Skip to main content
Top
Published in: Acta Neurochirurgica 2/2018

Open Access 01-02-2018 | Original Article - Brain Injury

ICP curve morphology and intracranial flow-volume changes: a simultaneous ICP and cine phase contrast MRI study in humans

Authors: Mårten Unnerbäck, Johnny T. Ottesen, Peter Reinstrup

Published in: Acta Neurochirurgica | Issue 2/2018

Login to get access

Abstract

Background

The intracranial pressure (ICP) curve with its different peaks has been extensively studied, but the exact physiological mechanisms behind its morphology are still not fully understood. Both intracranial volume change (ΔICV) and transmission of the arterial blood pressure have been proposed to shape the ICP curve. This study tested the hypothesis that the ICP curve correlates to intracranial volume changes.

Methods

Cine phase contrast magnetic resonance imaging (MRI) examinations were performed in neuro-intensive care patients with simultaneous ICP monitoring. The MRI was set to examine cerebral arterial inflow and venous cerebral outflow as well as flow of cerebrospinal fluid over the foramen magnum. The difference in total flow into and out from the cranial cavity (Flowtot) over time provides the ΔICV. The ICP curve was compared to the Flowtot and the ΔICV. Correlations were calculated through linear and logarithmic regression. Student’s t test was used to test the null hypothesis between paired samples.

Results

Excluding the initial ICP wave, P1, the mean R 2 for the correlation between the ΔICV and the ICP was 0.75 for the exponential expression, which had a higher correlation than the linear (p = 0.005). The first ICP peaks correlated to the initial peaks of Flowtot with a mean R 2 = 0.88.

