4.7 Article

The Growth of 3T3 Fibroblasts on PHB, PLA and PHB/PLA Blend Films at Different Stages of Their Biodegradation In Vitro

期刊

POLYMERS
卷 13, 期 1, 页码 -

出版社

MDPI
DOI: 10.3390/polym13010108

关键词

poly(3-hydroxybutyrate); poly-L-lactide; polymer blend; biodegradation; hydrolysis; pancreatic lipase; nanoparticles

资金

  1. Russian Science Foundation [20-64-47008]
  2. Russian Foundation for Basic Research [20-54-00021]
  3. Ministry of Science and Higher Education of the Russian Federation
  4. Russian Science Foundation [20-64-47008] Funding Source: Russian Science Foundation

向作者/读者索取更多资源

Research has shown that enzymatic degradation significantly accelerates the degradation rate of polymers, while seeding 3T3 cells only accelerates PLA molecular weight loss. The immiscible nature of PHB/PLA blend leads to slower and more uniform enzymatic degradation compared to pure polymers PHB and PLA.
Over the past century there was a significant development and extensive application of biodegradable and biocompatible polymers for their biomedical applications. This research investigates the dynamic change in properties of biodegradable polymers: poly(3-hydroxybutyrate (PHB), poly-l-lactide (PLA), and their 50:50 blend (PHB/PLA)) during their hydrolytic non-enzymatic (in phosphate buffered saline (PBS), at pH = 7.4, 37 degrees C) and enzymatic degradation (in PBS supplemented with 0.25 mg/mL pancreatic lipase). 3T3 fibroblast proliferation on the polymer films experiencing different degradation durations was also studied. Enzymatic degradation significantly accelerated the degradation rate of polymers compared to non-enzymatic hydrolytic degradation, whereas the seeding of 3T3 cells on the polymer films accelerated only the PLA molecular weight loss. Surprisingly, the immiscible nature of PHB/PLA blend (showed by differential scanning calorimetry) led to a slower and more uniform enzymatic degradation in comparison with pure polymers, PHB and PLA, which displayed a two-stage degradation process. PHB/PLA blend also displayed relatively stable cell viability on films upon exposure to degradation of different durations, which was associated with the uneven distribution of cells on polymer films. Thus, the obtained data are of great benefit for designing biodegradable scaffolds based on polymer blends for tissue engineering.

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