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Original

Human spatial navigation deficits after traumatic brain injury shown in the arena maze, a virtual Morris water maze

, , &
Pages 189-203 | Received 24 May 2005, Accepted 03 Nov 2005, Published online: 03 Jul 2009

References

  • Adams JH, Doyle D, Graham DI, Lawrence AE, McLellan DR, Gennarelli TA, Pastuszko M, Sakamoto T. The contusion index: A reappraisal in human and experimental non-missile head injury. Neuropathology and Applied Neurobiology 1985; 11: 299–308
  • Kotapka MJ, Graham DI, Adams JH, Gennarelli TA. Hippocampal pathology in fatal non-missile human head injury. Acta Neuropathologica 1992; 83: 530–534
  • Pang D. Physics and pathophysiology of closed head injury. Assessment of the behavioral consequences of head trauma, MD Lezak. Alan R. Liss, inc., New York 1989; 1–17
  • Rappaport M, Herrero-Backe C, Rappaport ML, Winterfield KM. Head injury outcome up to ten years later. Archives of Physical Medical Rehabilitation 1989; 70: 885–892
  • Van Zomeren AH, Van Den Burg W. Residual complaints of patients two years after severe head injury. Journal of Neurology, Neurosurgery & Psychiatry 1985; 48: 21–28
  • Baddeley A, Harris J, Sutherland A, Watts KP, Wilson B. Closed head injury and memory. Neurobehavioral recovery from head injury, HS Levin, J Grafman, HM Eisenberg. Oxford University Press, OxfordUK 1987; 295–317
  • Bigler J, Blatter DD, Anderson CV, Johnson SC, Gale SD, Hopkins RO, Burnett B. Hippocampal volume in normal aging and traumatic brain injury. AJNR American Journal of Neuroradiology 1997; 18: 11–23
  • Bigler J, Blatter DD, Gale SD, Ryser DK, Macnamara SE, Bailey BJ, Hopkins RO, Johnson SC, Anderson CV, Russo AA, et al. Traumatic brain injury and memory: The role of hippocampal atrophy. Neuropsychology 1996; 10: 333–342
  • Darken RP, Peterson B. Spatial orientation, wayfinding, and representation. Handbook of virtual environments: Design, implementation, and applications, KM Stanney. Lawrence Erlbaum Associates, Publishers, Mahwah, New Jersey 2002; 493–518
  • Paterson A, Zangwill OL. Disorders of visual space perception associated with lesions of the right cerebral hemisphere. Brain 1944; 67: 331–358
  • Maguire EA, Burke T, Phillips J, Staunton H. Topographical disorientation following unilateral temporal lobe lesions in humans. Neuropsychologia 1996; 34: 993–1001
  • Aguirre G, D’Esposito M. Topographical disorientation: A synthesis and taxonomy. Brain 1999; 122: 1613
  • Barrash J. A historical review of topographical disorientation and its neuroanatomical correlates. Journal of Clinical & Experimental Neuropsychology 1998; 20: 807–827
  • Skelton R, Bukach CM, Laurance HE, Thomas KG, Jacobs JW. Humans with traumatic brain injuries show place-learning deficits in computer-generated virtual space. Journal of Clinical and Experimental Neuropsychology 2000; 22: 157–175
  • Habib M, Sirigu A. Pure topographical disorientation: A definition and anatomical basis. Cortex 1987; 23: 73–85
  • Barrash J, Damasio H, Adolphs R, Tranel D. The neuroanatomical correlates of route learning impairment. Neuropsychologia 2000; 38: 820–836
  • Corkin S. Tactually-guided maze learning in man: Effects of unilateral cortical excisions and bilateral hippocampal lesions. Neuropsychologia 1965; 3: 339–351
  • Feigenbaum JD, Polkey CE, Morris RG. Deficits in spatial working memory after unilateral temporal lobectomy in man. Neuropsychologia 1996; 34: 163–176
  • Smith M, Milner B. The role of the right hippocampus in the recall of spatial location. Neuropsychologia 1981; 19: 781–793
  • Spiers H, Burgess N, Maguire E, Baxendale S, Hartley T, Thompson P, O'Keefe J. Unilateral temporal lobectomy patients show lateralized topographical and episodic memory deficits in a virtual town. Brain 2001; 124: 2476
  • Bohbot V, Allen J, Nadel L. Memory deficits characterized by patterns of lesions to the hippocampus and parahippocampal cortex. Annals of the New York Academy of Sciences 2000; 911: 355
  • Nadel L, Samsonovich A, Ryan L, Moscovitch M. Multiple trace theory of human memory: Computational, neuroimaging, and neuropsychological results. Hippocampus 2000; 10: 352