Conclusion

The first part, or the P1, of the ICP curve seems to be created by the first rapid net inflow seen in Flowtot while the rest of the ICP curve seem to correlate to the ΔICV.
Literature
1.
go back to reference Aaslid R, Newell D, Stooss R, Sorteberg W, Lindegaard KF (1991) Assessment of cerebral autoregulation dynamics from simultaneous arterial and venous transcranial Doppler recordings in human. Stroke 22:1148–1154CrossRefPubMed Aaslid R, Newell D, Stooss R, Sorteberg W, Lindegaard KF (1991) Assessment of cerebral autoregulation dynamics from simultaneous arterial and venous transcranial Doppler recordings in human. Stroke 22:1148–1154CrossRefPubMed
2.
go back to reference Adolph R, Fukusumi H, Fowler N (1967) Origin of cerebrospinal fluid pulsations. Am J Phys 212:840–846 Adolph R, Fukusumi H, Fowler N (1967) Origin of cerebrospinal fluid pulsations. Am J Phys 212:840–846
3.
go back to reference Alperin N, Lee S, Loth F, Raksin P, Lichtor T (2000) MR-intracranial pressure (ICP) a method to measure intracranial elastance and pressure noninvasively by means of MR imaging: baboon and human study. Radiology 217:877–885CrossRefPubMed Alperin N, Lee S, Loth F, Raksin P, Lichtor T (2000) MR-intracranial pressure (ICP) a method to measure intracranial elastance and pressure noninvasively by means of MR imaging: baboon and human study. Radiology 217:877–885CrossRefPubMed
4.
go back to reference Alperin N, Lee S, Sivaramakrishnan A, Hushek S (2005) Quantifying the effect of posture on intracranial physiology in humans by MRI flow studies. J Magn Reson Imaging 22:591–596CrossRefPubMed Alperin N, Lee S, Sivaramakrishnan A, Hushek S (2005) Quantifying the effect of posture on intracranial physiology in humans by MRI flow studies. J Magn Reson Imaging 22:591–596CrossRefPubMed
5.
go back to reference Alperin N, Sivaramakrishnan A, Lichtor T (2005) Magnetic resonance imaging-based measurements of cerebrospinal fluid and blood flow as indicators of intracranial compliance in patients with Chiari malformation. J Neurosurg 103:46–52CrossRefPubMed Alperin N, Sivaramakrishnan A, Lichtor T (2005) Magnetic resonance imaging-based measurements of cerebrospinal fluid and blood flow as indicators of intracranial compliance in patients with Chiari malformation. J Neurosurg 103:46–52CrossRefPubMed
6.
go back to reference Avezaat C, van Eijndhoven J (1986) Clinical observations on the relationship between cerebrospinal fluid pulse pressure and intracranial pressure. Acta Neurochir 79:13–29CrossRefPubMed Avezaat C, van Eijndhoven J (1986) Clinical observations on the relationship between cerebrospinal fluid pulse pressure and intracranial pressure. Acta Neurochir 79:13–29CrossRefPubMed
7.
go back to reference Avezaat C, van Eijndhoven J, Wyper D (1979) Cerebrospinal fluid pulse pressure and intracranial volume-pressure relationships. J Neurol Neurosurg Psychiatry 42:687–700CrossRefPubMedPubMedCentral Avezaat C, van Eijndhoven J, Wyper D (1979) Cerebrospinal fluid pulse pressure and intracranial volume-pressure relationships. J Neurol Neurosurg Psychiatry 42:687–700CrossRefPubMedPubMedCentral
8.
go back to reference Balédent O, Henry-Feugeas M, Idy-Peretti I (2001) Cerebrospinal fluid dynamics and relation with blood flow: a magnetic resonance study with semiautomated cerebrospinal fluid segmentation. Investig Radiol 36:368–377CrossRef Balédent O, Henry-Feugeas M, Idy-Peretti I (2001) Cerebrospinal fluid dynamics and relation with blood flow: a magnetic resonance study with semiautomated cerebrospinal fluid segmentation. Investig Radiol 36:368–377CrossRef
9.
go back to reference Bering E (1955) Choroid plexus and arterial pulsation of cerebrospinal fluid. Demonstration of the choroid plexuses as a cerebrospinal fluid pump. Arch Neurol Psychiatr 73:165–172CrossRef Bering E (1955) Choroid plexus and arterial pulsation of cerebrospinal fluid. Demonstration of the choroid plexuses as a cerebrospinal fluid pump. Arch Neurol Psychiatr 73:165–172CrossRef
10.
go back to reference Bryant DJ, Payne JA, Firmin DN, Longmore DB (1984) Measurement of flow with NMR imaging using a gradient pulse and phase difference technique. J Comput Assist Tomogr 8:588–593CrossRefPubMed Bryant DJ, Payne JA, Firmin DN, Longmore DB (1984) Measurement of flow with NMR imaging using a gradient pulse and phase difference technique. J Comput Assist Tomogr 8:588–593CrossRefPubMed
11.
