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Integrated biofabrication of artificial esophageal scaffolds using electrospinning, embedded DLP, and extrusion techniques

  • Priya Ranganathan
  • , Seung Hoon Han
  • , In Gul Kim
  • , Dageon Oh
  • , Yewon Kim
  • , Kyung Noh Yoon
  • , Garin Kim
  • , Young Hwa Lee
  • , Masoud Shirzad
  • , Gyeongmi Lee
  • , Jungeun Choi
  • , Jin Myoung Yoo
  • , Ganghak Lee
  • , Young Jick Kim
  • , Jungirl Seok
  • , Ji Youl Lee
  • , Sang Hyug Park
  • , Jung Woog Shin
  • , Seung Yun Nam
  • , Eun Jae Chung
  • Pukyong National University
  • University of Ulsan
  • Seoul National University
  • ATEMs
  • Inje University

Research output: Contribution to journalArticlepeer-review

1 Scopus citations

Abstract

Esophageal reconstruction faces critical challenges due to limitations in current techniques, including inadequate mechanical properties, poor tissue integration, and insufficient functional regeneration. This study presents a novel biofabrication strategy for developing artificial esophageal scaffolds by integrating electrospinning, embedded digital light processing (DLP), and extrusion-based bioprinting techniques. These scaffolds are composed of flexible electrospun polyurethane (PU) nanofibers wherein silk fibroin methacryloyl (Sil-MA) is embedded within the PU layer to enhance mechanical strength and hydrophilicity. Decellularized esophageal extracellular matrix (EdECM) is deposited onto the scaffolds to promote tissue regeneration. Comprehensive in vitro and in vivo evaluations reveal that the PU/Sil-MA/EdECM scaffolds exhibit superior mechanical properties, enhanced cell adhesion, and significant improvements in smooth muscle and epithelial tissue regeneration. Moreover, in a rat model with partial esophageal defects, the scaffolds demonstrate successful tissue integration, reduced postoperative complications, and restoration of esophageal function, including peristalsis and nerve regeneration. Altogether, this integrated biofabrication approach offers a promising solution for esophageal reconstruction by effectively addressing the current challenges and paving the way for future clinical applications in regenerative medicine.

Original languageEnglish
Article number102518
JournalMaterials Today Bio
Volume35
DOIs
StatePublished - Dec 2025

Bibliographical note

Publisher Copyright:
© 2025 The Authors

Keywords

  • Artificial esophagus
  • Electrospinning
  • Embedded DLP
  • Esophageal regeneration
  • Extrusion-based bioprinting

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