✓ Cerebral blood flow (CBF) was measured by xenon-133 inhalation and single photon emission tomography in 17 demented patients with normal-pressure hydrocephalus before and after shunt treatment. All patients had a decreased conductance to outflow (Cout) of cerebrospinal fluid as measured by lumboventricular perfusion (COut < 0.12 ml ⋅ mm Hg−1 ⋅ min−1). Computerized tomography (CT) scanning, clinical assessment, and neuropsychological grading were performed pre- and postoperatively. The preoperative CBF studies revealed abnormal flow patterns in all patients. Fourteen patients showed moderate-sized, large, or very large central low-flow areas, and four patients had reduced flow bilaterally in the occipital and contiguous temporoparietal regions.
After shunting, six patients had a significant reduction in the size of the central low-flow area on the CBF map, agreeing well with the changes of ventricular size on the CT scan. All six patients showed an improvement in either clinical or neuropsychological grading. In 10 of the remaining 11 patients flow patterns were essentially unchanged; one patient deteriorated further. Four of these 11 patients improved on postoperative clinical or neuropsychological testing. Thus, a positive correlation was found between the changes in CBF and the reduction of the ventricular size on the CT scan, but changes in CBF as measured by the present technique did not accompany improvement in the functional state in all patients.
Black PM: Idiopathic normal-pressure hydrocephalus. Results of shunting in 62 patients. J Neurosurg 52:371–377, 1980 1. Black PM: Idiopathic normal-pressure hydrocephalus. Results of shunting in 62 patients. J Neurosurg 52:371–377, 1980
Børgesen SE, & Gjerris F: The predictive value of conductance to outflow of CSF in normal pressure hydrocephalus. Brain 105:65–86, 1982 Børgesen SE, Gjerris F: The predictive value of conductance to outflow of CSF in normal pressure hydrocephalus. Brain 105:65–86, 1982
Børgesen SE, , Gjerris F, & Sørensen SC: Intracranial pressure and conductance to outflow of cerebrospinal fluid in normal-pressure hydrocephalus. J Neurosurg 50:489–493, 1979 Børgesen SE, Gjerris F, Sørensen SC: Intracranial pressure and conductance to outflow of cerebrospinal fluid in normal-pressure hydrocephalus. J Neurosurg 50:489–493, 1979
Celsis P, , Goldman T, & Henriksen L, et al: A method for calculating regional cerebral blood flow from emission computed tomography of inert gas concentrations. J Comput Assist Tomogr 5:641–645, 1981 Celsis P, Goldman T, Henriksen L, et al: A method for calculating regional cerebral blood flow from emission computed tomography of inert gas concentrations. J Comput Assist Tomogr 5:641–645, 1981
Chase TN, , Foster NI, & Fedio P, et al: Regional cortical dysfunction in Alzheimer's disease as determined by positron emission tomography. Ann Neurol 15 (Suppl):S170–S174, 1984 Chase TN, Foster NI, Fedio P, et al: Regional cortical dysfunction in Alzheimer's disease as determined by positron emission tomography. Ann Neurol 15 (Suppl): S170–S174, 1984
Crockard HA, , Hanlon K, & Duda EE, et al: Hydrocephalus as a cause of dementia: evaluation by computerised tomography and intracranial pressure monitoring. J Neurol Neurosurg Psychiatry 40:736–740, 1977 Crockard HA, Hanlon K, Duda EE, et al: Hydrocephalus as a cause of dementia: evaluation by computerised tomography and intracranial pressure monitoring. J Neurol Neurosurg Psychiatry 40:736–740, 1977
Fisher CM: Hydrocephalus as a cause of disturbances of gait in the elderly. Neurology 32:1358–1363, 1982 Fisher CM: Hydrocephalus as a cause of disturbances of gait in the elderly. Neurology 32:1358–1363, 1982
Greitz TVB, , Grepe AOL, & Kalmér MSF, et al: Pre- and postoperative evaluation of cerebral blood flow in low-pressure hydrocephalus. J Neurosurg 31:644–651, 1969 Greitz TVB, Grepe AOL, Kalmér MSF, et al: Pre-and postoperative evaluation of cerebral blood flow in low-pressure hydrocephalus. J Neurosurg 31:644–651, 1969
Grubb RL Jr, , Raichle ME, & Gado MH, et al: Cerebral blood flow, oxygen utilization, and blood volume in dementia. Neurology 27:905–910, 1977 Grubb RL Jr, Raichle ME, Gado MH, et al: Cerebral blood flow, oxygen utilization, and blood volume in dementia. Neurology 27:905–910, 1977