  • Rose FDB, Attree BM, Parslow EA, Leadbetter DM, McNeil AG, Jayawardena JE, Greenwood S, Potter R. A preliminary investigation into the use of virtual environments in memory retraining after vascular brain injury: Indications for future strategy?. Disability & Rehabilitation: An International Multidisciplinary Journal 1999; 21: 548
  • Lezak MD. Neuropsychological assessment. Oxford University, New York 1995
  • Spreen O, Strauss E. A compendium of neuropsychological tests: Administration, norms, and commentary. Oxford University Press, New York 1998
  • Pizzamiglio LG, Cecilia T. Evidence for separate allocentric and egocentric space processing in neglect patients. Cortex 1998; 34: 719
  • Tolman EC. Cognitive maps in rats and men. Psychological Review 1948; 55: 189–208
  • Nadel L. The hippocampus and space revisited. Hippocampus 1991; 1: 221–229
  • O'Keefe J, Nadel L. The hippocampus as a cognitive map. Oxford University Press, Oxford 1978
  • Morris R. Spatial localization does not require the presence of local cues. Learning Motivation 1981; 12: 239–260
  • Morris R. Developments of a water-maze procedure for studying spatial learning in the rat. Journal of Neuroscience Methods 1984; 11: 47–60
  • Eichenbaum H, Stewart C, Morris RGM. Hippocampal representation in place learning. Journal of Neuroscience 1990; 10: 3531–3542
  • White NM, McDonald RJ. Multiple parallel memory systems in the brain of the rat. Neurobiology of Learning and Memory 2002; 77: 125–184
  • Kolb B, Sutherland RJ, Whishaw IQ. A comparison of the contributions of the frontal and parietal association cortex to spatial localization in rats. Behavioral Neuroscience 1983; 97: 13–27
  • Morris R, Garrud P, Rawlins JN, O'Keefe J. Place navigation impaired in rats with hippocampal lesions. Nature 1982; 297: 681–683
  • Brandeis R, Brandys Y, Yehuda S. The use of the Morris Water Maze in the study of memory and learning. International Journal of Neuroscience 1989; 48: 29–69
  • McNamara RK, Skelton RW. The neuropharmacological and neurochemical basis of place learning in the Morris water maze. Brain Research Review 1993; 18: 33–49
  • Schenk F. The Morris Water Maze (is not a Maze). A handbook of spatial research paradigms and methodologies: Clinical and comparative studies., N Foreman, R Gillett. Psychology Press, East Sussex 1998; 2: 145–188
  • Olsen GM, Scheel-Kruger J, Moller A, Jensen LH. Relation of spatial learning of rats in the Morris water maze task to the number of viable CA1 neurons following four-vessel occlusion. Behavioural Neuroscience 1994; 108: 681–690
  • Rod MR, Whishaw IQ, Auer RN. The relationship of structural ischemic brain damage to neurobehavioural deficit: The effect of postischemic MK-801. Canadian Journal of Psychology 1990; 44: 196–209
  • Gage FH, Bjorklund A. Cholinergic septal grafts into the hippocampal formation improve spatial learning and memory in aged rats by an atropine-sensitive mechanism. Journal of Neuroscience 1986; 6: 2837–2847
  • Kolb B, Cioe J. Recovery from early cortical damage in rats, VIII. Earlier may be worse: Behavioural dysfunction and abnormal cerebral morphogenesis following perinatal frontal cortical lesions in the rat. Neuropharmacology 2000; 39: 756–764
  • McDaniel WF, Jones PD, Weaver TL. Medial frontal lesions, postoperative treatment with an ACTH(4-9) analog, and acquisition of a win-shift spatial strategy. Behavioural Brain Research 1991; 44: 107–112
  • Skelton RW. Modelling recovery of cognitive function after traumatic brain injury: Spatial navigation in the Morris water maze after complete or partial transections of the perforant path in rats. Behavioural Brain Research 1998; 96: 13–35
  • Dixon CE, Liu S-J, Jenkins LW, Bhattachargee M, Whitson JS, Yang K, Hayes RL. Time course of increased vulnerability of cholinergic neurotransmission following traumatic brain injury in the rat. Behavioural Brain Research 1995; 70: 125–131
  • Hamm RJ, O'Dell DM, Pike BR, Lyeth BG. Cognitive impairment following traumatic brain injury: The effect of pre- and post-injury administration of scopolamine and MK-801. Brain Research & Cognitive Brain Research 1993; 1: 223–226
  • Smith DH, Lowenstein DH, Gennarelli TA, McIntosh TK. Persistent memory dysfunction is associated with bilateral hippocampal damage following experimental brain injury. Neuroscience Letters 1994; 168: 151–154
  • Reid IC, Wright NF, Whalley LJ. Arenamaze—a virtual ‘Watermaze’ for humans. Neuroscience Abstracts 1996; 21: 1446
