Covalent Grafting of Functionalized MEW Fibers to Silk Fibroin Hydrogels to Obtain Reinforced Tissue Engineered Constructs.
機能化MEW繊維のシルクフィブロインゲルへの共有結合グラフトによる強化組織工学コンストラクトの作製 (機械翻訳の邦題)
記録の確認項目
- 研究デザイン
- その他の原著論文
- 対象
- ヒト
- 出版年
- 2024
- 出典
- doi.org
- 抄録の表示
- 表示あり
- 出版状態
- 有効な記録
- 状態確認日
- 2026/08/17
- 収集日
- 2026/08/04
- 鮮度
- 確認期限内
- 確認段階
- 自動処理
- 記録状態
- 公開
日本語要約(機械生成)
ハイドロゲルは細胞封入に適するが、機械的強度が不足するため補強構造との複合化が必要である。本研究では、メルトエレクトロライティングで作製した熱可塑性ポリマー繊維(pHMGCL:PCL)と、メタクリル化したpMHMGCL:PCL繊維を、シルクフィブロインメタクリロイル(silkMA)ハイドロゲルに共有結合でグラフトし、界面相互作用が力学特性と軟骨特異的マトリックス産生に及ぼす影響を調べた。共有結合により弾性応答が得られ、圧縮抵抗が約3倍、引張抵抗が40〜55%向上した。両繊維で細胞生存率と代謝活性は同等であり、28日間の培養で軟骨前駆細胞が軟骨様マトリックスを形成した。界面での共有結合により力学特性を調整可能なハイブリッド軟骨コンストラクトの作製が可能である。
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抄録
Hydrogels are ideal materials to encapsulate cells, making them suitable for applications in tissue engineering and regenerative medicine. However, they generally do not possess adequate mechanical strength to functionally replace human tissues, and therefore they often need to be combined with reinforcing structures. While the interaction at the interface between the hydrogel and reinforcing structure is imperative for mechanical function and subsequent biological performance, this interaction is often overlooked. Melt electrowriting enables the production of reinforcing microscale fibers that can be effectively integrated with hydrogels. Yet, studies on the interaction between these micrometer scale fibers and hydrogels are limited. Here, we explored the influence of covalent interfacial interactions between reinforcing structures and silk fibroin methacryloyl hydrogels (silkMA) on the mechanical properties of the construct and cartilage-specific matrix production in vitro. For this, melt electrowritten fibers of a thermoplastic polymer blend (poly(hydroxymethylglycolide-co-ε-caprolactone):poly(ε-caprolactone) (pHMGCL:PCL)) were compared to those of the respective methacrylated polymer blend pMHMGCL:PCL as reinforcing structures. Photopolymerization of the methacrylate groups, present in both silkMA and pMHMGCL, was used to generate hybrid materials. Covalent bonding between the pMHMGCL:PCL blend and silkMA hydrogels resulted in an elastic response to the application of torque. In addition, an improved resistance was observed to compression (∼3-fold) and traction (∼40-55%) by the scaffolds with covalent links at the interface compared to those without these interactions. Biologically, both types of scaffolds (pHMGCL:PCL and pMHMGCL:PCL) showed similar levels of viability and metabolic activity, also compared to frequently used PCL. Moreover, articular cartilage progenitor cells embedded within the reinforced silkMA hydrogel were able to form a cartilage-like matrix after 28 days of in vitro culture. This study shows that hybrid cartilage constructs can be engineered with tunable mechanical properties by grafting silkMA hydrogels covalently to pMHMGCL:PCL blend microfibers at the interface.
MeSH
DOI 10.1021/acs.biomac.3c01147
PMID 38323427
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