Projection-based stereolithography for direct 3D printing of heterogeneous ultrasound phantoms

Author:

Paulsen Samantha J.,Mitcham Trevor M.ORCID,Pan Charlene S.,Long James,Grigoryan Bagrat,Sazer Daniel W.ORCID,Harlan Collin J.ORCID,Janson Kevin D.ORCID,Pagel Mark D.,Miller Jordan S.,Bouchard Richard R.

Abstract

Modern ultrasound (US) imaging is increasing its clinical impact, particularly with the introduction of US-based quantitative imaging biomarkers. Continued development and validation of such novel imaging approaches requires imaging phantoms that recapitulate the underlying anatomy and pathology of interest. However, current US phantom designs are generally too simplistic to emulate the structure and variability of the human body. Therefore, there is a need to create a platform that is capable of generating well-characterized phantoms that can mimic the basic anatomical, functional, and mechanical properties of native tissues and pathologies. Using a 3D-printing technique based on stereolithography, we fabricated US phantoms using soft materials in a single fabrication session, without the need for material casting or back-filling. With this technique, we induced variable levels of stable US backscatter in our printed materials in anatomically relevant 3D patterns. Additionally, we controlled phantom stiffness from 7 to >120 kPa at the voxel level to generate isotropic and anisotropic phantoms for elasticity imaging. Lastly, we demonstrated the fabrication of channels with diameters as small as 60 micrometers and with complex geometry (e.g., tortuosity) capable of supporting blood-mimicking fluid flow. Collectively, these results show that projection-based stereolithography allows for customizable fabrication of complex US phantoms.

Funder

U.S. National Heart, Lung, and Blood Institute of the National Institutes of Health F31 NRSA Fellowship

Rice University Special Endowed Nettie S. Autrey Fellowship

National Science Foundation Graduate Research Fellowship

Gulf Coast Consortia on the NSF IGERT: Neuroengineering from Cells to Systems

National Cancer Institute of the National Institute of Health R21 Exploratory/Developmental Research

Publisher

Public Library of Science (PLoS)

Subject

Multidisciplinary

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