go back to reference Cardoso E, Rowan J, Galbraith S (1983) Analysis of the cerebrospinal fluid pulse wave in intracranial pressure. J Neurosurg 59:817–821CrossRefPubMed Cardoso E, Rowan J, Galbraith S (1983) Analysis of the cerebrospinal fluid pulse wave in intracranial pressure. J Neurosurg 59:817–821CrossRefPubMed
12.
go back to reference Carney N, Totten AM, O’Reilly C, Ullman J, Hawryluk G, Bell M et al (2017) Guidelines for the management of severe traumatic brain injury, fourth edition. Neurosurgery 80:6–15PubMed Carney N, Totten AM, O’Reilly C, Ullman J, Hawryluk G, Bell M et al (2017) Guidelines for the management of severe traumatic brain injury, fourth edition. Neurosurgery 80:6–15PubMed
13.
go back to reference Carrera E, Kim D, Castellani G, Zweifel C, Czosnyka Z, Kasprowicz M, Smielewski P, Pickard J, Czosnyka M (2010) What shapes pulse amplitude of intracranial pressure? J Neurotrauma 27:317–324CrossRefPubMed Carrera E, Kim D, Castellani G, Zweifel C, Czosnyka Z, Kasprowicz M, Smielewski P, Pickard J, Czosnyka M (2010) What shapes pulse amplitude of intracranial pressure? J Neurotrauma 27:317–324CrossRefPubMed
14.
go back to reference Doepp F, Schreiber SJ, von Münster T, Rademacher J, Klingebiel R, Valdueza J (2004) How does the blood leave the brain? A systematic ultrasound analysis of cerebral venous drainage patterns. Neuroradiology 46:565–570CrossRefPubMed Doepp F, Schreiber SJ, von Münster T, Rademacher J, Klingebiel R, Valdueza J (2004) How does the blood leave the brain? A systematic ultrasound analysis of cerebral venous drainage patterns. Neuroradiology 46:565–570CrossRefPubMed
15.
go back to reference Dunbar H, Guthrie T, Karpell B (1966) A study of the cerebrospinal fluid pulse wave. Arch Neurol 14:624–630CrossRefPubMed Dunbar H, Guthrie T, Karpell B (1966) A study of the cerebrospinal fluid pulse wave. Arch Neurol 14:624–630CrossRefPubMed
16.
go back to reference Gega A, Utsumi S, Iida Y, Iida N, Tsuncda S (1980) Analysis of the wave pattern of CSF pulse wave. In: Shulman K, Marmarou A, Miller J, Becker D, Hochwald G, Brock M (eds) Intracranial pressure IV. Springer, Berlin, pp 180–190 Gega A, Utsumi S, Iida Y, Iida N, Tsuncda S (1980) Analysis of the wave pattern of CSF pulse wave. In: Shulman K, Marmarou A, Miller J, Becker D, Hochwald G, Brock M (eds) Intracranial pressure IV. Springer, Berlin, pp 180–190
17.
go back to reference Greitz D, Wirenstam R, Franck A, Nordell B, Thomsen C, Ståhlberg F (1992) Pulsatile brain movement and associated hydrodynamics studied by magnetic resonance phase imaging. The Monro-Kellie doctrine revisited. Neuroradiology 34:370–380CrossRefPubMed Greitz D, Wirenstam R, Franck A, Nordell B, Thomsen C, Ståhlberg F (1992) Pulsatile brain movement and associated hydrodynamics studied by magnetic resonance phase imaging. The Monro-Kellie doctrine revisited. Neuroradiology 34:370–380CrossRefPubMed
18.
go back to reference Hamit H, Beall A, DeBakey M (1965) Hemodynamic influences upon brain and cerebrospinal fluid pulsations and pressures. J Trauma 5:174–184CrossRefPubMed Hamit H, Beall A, DeBakey M (1965) Hemodynamic influences upon brain and cerebrospinal fluid pulsations and pressures. J Trauma 5:174–184CrossRefPubMed
19.
go back to reference Heiberg E, Sjögren J, Ugander M, Carlsson M, Engblom H, Arheden HD (2010) Design and validation of segment—a freely available software for cardiovascular image analysis. BMC Med Imaging 10:1CrossRefPubMedPubMedCentral Heiberg E, Sjögren J, Ugander M, Carlsson M, Engblom H, Arheden HD (2010) Design and validation of segment—a freely available software for cardiovascular image analysis. BMC Med Imaging 10:1CrossRefPubMedPubMedCentral
20.
go back to reference Lim S, Potts D, Deonarine V, Deck M (1973) Ventricular compliance in dogs with and without aqueductal obstruction. J Neurosurg 39:463–473CrossRefPubMed Lim S, Potts D, Deonarine V, Deck M (1973) Ventricular compliance in dogs with and without aqueductal obstruction. J Neurosurg 39:463–473CrossRefPubMed
21.
go back to reference Löfgren J, Zwetnow N (1973) Cranial and spinal components of the cerebrospinal fluid pressure-volume curve. Acta Neurol Scand 49:575–585CrossRefPubMed Löfgren J, Zwetnow N (1973) Cranial and spinal components of the cerebrospinal fluid pressure-volume curve. Acta Neurol Scand 49:575–585CrossRefPubMed
22.
go back to reference Lundberg N (1960) Continuous recording and control of ventricular fluid pressure in neurosurgical practice. Acta Psychiatr Scand Suppl 36:1–193PubMed Lundberg N (1960) Continuous recording and control of ventricular fluid pressure in neurosurgical practice. Acta Psychiatr Scand Suppl 36:1–193PubMed
