L, Acerbi F, Giussani C, Baratta P, Taccone P, Songa V, Fava   39.  Senft  C,  Seifert V, Hermann E, Franz K, Gasser T. Usefulness of
               M,  Stocchetti  N,  Papagno  C,  Gaini  SM.  Intraoperative  language   intraoperative ultra low-field magnetic resonance imaging in glioma
               localization  in multilingual  patients with gliomas.  Neurosurgery   surgery. Neurosurgery 2008;63:257-66; discussion 266-7.
               2006; 59:115-25.                               40.  Foroglou N, Zamani A, Black P. Intra-operative MRI (iop-MR) for
           21.  Lowestein PR, Castro MG. Pushing the limits of glioma resection using   brain tumour surgery. Br J Neurosurg 2009;23:14-22.
               electrophysiologic brain mapping. J Clin Oncol 2012;30:2437-40.  41.  Gerlach  R, du Mesnil  de Rochemont  R, Gasser  T,  Marquardt  G,
           22.  Li T, Bai H, Wang G, Wang W, Lin J, Gao H, Wang L, Xia L, Xie X.   Reusch J, Imoehl L, Seifert V. Feasibility of Polestar N20, an ultra-
               Glioma localization and excision using direct electrical stimulation   low-  field  intraoperative  magnetic  resonance  imaging  system  in
               for  language  mapping  during  awake  surgery.  Exp  Ther  Med   resection control of pituitary macroadenomas: lessons learned from
               2015;9:1962-6.                                    the first 40 cases. Neurosurgery 2008;63:272-84; discussion 284-5.
           23.  De Witt Hamer PC, Robles SG, Zwinderman AH, Duffau H, Berger   42.  Roder C, Bisdas S, Ebner FH, Honegger J, Naegele T, Ernemann
               MS. Impact of intraoperative stimulation brain mapping on glioma   U,  Tatagiba  M.  Maximizing  the  extent  of  resection  and  survival
               surgery outcome: a meta-analysis. J Clin Oncol 2012;30:2559-65.  benefit of patients in glioblastoma surgery: High-field iMRI versus
           24.  De Benedictis A, Sarubbo S, Duffau H. Subcortical surgical anatomy   conventional  and  5-ALA-assisted  surgery.  Eur  J  Surg  Oncol
               of the  lateral  frontal region:  Human white  matter  dissection  and   2014;40:297-304.
               correlations  with  functional  insights  provided  by  intraoperative   43.  Knauth  M, Aras  N,  Wirtz  CR,  Dörfler A,  Engelhorn  T,  Sartor  K.
               direct  brain  stimulation:  laboratory  investigation.  J Neurosurg   Surgically  induced  intracranial  contrast  enhancement:  potential
               2012;117:1053-69.                                 source of diagnostic error in intraoperative MR imaging. AJNR Am J
           25.  Ilmberger J, Ruge M, Kreth FW, Briegel  J, Reulen  HJ,  Tonn JC.   Neuroradiol 1999;20:1547-53.
               Intraoperative  mapping  of  language  functions:  A  longitudinal   44.  Özduman  K,  Yıldız  E,  Dinçer  A,  Sav  A,  Pamir  MN.  Using
               neurolinguistic analysis. J Neurosurg 2008;109:583-92.  intraoperative  dynamic  contrast-enhanced  T1-weighted  MRI
           26.  Lüders HO. Symptomatic Areas and Electrical Cortical Stimulation.   to  identify residual tumor  in  glioblastoma  surgery.  J  Neurosurg
               New York: Churchill Livingstone, 2000.            2014;120-:60-6.
           27.  Duffau H. Brain mapping in tumors: Intraoperative or extraoperative?   45.  Rygh OM, Selbekk T, Torp SH, Lydersen S, Hernes TA, Unsgaard G.
