Multifunctional Scaffolds with Improved Antimicrobial Properties and Osteogenicity Based on Piezoelectric Electrospun Fibers Decorated with Bioactive Composite Microcapsules.
Alexander S. Timin
1, 2
,
Albert R. Muslimov
1, 3, 4
,
Oleksii O Peltek
3
,
Timofey E Karpov
3
,
Igor S Sergeev
3
,
Anna I Dotsenko
1
,
Nikita D Yolshin
4
,
Bärbel Krause
5
,
Tilo Baumbach
5, 6
,
Maria A Surmeneva
2
,
Gleb B. Sukhorukov
2, 3, 7
,
Publication type: Journal Article
Publication date: 2018-09-19
scimago Q1
wos Q1
SJR: 1.921
CiteScore: 14.5
Impact factor: 8.2
ISSN: 19448244, 19448252
PubMed ID:
30230807
General Materials Science
Abstract
The incorporation of bioactive compounds onto polymer fibrous scaffolds with further control of drug release kinetics is essential to improve the functionality of scaffolds for personalized drug therapy and regenerative medicine. In this study, polymer and hybrid microcapsules were prepared and used as drug carriers, which are further deposited onto polymer microfiber scaffolds [polycaprolactone (PCL), poly(3-hydroxybutyrate) (PHB), and PHB doping with the conductive polyaniline (PANi) of 2 wt % (PHB-PANi)]. The number of immobilized microcapsules decreased with increase in their ζ-potential due to electrostatic repulsion with the negatively charged fiber surface, depending on the polymer used for the scaffold's fabrication. Additionally, the immobilization of the capsules in dynamic mechanical conditions at a frequency of 10 Hz resulted in an increase in the number of the capsules on the fibers with increase in the scaffold piezoelectric response in the order PCL < PHB < PHB-PANi, depending on the chemical composition of the capsules. The immobilization of microcapsules loaded with different bioactive molecules onto the scaffold surface enabled multimodal triggering by physical (ultrasound, laser radiation) and biological (enzymatic treatment) stimuli, providing controllable release of the cargo from scaffolds. Importantly, the microcapsules immobilized onto the surface of the scaffolds did not influence the cell growth, viability, and cell proliferation on the scaffolds. Moreover, the attachment of human mesenchymal stem cells (hMSCs) on the scaffolds revealed that the PHB and PHB-PANi scaffolds promoted adhesion of hMSCs compared to that of the PCL scaffolds. Two bioactive compounds, antibiotic ceftriaxone sodium (CS) and osteogenic factor dexamethasone (DEXA), were chosen to load the microcapsules and demonstrate the antimicrobial properties and osteogenesis of the scaffolds. The modified scaffolds had prolonged release of CS or DEXA, which provided an improved antimicrobial effect, as well as enhanced osteogenic differentiation and mineralization of the scaffolds modified with capsules compared to that of individual scaffolds soaked in CS solution or incubated in an osteogenic medium. Thus, the immobilization of microcapsules provides a simple, convenient way to incorporate bioactive compounds onto polymer scaffolds, which makes these multimodal materials suitable for personalized drug therapy and bone tissue engineering.
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Total citations:
96
Citations from 2024:
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GOST
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Timin A. S. et al. Multifunctional Scaffolds with Improved Antimicrobial Properties and Osteogenicity Based on Piezoelectric Electrospun Fibers Decorated with Bioactive Composite Microcapsules. // ACS applied materials & interfaces. 2018. Vol. 10. No. 41. pp. 34849-34868.
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Timin A. S., Muslimov A. R., Peltek O. O., Karpov T. E., Sergeev I. S., Dotsenko A. I., Goncharenko A. A., Yolshin N. D., Krause B., Baumbach T., Surmeneva M. A., Chernozem R. V., Sukhorukov G. B., Surmenev R. A. Multifunctional Scaffolds with Improved Antimicrobial Properties and Osteogenicity Based on Piezoelectric Electrospun Fibers Decorated with Bioactive Composite Microcapsules. // ACS applied materials & interfaces. 2018. Vol. 10. No. 41. pp. 34849-34868.
Cite this
RIS
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TY - JOUR
DO - 10.1021/acsami.8b09810
UR - https://doi.org/10.1021/acsami.8b09810
TI - Multifunctional Scaffolds with Improved Antimicrobial Properties and Osteogenicity Based on Piezoelectric Electrospun Fibers Decorated with Bioactive Composite Microcapsules.
T2 - ACS applied materials & interfaces
AU - Timin, Alexander S.
AU - Muslimov, Albert R.
AU - Peltek, Oleksii O
AU - Karpov, Timofey E
AU - Sergeev, Igor S
AU - Dotsenko, Anna I
AU - Goncharenko, Alexander A
AU - Yolshin, Nikita D
AU - Krause, Bärbel
AU - Baumbach, Tilo
AU - Surmeneva, Maria A
AU - Chernozem, Roman V
AU - Sukhorukov, Gleb B.
AU - Surmenev, Roman A
PY - 2018
DA - 2018/09/19
PB - American Chemical Society (ACS)
SP - 34849-34868
IS - 41
VL - 10
PMID - 30230807
SN - 1944-8244
SN - 1944-8252
ER -
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BibTex (up to 50 authors)
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@article{2018_Timin,
author = {Alexander S. Timin and Albert R. Muslimov and Oleksii O Peltek and Timofey E Karpov and Igor S Sergeev and Anna I Dotsenko and Alexander A Goncharenko and Nikita D Yolshin and Bärbel Krause and Tilo Baumbach and Maria A Surmeneva and Roman V Chernozem and Gleb B. Sukhorukov and Roman A Surmenev},
title = {Multifunctional Scaffolds with Improved Antimicrobial Properties and Osteogenicity Based on Piezoelectric Electrospun Fibers Decorated with Bioactive Composite Microcapsules.},
journal = {ACS applied materials & interfaces},
year = {2018},
volume = {10},
publisher = {American Chemical Society (ACS)},
month = {sep},
url = {https://doi.org/10.1021/acsami.8b09810},
number = {41},
pages = {34849--34868},
doi = {10.1021/acsami.8b09810}
}
Cite this
MLA
Copy
Timin, Alexander S., et al. “Multifunctional Scaffolds with Improved Antimicrobial Properties and Osteogenicity Based on Piezoelectric Electrospun Fibers Decorated with Bioactive Composite Microcapsules..” ACS applied materials & interfaces, vol. 10, no. 41, Sep. 2018, pp. 34849-34868. https://doi.org/10.1021/acsami.8b09810.