| Literature DB >> 34029004 |
Johnson V John1, Alec McCarthy1, Hongjun Wang1, Zeyu Luo2, Hongbin Li2, Zixuan Wang2, Feng Cheng2, Yu Shrike Zhang2, Jingwei Xie1,3.
Abstract
A new approach is described for fabricating 3D poly(ε-caprolactone) (PCL)/gelatin (1:1) nanofiber aerogels with patterned macrochannels and anisotropic microchannels by freeze-casting with 3D-printed sacrificial templates. Single layer or multiple layers of macrochannels are formed through an inverse replica of 3D-printed templates. Aligned microchannels formed by partially anisotropic freezing act as interconnected pores between templated macrochannels. The resulting macro-/microchannels within nanofiber aerogels significantly increase preosteoblast infiltration in vitro. The conjugation of vascular endothelial growth factor (VEGF)-mimicking QK peptide to PCL/gelatin/gelatin methacryloyl (1:0.5:0.5) nanofiber aerogels with patterned macrochannels promotes the formation of a microvascular network of seeded human microvascular endothelial cells. Moreover, nanofiber aerogels with patterned macrochannels and anisotropic microchannels show significantly enhanced cellular infiltration rates and host tissue integration compared to aerogels without macrochannels following subcutaneous implantation in rats. Taken together, this novel class of nanofiber aerogels holds great potential in biomedical applications including tissue repair and regeneration, wound healing, and 3D tissue/disease modeling.Entities:
Keywords: 3D-printed sacrificial templates; anisotropic microchannels; cellular infiltration; nanofiber aerogels; patterned macrochannels
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Year: 2021 PMID: 34029004 PMCID: PMC8222158 DOI: 10.1002/adhm.202100238
Source DB: PubMed Journal: Adv Healthc Mater ISSN: 2192-2640 Impact factor: 11.092