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Development of a 3D Printed Brain Model with Vasculature for Neurosurgical Procedure Visualisation and Training.
Encarnacion Ramirez, Manuel; Ramirez Pena, Issael; Barrientos Castillo, Rossi E; Sufianov, Albert; Goncharov, Evgeniy; Soriano Sanchez, Jose A; Colome-Hidalgo, Manuel; Nurmukhametov, Renat; Cerda Céspedes, José Rafael; Montemurro, Nicola.
Afiliação
  • Encarnacion Ramirez M; Department of Neurosurgery, RUDN University, 121359 Moscow, Russia.
  • Ramirez Pena I; The Royal Melbourne Hospital, Melbourne, VIC 3000, Australia.
  • Barrientos Castillo RE; Department of Neurosurgery, RUDN University, 121359 Moscow, Russia.
  • Sufianov A; Department of Neurosurgery, First Moscow State Medical University (Sechenov University), 121359 Moscow, Russia.
  • Goncharov E; Traumatology and Orthopedics Center, Central Clinical Hospital of the Russian Academy of Sciences, 121359 Moscow, Russia.
  • Soriano Sanchez JA; Instituto Soriano de Cirugía de Columna Mínimamente Invasiva at ABC Hospital, Neurological Center, Santa Fe Campus, Mexico City 05100, Mexico.
  • Colome-Hidalgo M; Instituto de Investigación en Salud, Universidad Autònoma de Santo Domingo, Santo Domingo 10014, Dominican Republic.
  • Nurmukhametov R; Department of Neurosurgery, RUDN University, 121359 Moscow, Russia.
  • Cerda Céspedes JR; Departamento de Farmacia Galénica, Universidad Complutense de Madrid (UCM), 28040 Madrid, Spain.
  • Montemurro N; Department of Neurosurgery, Azienda Ospedaliera Universitaria Pisana (AOUP), University of Pisa, 56100 Pisa, Italy.
Biomedicines ; 11(2)2023 Jan 24.
Article em En | MEDLINE | ID: mdl-36830866
ABSTRACT

BACKGROUND:

Simulation-based techniques using three-dimensional models are gaining popularity in neurosurgical training. Most pre-existing models are expensive, so we felt a need to develop a real-life model using 3D printing technology to train in endoscopic third ventriculostomy.

METHODS:

The brain model was made using a 3D-printed resin mold from patient-specific MRI data. The mold was filled with silicone Ecoflex™ 00-10 and mixed with Silc Pig® pigment additives to replicate the color and consistency of brain tissue. The dura mater was made from quick-drying silicone paste admixed with gray dye. The blood vessels were made from a silicone 3D-printed mold based on magnetic resonance imaging. Liquid containing paprika oleoresin dye was used to simulate blood and was pumped through the vessels to simulate pulsatile motion.

RESULTS:

Seven residents and eight senior neurosurgeons were recruited to test our model. The participants reported that the size and anatomy of the elements were very similar to real structures. The model was helpful for training neuroendoscopic 3D perception and navigation.

CONCLUSIONS:

We developed an endoscopic third ventriculostomy training model using 3D printing technology that provides anatomical precision and a realistic simulation. We hope our model can provide an indispensable tool for young neurosurgeons to gain operative experience without exposing patients to risk.
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Texto completo: 1 Base de dados: MEDLINE Idioma: En Revista: Biomedicines Ano de publicação: 2023 Tipo de documento: Article País de afiliação: Federação Russa

Texto completo: 1 Base de dados: MEDLINE Idioma: En Revista: Biomedicines Ano de publicação: 2023 Tipo de documento: Article País de afiliação: Federação Russa