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Published in: Acta Neurochirurgica 1/2016

01-01-2016 | Experimental research - Pediatrics

Parametric study of ventricular catheters for hydrocephalus

Authors: Marcelo Galarza, Angel Giménez, Olga Pellicer, José Valero, José M. Amigó

Published in: Acta Neurochirurgica | Issue 1/2016

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Abstract

Background

To drain the excess of cerebrospinal fluid in a hydrocephalus patient, a catheter is inserted into one of the brain ventricles and then connected to a valve. This so-called ventricular catheter is a standard-size, flexible tubing with a number of holes placed symmetrically around several transversal sections or “drainage segments”. Three-dimensional computational dynamics shows that most of the fluid volume flows through the drainage segment closest to the valve. This fact raises the likelihood that those holes and then the lumen get clogged by the cells and macromolecules present in the cerebrospinal fluid, provoking malfunction of the whole system. In order to better understand the flow pattern, we have carried out a parametric study via numerical models of ventricular catheters.

Methods

The parameters chosen are the number of drainage segments, the distances between them, the number and diameter of the holes on each segment, as well as their relative angular position.

Results

These parameters were found to have a direct consequence on the flow distribution and shear stress of the catheter. As a consequence, we formulate general principles for ventricular catheter design.

Conclusions

These principles can help develop new catheters with homogeneous flow patterns, thus possibly extending their lifetime.
Appendix
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Literature
1.
go back to reference Bergsneider M, Egnor MR, Johnston M, Kranz D, Madsen JR, McAllister JP 2nd, Stewart C, Walker ML, Williams MA (2006) What we don’t (but should) know about hydrocephalus. J Neurosurg 104:157–159PubMedCrossRef Bergsneider M, Egnor MR, Johnston M, Kranz D, Madsen JR, McAllister JP 2nd, Stewart C, Walker ML, Williams MA (2006) What we don’t (but should) know about hydrocephalus. J Neurosurg 104:157–159PubMedCrossRef
2.
go back to reference Cheatle JT, Bowder AN, Agrawal SK, Sather MD, Hellbusch LC (2012) Flow characteristics of cerebrospinal fluid shunt tubing. J Neurosurg Pediatr 9:191–197PubMedCrossRef Cheatle JT, Bowder AN, Agrawal SK, Sather MD, Hellbusch LC (2012) Flow characteristics of cerebrospinal fluid shunt tubing. J Neurosurg Pediatr 9:191–197PubMedCrossRef
3.
go back to reference Czosnyka Z, Czosnyka M, Richards H, Pickard JD (1998) Hydrodynamic properties of hydrocephalus shunts. Acta Neurochir Suppl 71:334–339PubMed Czosnyka Z, Czosnyka M, Richards H, Pickard JD (1998) Hydrodynamic properties of hydrocephalus shunts. Acta Neurochir Suppl 71:334–339PubMed
4.
go back to reference Drake J, Kestle JR, Milner R, Cinalli G, Boop F, Piatt J Jr, Haines S, Schiff SJ, Cochrane DD, Steinbok P, MacNeil N (1998) Randomized trial of cerebrospinal fluid shunt valve design in pediatric hydrocephalus. Neurosurgery 43:294–305PubMedCrossRef Drake J, Kestle JR, Milner R, Cinalli G, Boop F, Piatt J Jr, Haines S, Schiff SJ, Cochrane DD, Steinbok P, MacNeil N (1998) Randomized trial of cerebrospinal fluid shunt valve design in pediatric hydrocephalus. Neurosurgery 43:294–305PubMedCrossRef
5.
go back to reference Galarza M, Giménez A, Valero J, Pellicer OP, Amigó JM (2014) Computational fluid dynamics of ventricular catheters used for the treatment of hydrocephalus: a 3D analysis. Childs Nerv Syst 30(1):105–116PubMedCrossRef Galarza M, Giménez A, Valero J, Pellicer OP, Amigó JM (2014) Computational fluid dynamics of ventricular catheters used for the treatment of hydrocephalus: a 3D analysis. Childs Nerv Syst 30(1):105–116PubMedCrossRef
6.
go back to reference Galarza M, Giménez A, Pellicer O, Valero J, Amigó JM (2015) New designs of ventricular catheters for hydrocephalus by 3-D computational fluid dynamics. Childs Nerv Syst 31(1):41–47CrossRef Galarza M, Giménez A, Pellicer O, Valero J, Amigó JM (2015) New designs of ventricular catheters for hydrocephalus by 3-D computational fluid dynamics. Childs Nerv Syst 31(1):41–47CrossRef
