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Evaluating Regional Pulmonary Deposition using Patient-Specific 3D Printed Lung Models
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Dynamic three-dimensional printing: The future of bronchoscopic simulation training?

Rao Fu1, Nicole G Hone2, James R Broadbent1

  • 1Department of Anaesthesia, Wellington Regional Hospital, New Zealand.

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|June 14, 2023
PubMed
Summary

A novel 3D airway model offers high-fidelity training for medical procedures. This dynamic, realistic prototype enhances skills in anesthesia, intensive care, surgery, and respiratory medicine.

Keywords:
3D printingAnaesthesiaairway—anaesthesiaeducation—intensive caresimulation—intensive care

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Area of Science:

  • Medical Simulation
  • 3D Printing Technology
  • Anatomical Modeling

Background:

  • High-fidelity models are crucial for mastering bronchoscopic procedures across medical disciplines.
  • Existing models may lack the dynamic and pathological realism needed for advanced training.

Purpose of the Study:

  • To develop a novel, high-fidelity three-dimensional (3D) airway model prototype.
  • To emulate physiological and pathological movements for enhanced procedural training.

Main Methods:

  • The model was developed based on a previously described 3D printed pediatric trachea.
  • Movement is simulated by injecting air or saline via a side Luer Lock port.
  • Incorporates high tissue realism suitable for rigid bronchoscopy.

Main Results:

  • The prototype effectively emulates physiological and pathological airway movements.
  • Demonstrates potential for simulating narrow pathologies and bleeding tumors.
  • Facilitates practice of procedures like double-lumen tube placement and broncho-alveolar lavage.

Conclusions:

  • The novel 3D printed airway model offers a high-fidelity, dynamic training solution.
  • It has broad applications in anesthesia, intensive care, surgery, and respiratory medicine.
  • Represents a significant advancement for generic and patient-specific anatomical representation in medical training.