Gunasekera L, & Richardson AE: Computerized axial tomography in idiopathic hydrocephalus. Brain 100:749–754, 1977 Gunasekera L, Richardson AE: Computerized axial tomography in idiopathic hydrocephalus. Brain 100:749–754, 1977
Gyldensted C: Measurements of the normal ventricular system and hemispheric sulci of 100 adults with computed tomography. Neuroradiology 14:183–192, 1977 Gyldensted C: Measurements of the normal ventricular system and hemispheric sulci of 100 adults with computed tomography. Neuroradiology 14:183–192, 1977
Hagberg BO, & Ingvar DH: Cognitive reduction in presenile dementia related to regional abnormalities of the cerebral blood flow. Br J Psychiatry 128:209–222, 1976 Hagberg BO, Ingvar DH: Cognitive reduction in presenile dementia related to regional abnormalities of the cerebral blood flow. Br J Psychiatry 128:209–222, 1976
Hakim S, & Adams RD: The special clinical problem of symptomatic hydrocephalus with normal cerebrospinal fluid pressure. Observations on cerebrospinal fluid hydrodynamics. J Neurol Sci 2:307–327, 1965 Hakim S, Adams RD: The special clinical problem of symptomatic hydrocephalus with normal cerebrospinal fluid pressure. Observations on cerebrospinal fluid hydrodynamics. J Neurol Sci 2:307–327, 1965
Halsey JH Jr, , Nakai K, & Wariyar B: Sensitivity of rCBF to focal lesions. Stroke 12:631–635, 1981 Halsey JH Jr, Nakai K, Wariyar B: Sensitivity of rCBF to focal lesions. Stroke 12:631–635, 1981
Holm S, , Vorstrup S, & Lassen NA, et al: Physical factors affecting calculated cerebral blood flow values in hypoperfused areas in single photon emission computerized tomography, in Hartmann A, & Hoyer S (eds): Cerebral Blood Flow and Metabolism Measurement. Berlin/Heidelberg/New York: Springer-Verlag, 1985, pp 234–237 Holm S, Vorstrup S, Lassen NA, et al: Physical factors affecting calculated cerebral blood flow values in hypoperfused areas in single photon emission computerized tomography, in Hartmann A, Hoyer S (eds): Cerebral Blood Flow and Metabolism Measurement. Berlin/Heidelberg/New York: Springer-Verlag, 1985, pp 234–237
Huckman MS: Normal pressure hydrocephalus: evaluation of diagnostic and prognostic tests. AJNR 2:385–395, 1981 Huckman MS: Normal pressure hydrocephalus: evaluation of diagnostic and prognostic tests. AJNR 2:385–395, 1981
Hughes CP, , Siegel BA, & Coxe WS, et al: Adult idiopathic communicating hydrocephalus with and without shunting. J Neurol Neurosurg Psychiatry 41:961–971, 1978 Hughes CP, Siegel BA, Coxe WS, et al: Adult idiopathic communicating hydrocephalus with and without shunting. J Neurol Neurosurg Psychiatry 41:961–971, 1978
Kanno I, & Lassen NA: Two methods for calculating regional cerebral blood flow from emission computed tomography of inert gas concentrations. J Comput Assist Tomogr 3:71–76, 1979 Kanno I, Lassen NA: Two methods for calculating regional cerebral blood flow from emission computed tomography of inert gas concentrations. J Comput Assist Tomogr 3:71–76, 1979
Kushner M, , Younkin D, & Weinberger J, et al: Cerebral hemodynamics in the diagnosis of normal pressure hydrocephalus. Neurology 34:96–99, 1984 Kushner M, Younkin D, Weinberger J, et al: Cerebral hemodynamics in the diagnosis of normal pressure hydrocephalus. Neurology 34:96–99, 1984
Lying-Tunell U, , Lindblad BS, & Malmlund HO, et al: Cerebral blood flow and metabolic rate of oxygen, glucose, lactate, pyruvate, ketone bodies and amino acids. II. Presenile dementia and normal-pressure hydrocephalus. Acta Neurol Scand 63:337–350, 1981 Lying-Tunell U, Lindblad BS, Malmlund HO, et al: Cerebral blood flow and metabolic rate of oxygen, glucose, lactate, pyruvate, ketone bodies and amino acids. II. Presenile dementia and normal-pressure hydrocephalus. Acta Neurol Scand 63:337–350, 1981
Mathew NT, , Meyer JS, & Hartmann A, et al: Abnormal cerebrospinal fluid-blood flow dynamics. Implications in diagnosis, treatment, and prognosis in normal pressure hydrocephalus. Arch Neurol 32:657–664, 1975 Mathew NT, Meyer JS, Hartmann A, et al: Abnormal cerebrospinal fluid-blood flow dynamics. Implications in diagnosis, treatment, and prognosis in normal pressure hydrocephalus. Arch Neurol 32:657–664, 1975