  • Jacobs J, Laurance HE, Thomas KG. Place learning in virtual space I: Acquisition, overshadowing, and transfer. Learning and Motivation 1997; 28: 521–541
  • Jacobs J, Thomas J, Laurance H, Nadel L. Place learning in virtual space: Topographical relations as one dimension of stimulus control. Learning & Motivation 1998; 29: 288
  • Suzuki S, Augerinos G, Black A. Stimulus control of spatial behavior on the eight-arm maze in rats. Learning & Motivation 1980; 11: 1–18
  • Astur R, Ortiz ML, Sutherland RJ. A characterization of performance by men and women in a virtual Morris water task: A large and reliable sex difference. Behavioural Brain Research 1998; 93: 185–190
  • Sandstrom NJ, Kaufman J, Huettel SA. Males and females use different distal cues in a virtual environment navigation task. Cognitive Brain Research 1998; 6: 351–360
  • Bohbot V, Jech R, Ruzicka E, Nadel L, Kalina M, Stepankova B. Rat spatial memory tasks adapted for humans: Characterization in subjects with intact brain and subjects with medial temporal lobe lesions. Physiological Research 2002; 51(Suppl 1)S49–S64
  • Iaria G, Petrides M, Dagher A, Pike B, Bohbot VD. Cognitive strategies dependent on the hippocampus and caudate nucleus in human navigation: Variability and change with practice. The Journal of Neuroscience 2003; 23: 5945–5952
  • Maguire E, Frith CD, Burgess N, Donnett JG, O'Keefe J. Knowing where things are: Parahippocampal involvement in encoding object relations in virtual large-scale space. Journal of Cognitive Neuroscience 1998; 10: 61
  • Astur R, Taylor LB, Mamelak AN, Philpott L, Sutherland RJ. Humans with hippocampus damage display severe spatial memory impairments in a virtual Morris water task. Behavioural Brain Research 2002; 132: 77–84
  • Bohbot VD, Iaria G, Petrides M. Hippocampal function and spatial memory: Evidence from functional neuroimaging in healthy participants and performance of patients with medial temporal lobe resections. Neuropsychology 2004; 18: 418–425
  • Bigler ED. The lesion(s) in traumatic brain injury: Implications for clinical neuropsychology. Archives of Clinical Neuropsychology 2001; 16: 95–131
  • Skelton R, Hsu M, Thomas K, Nadel L, Laurance H, Biggan S, McLean S, Ryan L, Trouard T, Jacobs WJ. Traumatic brain injury and hippocampal function in humans: Initial results from fMRI, virtual environments and neuropsychological tests. Neuroscience Abstracts 2000; 26: 1440
  • Kearns MJ, Warren WH, Duchon AP, Tarr M. Path integration from optic flow and body senses in a homing task. Perception 2002; 31: 349
  • Kirschen MP, Kahana MJ, Sekuler R, Burack B. Optic flow helps humans learn to navigate through synthetic environments. Perception 2000; 29: 801
  • Tabachnick B, Fidell L. Using multivariate statistics. Allyn and Bacon, Boston 2001
  • Hu C, Kneusel R, Barnas G. Online clinical calculator. Medical College of Wisconsin. 1999, Available online at: http://www.intmed.mcw.edu/clincalc/bayes.htmlAccessed February 24, 2005,Volume.
  • Previc FH. The neuropsychology of 3-D space. Psychological Bulletin 1998; 124: 123–164
  • Moffat SD, Resnick SM. Effects of age on virtual environment place navigation and allocentric cognitive mapping. Behavioral Neuroscience 2002; 116: 851–859
  • Rizzo A, Schultheis M, Kerns K, Mateer C. Analysis of assets for virtual reality applications in neuropsychology. Neuropsychological Rehabilitation 2004; 14: 207–239
  • Maguire EA, Burgess N, Donnett JG, Frackowiak RSJ, Frith CD, O'Keefe J. Knowing where and getting there: A human navigation network. Science 1998; 280: 921–924
  • Milner B. Memory and the medial temporal regions of the brain. Biology of memory, KH Pribram, DB Broadbent. Academic Press, Inc., New York 1970; 29–50
  • Squire LR. Memory and the hippocampus: A synthesis from findings with rats, monkeys, and humans. Psychological Review 1992; 99: 195–231
  • Spiers HJ, Maguire EA, Burgess N. Hippocampal amnesia. Neurocase 2001; 7: 357
  • Reitan RM, Wolfson D. A selective and critical review of neuropsychological deficits and the frontal lobes. Neuropsychology Review 1994; 4: 161–198
  • Trullier O, Shibata R, Mulder A, Wiener S. Hippocampal neuronal position selectivity remains fixed to room cues only in rats alternating between place and beacon approach tasks. European Journal of Neuroscience 1999; 11: 4381–4388

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