Search bioRxiv⌕ Search

Biology subjects

Riviere-Cazaux, C.

Publications and source records attributed to Riviere-Cazaux, C..

3 recordsLinked to original sources

MRI-to-Synthetic 3D Gel Brain: Proof-of-Concept Fabrication For Intra-Parenchymal Diffusion Studies

Bioprinting technologies utilize hydrogel-based biomaterials to more accurately depict in vivo physical conditions within in vitro studies, yet, manufacturing the human brain from soft, poroelastic hydrogels remains a fundamental challenge. Conventional manufacturing routes to fabricate hydrogel brain models using techniques, i.e., 3D printing, seems challenging. This study aims to demonstrate an inverse replica molding fabrication technique that can overcome these challenges while maintaining the complex shape of an individual subjects brain in a miniaturized model--allowing for a more robust hydrogel model that can capture the interactions between diffusing molecules and brain boundaries. This is done by taking a subjects magnetic resonance imaging (MRI) scan and reconstructing the outer pial surface into a mesh surface. The mesh was then converted to an STL and printed out using an extrusion printer. A silicon mold was made from this print into which agarose was gelled. Once fully gelated, the synthetic gel brain was then carefully removed. Two infusion trials were run in the gel brain, each using a different infusion site. Then a diffusion profile was established and compared to a simple gel infusion model. The result shows different diffusion profiles at each location and between the simple and complex models. This model can better represent the interference the complex shape of the brain has on particle movement compared to simple gel models.

bioengineering↗

In Silico, Brain Mesh Platform for Computing Topographic Dependent Internal Facets

Individualized and anatomically correct computational models of the brain can be leveraged to improve knowledge of drug dispersal following simulation of drug delivery. Using a patients magnetic resonance image (MRI) scans, we were able to reconstruct the pial surface of the brain of the left hemisphere with strong anatomic accuracy. We then established the major internal features, including the lateral ventricle, a tumor, and drug delivery catheters. These were able to include relevant tissue characteristics such as porosity and permeability in the Multiphysics platform COMSOL to create a platform for brain modeling. To test the performance of this platform, we simulated direct drug infusion in both a healthy patient brain and a diseased patient model, focusing on glioblastoma (GBM). Using this platform, we simulated perturbed convection enhanced delivery of a cancer medication (similar to temozolomide (TMZ) but modeled using methylene blue) to the tumor. Consequently, with our patient derived model, we are able to simulate solute dispersal and fluid flow representative of in vivo conditions.

bioengineering↗

Convection-enhanced diffusion and directed withdrawal of methylene blue in agarose hydrogel using finite element analyses

Precision drug delivery for optimized therapeutic targeting requires knowledge of momentum transport and molecular diffusion of molecules within the patients interstitial tissue, especially for tumor treatment within the brain. Dispersion in the interstitial space is impacted by delivery method, tissue material properties, individual-specific fluid flow, and particle size of the input solute. Knowledge of a drugs dispersion allows for optimizing solute delivery, concentration, and flow rates to maximize drug distribution and biomarker recovery. For delivering drugs, increased knowledge of drug location after delivery can improve therapeutic treatment by optimizing the dosing of healthy and unhealthy tissue. Finite element methods (FEM) tools, such as COMSOL Multiphysics, can simulate molecular distribution inside-individual specific shapes and porous material properties. Furthermore, an additional unmet need is delivery methods that can be adjusted to manipulate diffusion regions through tissue via techniques such as directed flow. This would be especially valuable in targeted drug delivery within tumors to increase the cancerous surface area covered while limiting damage to surrounding tissues. In this project, the directed flow was induced by perfusing the injected solution at an input probe while withdrawing fluid at an output probe, enabling targeted flow through the desired region. FEM computation faithfully replicated these conditions and could be used to determine the effective concentrations perfused over the region of interest. We leveraged COMSOL Multiphysics to perform a computational study simulating convection-enhanced delivery (CED) with an output probe pulling the concentration profile over the region of interest. This simulation system can be applied to therapeutics targeting, vaccine subcutaneous injection, and waste and media diffusion in tissue engineering.

bioengineering↗