23.
go back to reference Marks MP, Pelc NJ, Ross MR, Enzmann DR (1992) Determination of cerebral blood flow with a phase-contrast cine MR imaging technique: evaluation of normal subjects and patients with arteriovenous malformations. Radiology 182:467–476CrossRefPubMed Marks MP, Pelc NJ, Ross MR, Enzmann DR (1992) Determination of cerebral blood flow with a phase-contrast cine MR imaging technique: evaluation of normal subjects and patients with arteriovenous malformations. Radiology 182:467–476CrossRefPubMed
24.
go back to reference Marmarou A, Shulman K, LaMorgese J (1975) Compartmental analysis of compliance and outflow resistance of the cerebrospinal fluid system. J Neurosurg 43:523–534CrossRefPubMed Marmarou A, Shulman K, LaMorgese J (1975) Compartmental analysis of compliance and outflow resistance of the cerebrospinal fluid system. J Neurosurg 43:523–534CrossRefPubMed
25.
go back to reference Müller L, Toro E (2014) Enhanced global mathematical model for studying cerebral venous blood flow. J Biomech 47:3361–3372CrossRefPubMed Müller L, Toro E (2014) Enhanced global mathematical model for studying cerebral venous blood flow. J Biomech 47:3361–3372CrossRefPubMed
26.
go back to reference Raksin P, Alperin N, Sivaramakrishnan A, Surapaneni S, Lichtor T (2003) Noninvasive intracranial compliance and pressure based on dynamic magnetic resonance imaging of blood flow and cerebrospinal fluid flow: review of principles, implementation, and other noninvasive approaches. Neurosurg Focus 14(4):e4CrossRefPubMed Raksin P, Alperin N, Sivaramakrishnan A, Surapaneni S, Lichtor T (2003) Noninvasive intracranial compliance and pressure based on dynamic magnetic resonance imaging of blood flow and cerebrospinal fluid flow: review of principles, implementation, and other noninvasive approaches. Neurosurg Focus 14(4):e4CrossRefPubMed
27.
go back to reference Ryder H, Espey F, Kimbell F, Penka E, Rosenauer A, Podolsky B, Evans J (1953) The mechanism of the change in cerebrospinal fluid pressure following an induced change in the volume of the fluid space. J Lab Clin Med 41:428–435PubMed Ryder H, Espey F, Kimbell F, Penka E, Rosenauer A, Podolsky B, Evans J (1953) The mechanism of the change in cerebrospinal fluid pressure following an induced change in the volume of the fluid space. J Lab Clin Med 41:428–435PubMed
28.
go back to reference Sklar F, Elashvili I (1977) The pressure-volume function of brain elasticity. Physiological considerations and clinical applications. J Neurosurg 47:670–679CrossRefPubMed Sklar F, Elashvili I (1977) The pressure-volume function of brain elasticity. Physiological considerations and clinical applications. J Neurosurg 47:670–679CrossRefPubMed
29.
go back to reference Szewczykowski J, Sliwka S, Kunicki A, Dytko P, Korsak-Sliwka J (1977) A fast method of estimating the elastance of the intracranial system. J Neurosurg 47:19–26CrossRefPubMed Szewczykowski J, Sliwka S, Kunicki A, Dytko P, Korsak-Sliwka J (1977) A fast method of estimating the elastance of the intracranial system. J Neurosurg 47:19–26CrossRefPubMed
30.
31.
go back to reference van Eijndhoven J, Avezaat C (1986) Cerebrospinal fluid pulse pressure and the pulsatile variation in cerebral blood volume, an experimental study in dogs. Neurosurgery 19:507–522CrossRefPubMed van Eijndhoven J, Avezaat C (1986) Cerebrospinal fluid pulse pressure and the pulsatile variation in cerebral blood volume, an experimental study in dogs. Neurosurgery 19:507–522CrossRefPubMed
32.
go back to reference Wåhlin A, Ambarki K, Birgander R, Alperin N, Malm J, Eklund A (2010) Assessment of craniospinal pressure-volume indices. AJNR Am J Neuroradiol 31:1645–1650CrossRefPubMed Wåhlin A, Ambarki K, Birgander R, Alperin N, Malm J, Eklund A (2010) Assessment of craniospinal pressure-volume indices. AJNR Am J Neuroradiol 31:1645–1650CrossRefPubMed
Metadata
Title
ICP curve morphology and intracranial flow-volume changes: a simultaneous ICP and cine phase contrast MRI study in humans
Authors
Mårten Unnerbäck
Johnny T. Ottesen
Peter Reinstrup
Publication date
01-02-2018
Publisher
Springer Vienna
Published in
Acta Neurochirurgica / Issue 2/2018
Print ISSN: 0001-6268
Electronic ISSN: 0942-0940
DOI
https://doi.org/10.1007/s00701-017-3435-2

Other articles of this Issue 2/2018

Acta Neurochirurgica 2/2018 Go to the issue