Powers WJ, , Grubb RL Jr, & Baker RP, et al: Regional cerebral blood flow and metabolism in reversible ischemia due to vasospasm. Determination by positron emission tomography. J Neurosurg 62:539–546, 1985 Powers WJ, Grubb RL Jr, Baker RP, et al: Regional cerebral blood flow and metabolism in reversible ischemia due to vasospasm. Determination by positron emission tomography. J Neurosurg 62:539–546, 1985
Raichle ME, , Grubb RL Jr, & Gado MH, et al: Correlation between regional cerebral blood flow and oxidative metabolism. In vivo studies in man. Arch Neurol 33:523–526, 1976 Raichle ME, Grubb RL Jr, Gado MH, et al: Correlation between regional cerebral blood flow and oxidative metabolism. In vivo studies in man. Arch Neurol 33:523–526, 1976
Salmon JH, & Timperman AL: Effect of intracranial hypotension on cerebral blood flow. J Neurol Neurosurg Psychiatry 34:687–692, 1971 Salmon JH, Timperman AL: Effect of intracranial hypotension on cerebral blood flow. J Neurol Neurosurg Psychiatry 34:687–692, 1971
Shenkin HA, , Greenberg JO, & Grossman CB: Ventricular size after shunting for idiopathic normal pressure hydrocephalus. J Neurol Neurosurg Psychiatry 38:833–837, 1975 Shenkin HA, Greenberg JO, Grossman CB: Ventricular size after shunting for idiopathic normal pressure hydrocephalus. J Neurol Neurosurg Psychiatry 38:833–837, 1975
Stein SC, & Langfitt TW: Normal-pressure hydrocephalus. Predicting the results of cerebrospinal fluid shunting. J Neurosurg 41:463–470, 1974 Stein SC, Langfitt TW: Normal-pressure hydrocephalus. Predicting the results of cerebrospinal fluid shunting. J Neurosurg 41:463–470, 1974
Stokely EM, , Sveinsdottir E, & Lassen NA, et al: A single photon dynamic computer assisted tomograph (DCAT) for imaging brain function in multiple cross sections. J Comput Assist Tomogr 4:230–240, 1980 Stokely EM, Sveinsdottir E, Lassen NA, et al: A single photon dynamic computer assisted tomograph (DCAT) for imaging brain function in multiple cross sections. J Comput Assist Tomogr 4:230–240, 1980
Symon L, & Dorsch NWC: Use of long-term intracranial pressure measurement to assess hydrocephalic patients prior to shunt surgery. J Neurosurg 42:258–273, 1975 Symon L, Dorsch NWC: Use of long-term intracranial pressure measurement to assess hydrocephalic patients prior to shunt surgery. J Neurosurg 42:258–273, 1975
Tamaki N, , Kusunoki T, & Wakabayashi T, et al: Cerebral hemodynamics in normal-pressure hydrocephalus. Evaluation by 133Xe inhalation method and dynamic CT study. J Neurosurg 61:510–514, 1984 Tamaki N, Kusunoki T, Wakabayashi T, et al: Cerebral hemodynamics in normal-pressure hydrocephalus. Evaluation by 133Xe inhalation method and dynamic CT study. J Neurosurg 61:510–514, 1984
Thomsen AM, , Børgesen SE, & Bruhn P, et al: Prognosis of dementia in normal-pressure hydrocephalus after a shunt operation. Ann Neurol 20:304–310, 1986 Thomsen AM, Børgesen SE, Bruhn P, et al: Prognosis of dementia in normal-pressure hydrocephalus after a shunt operation. Ann Neurol 20:304–310, 1986
Voldby B, , Enevoldsen EM, & Jensen FT: Regional CBF, intraventricular pressure, and cerebral metabolism in patients with ruptured intracranial aneurysms. J Neurosurg 62:48–58, 1985 Voldby B, Enevoldsen EM, Jensen FT: Regional CBF, intraventricular pressure, and cerebral metabolism in patients with ruptured intracranial aneurysms. J Neurosurg 62:48–58, 1985
Wise RJS, , Bernardi S, & Frackowiak RSJ, et al: Serial observations on the pathophysiology of acute stroke. The transition from ischaemia to infarction as reflected in regional oxygen extraction. Brain 106:197–222, 1983 Wise RJS, Bernardi S, Frackowiak RSJ, et al: Serial observations on the pathophysiology of acute stroke. The transition from ischaemia to infarction as reflected in regional oxygen extraction. Brain 106:197–222, 1983
Wozniak M, , McLone DG, & Raimondi AJ: Micro- and macrovascular changes as the direct cause of parenchymal destruction in congenital murine hydrocephalus. J Neurosurg 43:535–545, 1975 Wozniak M, McLone DG, Raimondi AJ: Micro- and macrovascular changes as the direct cause of parenchymal destruction in congenital murine hydrocephalus. J Neurosurg 43:535–545, 1975
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