Literature DB >> 31239583

A High-Fidelity Surgical Model and Perfusion Simulator Used to Demonstrate ECMO Cannulation, Initiation, and Stabilization.

David Palmer1, Marit Aspenleiter1, Jose da Silva1, Mario Castro-Medina1, Victor Morell1, Mahesh Sharma1, Melita Viegas1.   

Abstract

Our high-fidelity simulation model provides a realistic example for health-care professionals to experience cannulation, initiation, and hemodynamic stabilization during extracorporeal membrane oxygenation (ECMO) therapy. This educational experience brings a variety of critical care specialties together, in a controlled simulation setting, to develop, master, and maintain clinical skills. This may include perfusionists, ECMO specialists, surgical technicians, registered nurses, physicians, and students. The simulation component includes a unique vascular access pad that is attached to either a static fluid model or to the Califia perfusion simulator system (Biomed Simulation, Inc., San Diego, CA). This collective high-fidelity simulation model can be surgically cannulated via a cutdown technique using an appropriately sized cannula and connected to an in situ ECMO circuit. This article explains the educational strategy, how the surgical pad is made, and the simulator connections so that any hospital can re-create this experience.

Keywords:  ECMO (extracorporeal membrane oxygenation); califia perfusion simulator system; cannula; carotid; cervical; education; extracorporeal life support; high-fidelity simulation; jugular; manikin; polymer; simulation; skin; surgical instruments

Mesh:

Year:  2019        PMID: 31239583      PMCID: PMC6586262     

Source DB:  PubMed          Journal:  J Extra Corpor Technol        ISSN: 0022-1058


  2 in total

1.  Human factors in ECLS - A keystone for safety and quality - A narrative review for ECLS providers.

Authors:  Justyna Swol; Daniel Brodie; Anne Willers; Bishoy Zakhary; Joseph Belezzo; Zachary Shinar; Scott D Weingart; Jonathan W Haft; Roberto Lorusso; Giles J Peek
Journal:  Artif Organs       Date:  2021-11-05       Impact factor: 2.663

2.  3D-Printed Ophthalmic-Retrobulbar-Anesthesia Simulator: Mimicking Anatomical Structures and Providing Tactile Sensations.

Authors:  Yong Je Choi; Yoon Ha Joo; Baek-Lok Oh; Jung Chan Lee
Journal:  IEEE J Transl Eng Health Med       Date:  2021-07-26       Impact factor: 3.316

  2 in total

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