Finn Snow, Cathal O'Connell, Aaron Elbourne, Magdalena Kita, Peiqi Yang, Richard Williams, Simon E Moulton, Elena Pirogova, Robert Michail Ivan Kapsa, Anita Quigley
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as volumetric muscle loss. These disorders impose a considerable economic burden and affect 
individuals' quality of life, highlighting the need for innovative treatments, such as tissue engineering, 
to address these challenges. Here, we examine how scaffold fibre orientation influences mechanical 
properties and cellular behaviour by utilising Melt Electrowriting (MEW) as a high-resolution 3D 
printing technique that combines aspects of electrospinning and melt based polymer deposition. In this 
work, we investigated the effects of fibre orientation in MEW scaffolds, and its effect on the scaffold 
mechanical properties as well as cell orientation and alignment. MEW scaffolds were mechanically 
characterized through uniaxial strain testing to determine critical parameters, including strain at failure 
(SAF), ultimate tensile strength (UTS), Young's modulus (E), fatigue rate, recovery time, and yield 
strain. These mechanical properties were analysed to define an optimal strain regime for transitioning 
from static to dynamic culture conditions under muscle-like cyclic loading, relevant to muscle's 
viscoelastic behaviour. In parallel, static cultures of human skeletal myotubes and normal human dermal 
fibroblasts were grown on MEW scaffolds, with varying architectures, to study the effects of fibre aspect 
ratio on cell alignment. Cell alignment was visualized using DAPI/phalloidin staining and quantified 
with the ImageJ directionality plugin, enabling a systematic comparison of scaffold designs. This 
approach evaluates the potential of supportive scaffold architectures to promote aligned cell growth, 
offering insights into designing effective scaffolds for tissue regeneration.
.</p>","PeriodicalId":8964,"journal":{"name":"Biofabrication","volume":" ","pages":""},"PeriodicalIF":8.2000,"publicationDate":"2025-05-15","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":null,"platform":"Semanticscholar","paperid":null,"PeriodicalName":"Biofabrication","FirstCategoryId":"5","ListUrlMain":"https://doi.org/10.1088/1758-5090/add960","RegionNum":2,"RegionCategory":"医学","ArticlePicture":[],"TitleCN":null,"AbstractTextCN":null,"PMCID":null,"EPubDate":"","PubModel":"","JCR":"Q1","JCRName":"ENGINEERING, BIOMEDICAL","Score":null,"Total":0}
引用次数: 0
Abstract
Advanced tissue engineering strategies are vital to address challenging musculoskeletal conditions, such
as volumetric muscle loss. These disorders impose a considerable economic burden and affect
individuals' quality of life, highlighting the need for innovative treatments, such as tissue engineering,
to address these challenges. Here, we examine how scaffold fibre orientation influences mechanical
properties and cellular behaviour by utilising Melt Electrowriting (MEW) as a high-resolution 3D
printing technique that combines aspects of electrospinning and melt based polymer deposition. In this
work, we investigated the effects of fibre orientation in MEW scaffolds, and its effect on the scaffold
mechanical properties as well as cell orientation and alignment. MEW scaffolds were mechanically
characterized through uniaxial strain testing to determine critical parameters, including strain at failure
(SAF), ultimate tensile strength (UTS), Young's modulus (E), fatigue rate, recovery time, and yield
strain. These mechanical properties were analysed to define an optimal strain regime for transitioning
from static to dynamic culture conditions under muscle-like cyclic loading, relevant to muscle's
viscoelastic behaviour. In parallel, static cultures of human skeletal myotubes and normal human dermal
fibroblasts were grown on MEW scaffolds, with varying architectures, to study the effects of fibre aspect
ratio on cell alignment. Cell alignment was visualized using DAPI/phalloidin staining and quantified
with the ImageJ directionality plugin, enabling a systematic comparison of scaffold designs. This
approach evaluates the potential of supportive scaffold architectures to promote aligned cell growth,
offering insights into designing effective scaffolds for tissue regeneration.
.
期刊介绍:
Biofabrication is dedicated to advancing cutting-edge research on the utilization of cells, proteins, biological materials, and biomaterials as fundamental components for the construction of biological systems and/or therapeutic products. Additionally, it proudly serves as the official journal of the International Society for Biofabrication (ISBF).