Assembly of Interfacial Polyelectrolyte Complexation Fibers with Mineralization Gradient for Physiologically‐Inspired Ligament Regeneration

Author:

Liu Yu‐Chung1,Chen Shih‐Heng2,Kuan Chen‐Hsiang345,Chen Shih‐Hsien2,Huang Wei‐Yuan1,Chen Hao‐Xuan1,Wang Tzu‐Wei1ORCID

Affiliation:

1. Department of Materials Science and Engineering National Tsing Hua University Hsinchu 30044 Taiwan

2. Division of Trauma Plastic Surgery Department of Plastic & Reconstructive Surgery Chang Gung Memorial Hospital Linkou Taoyuan City 33305 Taiwan

3. Division of Plastic Surgery Department of Surgery National Taiwan University Hospital Taipei 100229 Taiwan

4. Graduate Institute of Clinical Medicine College of Medicine National Taiwan University Taipei 100233 Taiwan

5. Research Center for Developmental Biology and Regenerative Medicine National Taiwan University Taipei 106 Taiwan

Abstract

AbstractCurrent synthetic grafts for ligament rupture repair often fail to integrate well with the surrounding biological tissue, leading to complications such as graft wear, fatigue, and subsequent re‐rupture. To address this medical challenge, this study aims at advancing the development of a biological ligament through the integration of physiologically‐inspired principles and tissue engineering strategies. In this study, interfacial polyelectrolyte complexation (IPC) spinning technique, along with a custom‐designed collection system, to fabricate a hierarchical scaffold mimicking native ligament structure, is utilized. To emulate the bone‐ligament interface and alleviate stress concentration, a hydroxyapatite (HAp) mineral gradient is strategically introduced near both ends of the scaffold to enhance interface integration and diminish the risk of avulsion rupture. Biomimetic viscoelasticity is successfully displayed to provide similar mechanical support to native ligamentous tissue under physiological conditions. By introducing the connective tissue growth factor (CTGF) and conducting mesenchymal stem cells transplantation, the regenerative potential of the synthetic ligament is significantly amplified. This pioneering study offers a multifaceted solution combining biomimetic materials, regenerative therapies, and advanced techniques to potentially transform ligament rupture treatment.

Funder

National Science and Technology Council

Publisher

Wiley

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