羟基烷酸
降级(电信)
材料科学
热稳定性
脚手架
单体
化学工程
聚酯纤维
高分子化学
复合材料
聚合物
生物医学工程
生物
电信
工程类
医学
遗传学
细菌
计算机科学
作者
Magdalena Z. Gładysz,Didi Ubels,Marcus Koch,Armin Amirsadeghi,Frederique Alleblas,Sander van Vliet,Marleen Kamperman,Jeroen Siebring,Anika Nagelkerke,Małgorzata K. Włodarczyk‐Biegun
标识
DOI:10.1002/adhm.202401504
摘要
Melt electrowriting (MEW) enables precise scaffold fabrication for biomedical applications. With a limited number of processable materials with short and tunable degradation times, polyhydroxyalkanoates (PHAs) present an interesting option. Here, poly(3-hydroxybutyrate-co-3-hydroxyvalerate) (PHBV) and a blend of PHBV and poly(3-hydroxybutyrate-co-4-hydroxybutyrate) (PHBV+P34HB) are successfully melt electrowritten into scaffolds with various architectures. PHBV+P34HB exhibits greater thermal stability, making it a superior printing material compared to PHBV in MEW. The PHBV+P34HB scaffolds subjected to enzymatic degradation show tunable degradation times, governed by enzyme dilution, incubation time, and scaffold surface area. PHBV+P34HB scaffolds seeded with human dermal fibroblasts (HDFs), demonstrate enhanced cell adherence, proliferation, and spreading. The HDFs, when exposed to the enzyme solutions and enzymatic degradation residues, show good viability and proliferation rates. Additionally, HDFs grown on enzymatically pre-incubated scaffolds do not show any difference in behavior compared those grown on control scaffolds. It is concluded that PHAs, as biobased materials with enzymatically tunable degradability rates, are an important addition to the already limited set of materials available for MEW technology.
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