7.
go back to reference Galarza M, Giménez A, Valero J, Pellicer O, Martínez-Lage JF, Amigó JM (2015) Basic cerebrospinal fluid flow patterns in ventricular catheters prototypes Childs Nerv. Childs Nerv Syst 31(6):873–884PubMedCrossRef Galarza M, Giménez A, Valero J, Pellicer O, Martínez-Lage JF, Amigó JM (2015) Basic cerebrospinal fluid flow patterns in ventricular catheters prototypes Childs Nerv. Childs Nerv Syst 31(6):873–884PubMedCrossRef
8.
go back to reference Ginsberg HJ, Sum A, Drake JM (2000) Ventriculoperitoneal shunt flow dependency on the number of patent holes in a ventricular catheter. Pediatr Neurosurg 33:7–11PubMedCrossRef Ginsberg HJ, Sum A, Drake JM (2000) Ventriculoperitoneal shunt flow dependency on the number of patent holes in a ventricular catheter. Pediatr Neurosurg 33:7–11PubMedCrossRef
9.
go back to reference Harris CA, McAllister JP 2nd (2011) Does drainage hole size influence adhesion on ventricular catheters? Childs Nerv Syst 27:1221–1232PubMedCrossRef Harris CA, McAllister JP 2nd (2011) Does drainage hole size influence adhesion on ventricular catheters? Childs Nerv Syst 27:1221–1232PubMedCrossRef
10.
go back to reference Harris CA, McAllister JP 2nd (2012) What we should know about the cellular and tissue response causing catheter obstruction in the treatment of hydrocephalus. Neurosurgery 70:1589–1601PubMedCrossRef Harris CA, McAllister JP 2nd (2012) What we should know about the cellular and tissue response causing catheter obstruction in the treatment of hydrocephalus. Neurosurgery 70:1589–1601PubMedCrossRef
11.
go back to reference Lin J, Morris M, Olivero W, Boop F, Sanford RA (2003) Computational and experimental study of proximal flow in ventricular catheters. Technical note. J Neurosurg 99:426–431PubMedCrossRef Lin J, Morris M, Olivero W, Boop F, Sanford RA (2003) Computational and experimental study of proximal flow in ventricular catheters. Technical note. J Neurosurg 99:426–431PubMedCrossRef
12.
go back to reference Magram G, Liakos AM (2000) Cerebrospinal fluid flow through an implanted shunt. Neurol Res 22:43–50PubMed Magram G, Liakos AM (2000) Cerebrospinal fluid flow through an implanted shunt. Neurol Res 22:43–50PubMed
13.
go back to reference Malm J, Lundkvist B, Eklund A, Koskinen LO, Kristensen B (2004) CSF outflow resistance as predictor of shunt function. A longterm study. Acta Neurol Scand 110:154–160PubMedCrossRef Malm J, Lundkvist B, Eklund A, Koskinen LO, Kristensen B (2004) CSF outflow resistance as predictor of shunt function. A longterm study. Acta Neurol Scand 110:154–160PubMedCrossRef
14.
go back to reference Mukerji N, Cahill J, Rodrigues D, Prakash S, Strachan R (2009) Flow dynamics in lumboperitoneal shunts and their implications in vivo. J Neurosurg 111:632–637PubMedCrossRef Mukerji N, Cahill J, Rodrigues D, Prakash S, Strachan R (2009) Flow dynamics in lumboperitoneal shunts and their implications in vivo. J Neurosurg 111:632–637PubMedCrossRef
15.
go back to reference Sainte-Rose C, Piatt JH, Renier D, Pierre-Kahn A, Hirsch JF, Hoffman HJ, Humphreys RP, Hendrick EB (1991) Mechanical complications in shunts. Pediatr Neurosurg 17:2–9PubMedCrossRef Sainte-Rose C, Piatt JH, Renier D, Pierre-Kahn A, Hirsch JF, Hoffman HJ, Humphreys RP, Hendrick EB (1991) Mechanical complications in shunts. Pediatr Neurosurg 17:2–9PubMedCrossRef
16.
go back to reference Thomale UW, Hosch H, Koch A, Schulz M, Stoltenburg G, Haberl EJ, Sprung C (2010) Perforation holes in ventricular catheters—is less more? Childs Nerv Syst 26:781–789PubMedCrossRef Thomale UW, Hosch H, Koch A, Schulz M, Stoltenburg G, Haberl EJ, Sprung C (2010) Perforation holes in ventricular catheters—is less more? Childs Nerv Syst 26:781–789PubMedCrossRef
Metadata
Title
Parametric study of ventricular catheters for hydrocephalus
Authors
Marcelo Galarza
Angel Giménez
Olga Pellicer
José Valero
José M. Amigó
Publication date
01-01-2016
Publisher
Springer Vienna
Published in
Acta Neurochirurgica / Issue 1/2016
Print ISSN: 0001-6268
Electronic ISSN: 0942-0940
DOI
https://doi.org/10.1007/s00701-015-2618-y

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