Enhancing Craniofacial Bone Reconstruction with Clinically Applicable 3D Bioprinted Constructs

Author:

Lee Hyeongjin1,Kengla Carlos12,Kim Han Su13,Kim Ickhee1,Cho Jae‐Gu14,Renteria Eric1,Shin Kyungsup5,Atala Anthony12,Yoo James J.12,Lee Sang Jin12ORCID

Affiliation:

1. Wake Forest Institute for Regenerative Medicine Wake Forest University School of Medicine Winston‐Salem NC 27157 USA

2. School of Biomedical Engineering and Sciences Wake Forest University‐Virginia Tech Winston‐Salem NC 27157 USA

3. Department of Otorhinolaryngology‐Head and Neck Surgery College of Medicine Ewha Womans University Seoul 07804 Republic of Korea

4. Department of Otorhinolaryngology‐Head and Neck Surgery College of Medicine Korea University Seoul 02708 Republic of Korea

5. Department of Orthodontics University of Iowa College of Dentistry Iowa City IA 52242 USA

Abstract

AbstractMedical imaging and 3D bioprinting can be used to create patient‐specific bone scaffolds with complex shapes and controlled inner architectures. This study investigated the effectiveness of a biomimetic approach to scaffold design by employing geometric control. The biomimetic scaffold with a dense external layer showed improved bone regeneration compared to the control scaffold. New bone filled the defected region in the biomimetic scaffolds, while the control scaffolds only presented new bone at the boundary. Histological examination also shows effective bone regeneration in the biomimetic scaffolds, while fibrotic tissue ingrowth is observed in the control scaffolds. These findings suggest that the biomimetic bone scaffold, designed to minimize competition for fibrotic tissue formation in the bony defect, can enhance bone regeneration. This study underscores the notion that patient‐specific anatomy can be accurately translated into a 3D bioprinting strategy through medical imaging, leading to the fabrication of constructs with significant clinical relevance.

Funder

Armed Forces Institute of Regenerative Medicine

National Institutes of Health

Publisher

Wiley

Subject

Pharmaceutical Science,Biomedical Engineering,Biomaterials

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