Poly(3-hydroxybutyrate)/hydroxyapatite/alginate scaffolds seeded with mesenchymal stem cells enhance the regeneration of critical-sized bone defect.
Alexander A Muraev
1, 2
,
Irina Zharkova
3
,
V. A. Zhuikov
4
,
Dolgor D Khaydapova
5
,
Dariana V Chesnokova
3
,
Ksenia A Menshikh
3
,
Tatiana K Makhina
4
,
Garina Bonartseva
4
,
Teymur F Asfarov
6
,
Ivan A Stamboliev
6
,
Yulia V Gazhva
7
,
Valentina M Ryabova
7
,
Lubomir H Zlatev
6
,
Sergey Ivanov
1, 2
,
Konstantin V. Shaitan
3
,
Anton Bonartsev
3, 4
Publication type: Journal Article
Publication date: 2020-09-01
SJR: —
CiteScore: —
Impact factor: —
ISSN: 09284931, 18730191
PubMed ID:
32994018
Bioengineering
Biomaterials
Mechanics of Materials
Abstract
A critical-sized calvarial defect in rats is employed to reveal the osteoinductive properties of biomaterials. In this study, we investigate the osteogenic efficiency of hybrid scaffolds based on composites of a biodegradable and biocompatible polymer, poly(3-hydroxybutyrate) (PHB) with hydroxyapatite (HA) filled with alginate (ALG) hydrogel containing mesenchymal stem cells (MSCs) on the regeneration of the critical-sized radial defect of the parietal bone in rats. The scaffolds based on PHB and PHB/HA with desired shapes were prepared by two-stage salt leaching technique using a mold obtained by three-dimensional printing. To obtain PHB/HA/ALG/MSC scaffolds seeded with MSCs, the scaffolds were filled with ALG hydrogel containing MSCs; acellular PHB/ALG and PHB/ALG filled with empty ALG hydrogel were prepared for comparison. The produced scaffolds have high porosity and irregular interconnected pore structure. PHB/HA scaffolds supported MSC growth and induced cell osteogenic differentiation in a regular medium in vitro that was manifested by an increase in ALP activity and expression of the CD45 phenotype marker. The data of computed tomography and histological studies showed 94% and 92%, respectively, regeneration of critical-sized calvarial bone defect in vivo at 28th day after implantation of MSC-seeded PHB/HA/ALG/MSC scaffolds with 3.6 times higher formation of the main amount of bone tissue at 22–28 days in comparison with acellular PHB/HA/ALG scaffolds that was shown at the first time by fluorescent microscopy using the original technique of intraperitoneal administration of fluorescent dyes to living postoperative rats. The obtained in vivo results can be associated with the MSC-friendly microstructure and in vitro osteogenic properties of PHB/HA base-scaffolds. Thus, the obtained data demonstrate the potential of MSCs encapsulated in the bioactive biopolymer/mineral/hydrogel scaffold to improve the bone regeneration process in critical-sized bone defects.
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68
Total citations:
68
Citations from 2025:
14
(20.59%)
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GOST
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Volkov A. V. et al. Poly(3-hydroxybutyrate)/hydroxyapatite/alginate scaffolds seeded with mesenchymal stem cells enhance the regeneration of critical-sized bone defect. // Materials Science and Engineering C. 2020. Vol. 114. p. 110991.
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Muraev A. A., Zharkova I., Zhuikov V. A., Khaydapova D. D., Chesnokova D. V., Menshikh K. A., Makhina T. K., Bonartseva G., Asfarov T. F., Stamboliev I. A., Gazhva Y. V., Ryabova V. M., Zlatev L. H., Ivanov S., Shaitan K. V., Bonartsev A. Poly(3-hydroxybutyrate)/hydroxyapatite/alginate scaffolds seeded with mesenchymal stem cells enhance the regeneration of critical-sized bone defect. // Materials Science and Engineering C. 2020. Vol. 114. p. 110991.
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TY - JOUR
DO - 10.1016/j.msec.2020.110991
UR - https://doi.org/10.1016/j.msec.2020.110991
TI - Poly(3-hydroxybutyrate)/hydroxyapatite/alginate scaffolds seeded with mesenchymal stem cells enhance the regeneration of critical-sized bone defect.
T2 - Materials Science and Engineering C
AU - Muraev, Alexander A
AU - Zharkova, Irina
AU - Zhuikov, V. A.
AU - Khaydapova, Dolgor D
AU - Chesnokova, Dariana V
AU - Menshikh, Ksenia A
AU - Makhina, Tatiana K
AU - Bonartseva, Garina
AU - Asfarov, Teymur F
AU - Stamboliev, Ivan A
AU - Gazhva, Yulia V
AU - Ryabova, Valentina M
AU - Zlatev, Lubomir H
AU - Ivanov, Sergey
AU - Shaitan, Konstantin V.
AU - Bonartsev, Anton
PY - 2020
DA - 2020/09/01
PB - Elsevier
SP - 110991
VL - 114
PMID - 32994018
SN - 0928-4931
SN - 1873-0191
ER -
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@article{2020_Volkov,
author = {Alexander A Muraev and Irina Zharkova and V. A. Zhuikov and Dolgor D Khaydapova and Dariana V Chesnokova and Ksenia A Menshikh and Tatiana K Makhina and Garina Bonartseva and Teymur F Asfarov and Ivan A Stamboliev and Yulia V Gazhva and Valentina M Ryabova and Lubomir H Zlatev and Sergey Ivanov and Konstantin V. Shaitan and Anton Bonartsev},
title = {Poly(3-hydroxybutyrate)/hydroxyapatite/alginate scaffolds seeded with mesenchymal stem cells enhance the regeneration of critical-sized bone defect.},
journal = {Materials Science and Engineering C},
year = {2020},
volume = {114},
publisher = {Elsevier},
month = {sep},
url = {https://doi.org/10.1016/j.msec.2020.110991},
pages = {110991},
doi = {10.1016/j.msec.2020.110991}
}
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