In vitro characterization of solute transport in the spinal canal

Author:

Moral-Pulido F.12ORCID,Jiménez-González J. I.12ORCID,Gutiérrez-Montes C.12ORCID,Coenen W.3ORCID,Sánchez A. L.4ORCID,Martínez-Bazán C.56ORCID

Affiliation:

1. Department of Mechanical and Mining Engineering, University of Jaén 1 , 23071 Jaén, Spain

2. Andalusian Institute for Earth System Research, University of Jaén 2 , Campus de las Lagunillas, 23071 Jaén, Spain

3. Department of Thermal and Fluid Engineering, University Carlos III of Madrid 3 , 28911 Leganés, Spain

4. Department of Aerospace and Mechanical Engineering, University of California 4 , San Diego, California 92093-0411, USA

5. Department of Mechanics of Structures and Hydraulic Engineering, University of Granada 5 , 18001 Granada, Spain

6. Andalusian Institute for Earth System Research, University of Granada 6 , Avda. del Mediterráneo s/n, 18006 Granada, Spain

Abstract

This paper presents results of an experimental investigation of solute transport in a simplified model of the spinal canal. The work aims to provide increased understanding of the mechanisms responsible for drug dispersion in intrathecal drug delivery (ITDD) procedures. The model consists of an annular channel bounded externally by a rigid transparent tube of circular section, representing the dura mater, and internally by an eccentric cylindrical compliant insert, representing the spinal cord. The tube, closed at one end, is connected to a rigid acrylic reservoir, representing the cranial cavity. The system is filled with water, whose properties are almost identical to those of the cerebrospinal fluid. A programmable peristaltic pump is employed to generate oscillatory motion at frequencies that are representative of those induced by the cardiac and respiratory cycles. Laser induced fluorescence is used to characterize the dispersion of fluorescent dye along the canal and into the cranial cavity for different values of the relevant Womersley number and different eccentricities of the annular section. The present work corroborates experimentally, for the first time, the existence of a steady bulk flow, associated with the mean Lagrangian motion, which plays a key role in the transport of the solute along the spinal canal. The measurements of solute dispersion are found to be in excellent agreement with theoretical predictions obtained using a simplified transport equation derived earlier on the basis of a two-timescale asymptotic analysis. The experimental results underscore the importance of the eccentricity and its variations along the canal and identifies changes in the flow topology associated with differences in the Womersley number, with potential implications in guiding future designs of ITDD protocols.

Funder

Ministerio de Ciencia e Innovación

Junta de Andalucía

National Science Foundation

Ministerio de Universidades

Publisher

AIP Publishing

Subject

Condensed Matter Physics,Fluid Flow and Transfer Processes,Mechanics of Materials,Computational Mechanics,Mechanical Engineering

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