Evaluation of Strontium-Containing PCL-PDIPF Scaffolds for Bone Tissue Engineering: In Vitro and In Vivo Studies.
basic_science · Level V
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- Record sourced from PubMed, PMID 30560305.
- Also identified by DOI 10.1007/s10439-018-02183-z.
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Abstract
Bone tissue engineering (BTE) has the general objective of restoring and improving damaged bone. A very interesting strategy for BTE is to combine an adequate polymeric scaffold with an osteoinductive compound. Strontium is a divalent cation that can substitute calcium in hydroxyapatite and induce both anabolic and anti-catabolic effects in bone. On the other hand, systemic increases in Sr<sup>2+</sup> levels can provoke adverse cardiovascular effects. In the present study we have developed a compatibilized blend of poly-ε-caprolactone (PCL) and polydiisopropyl fumarate (PDIPF) enriched with 1% or 5% Sr<sup>2+</sup> and evaluated the applicability of these biomaterials for BTE, both in vitro and in vivo. In vitro, whereas Blend + 5% Sr<sup>2+</sup> was pro-inflammatory and anti-osteogenic, Blend + 1% Sr<sup>2+</sup> released very low quantities of the cation; was not cytotoxic for cultured macrophages; and showed improved osteocompatibility when used as a substratum for primary cultures of bone marrow stromal cells. In vivo, implants with Blend + 1% Sr<sup>2+</sup> significantly increased bone tissue regeneration and improved fibrous bridging (vs. Blend alone), while neither inducing a local inflammatory response nor increased serum levels of Sr<sup>2+</sup>. These results indicate that our compatibilized blend of PCL-PDIPF enriched with 1% Sr<sup>2+</sup> could be useful for BTE.
Medical subject headings
- Fumarates
- Polyesters
- Polymers
- Strontium
- Tissue Engineering
- Tissue Scaffolds