               Epilepsia 2013;54:79-83.                          Comparison of navigated 3D ultrasound findings with histopathology
           28.  Gras-Combe G, Moritz-Gasser S, Herbet G, Duffau H. Intraoperative   in subsequent phases of glioblastoma resection. Acta Neurochir (Wien)
               subcortical electrical mapping of optic radiations in awake surgery for   2008;150:1033-41; discussion 1042.
               glioma involving visual pathways. J Neurosurg 2012;117:466-73.  46.  Selbekk T, Jakola AS, Solheim O, Johansen TF, Lindseth F, Reinertsen
           29.  Maldonado  IL,  Moritz-Gasser  S,  de  Champfleur  NM,  Bertram  L,   I,  Unsgård  G.  Ultrasound  imaging in  neurosurgery:  approaches  to
               Moulinié G, Duffau H. Surgery for gliomas involving the left inferior   minimize surgically induced image artefacts for improved resection
               parietal lobule: new insights into the functional anatomy provided by   control. Acta Neurochir (Wien) 2013;155:973-80.
               stimulation mapping in awake patients. J Neurosurg 2011;115:770-9.  47.  Coenen VA, Krings T, Weidemann J, Hans FJ, Reinacher P, Gilsbach
           30.  Ogawa S, Lee TM, Kay AR, Tank DW. Brain magnetic resonance   JM,  Rohde  V.  Sequential  visualization  of  brain  and  fiber  tract
               imaging with contrast dependent on blood oxygenation. Proc Natl   deformation during intracranial  surgery with three dimensional
               Acad Sci USA 1990; 87: 9868-72.                   ultrasound:  an  approach  to  evaluate  the  effect  of  brain  shift.
           31.  Moseley ME, Cohen Y, Kucharczyk J, Mintorovitch J, Asgari HS,   Neurosurgery 2005;56:133-41; discussion 133-41.
               Wendland MF,  Tsuruda J, Norman D. Diffusion-weighted MR   48.  Moiyadi AV, Shetty PM, Mahajan A, Udare A, Sridhar E. Usefulness
               imaging of anisotropic water diffusion in cat central nervous system.   of three-dimensional navigable intraoperative ultrasound in resection
               Radiology 1990; 176: 439-46.                      of brain tumors with a special emphasis on malignant gliomas. Acta
           32.  Jellison BJ, Field AS, Medow J, Lazar M, Salamat MS, Alexander   Neurochir 2013;155-: 2217-25.
               AL. Diffusion tensor imaging of cerebral  white matter:  a pictoral   49.  Senft C, Bink A, Franz K, Vatter H, Gasser T, Seifert V. Intraoperative
               review of physics, fiber tract anatomy, and tumor imaging patterns.   MRI guidance and extent of resection in glioma surgery: a
               AJNR Am J Neuroradiol 2004; 25: 356-69.           randomised, controlled trial. Lancet Oncol 2011;12:997-1003.
           33.  Wu  JS,  Zhou  LF,  Tang  WJ,  Mao  Y,  Hu  J,  Song  YY,  Hong  XN,   50.  Díez Valle R, Tejada Solis S, Idoate Gastearena MA, García de Eulate
               Du  GH.  Clinical  evaluation  and  follow-up  outcome  of  diffusion   R, Domínguez Echávarri P, Aristu Mendiroz J. Surgery guided by
               tensor  imaging-based  functional  neuronavigation:  a  prospective,   5-aminolevulinic fluorescence in glioblastoma: volumetric analysis
               controlled study in patients with gliomas involving pyramidal tracts.   of extent of resection in single-center experience.  J  Neurooncol
               Neurosurgery 2007;61:935-48; discussion 948-9.    2011;102:105-13.
           34.  Kuhnt  D,  Bauer  MH,  Nimsky  C.  Brain  shift  compensation  and   51.  Prada F,  Perin A,  Martegani A, Aiani  L,  Solbiati  L,  Lamperti  M,
               neurosurgical image fusion using intraoperative MRI: current status   Casali  C,  Legnani  F,  Mattei  L,  Saladino A,  Saini  M, DiMeco  F.
               and future challenges. Crit Rev Biomed Eng 2012;40:175-85.  Intraoperative  Contrast-Enhanced  Ultrasound  for  Brain  Tumor
           35.  Kremer P, Tronnier V, Steiner HH, Metzner R, Ebinger F, Rating D,   Surgery. Neurosurgery 2014;74:542-52.
               Hartmann M, Seitz A, Unterberg A, Wirtz CR. Intraoperative MRI   52.  Quaia E.  Assessment of tissue perfusion by contrast-enhanced

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