ZERO WORLD RESEARCHアミノ酸・有機酸の学術文献データベース

Fiber reinforced hydrated networks recapitulate the poroelastic mechanics of articular cartilage.

繊維強化水和ネットワークは関節軟骨の多孔弾性力学を再現する (機械翻訳の邦題)

Acta biomaterialia2023Moore AC, Hennessy MG, Nogueira LP, et al.
研究デザインその他の原著論文
対象ヒト

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
2023
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)

関節軟骨の多孔弾性は機能に重要であるが、生理的レベルに近い多孔弾性材料の設計はほとんど試みられていない。本研究では、ポリカプロラクトンとゼラチンを用いた繊維強化水和ネットワーク(FiHy)を電界流体堆積法により作製し、流体負荷率を用いて多孔弾性を定量した。その結果、平均ピーク流体負荷率は68%に達し、混合物理論と一致し、ヒト間葉系幹細胞に対する細胞適合性も示した。この材料は等方線形多孔弾性理論を超える初の工学的材料であり、軟骨インプラント設計や軟骨細胞のメカノバイオロジー研究の基盤となる。

この要約は公開抄録のみを根拠にAIが機械的に生成したものです。正確な内容は原文を確認してください。

抄録

The role of poroelasticity on the functional performance of articular cartilage has been established in the scientific literature since the 1960s. Despite the extensive knowledge on this topic there remain few attempts to design for poroelasticity and to our knowledge no demonstration of an engineered poroelastic material that approaches the physiological performance. In this paper, we report on the development of an engineered material that begins to approach physiological poroelasticity. We quantify poroelasticity using the fluid load fraction, apply mixture theory to model the material system, and determine cytocompatibility using primary human mesenchymal stem cells. The design approach is based on a fiber reinforced hydrated network and uses routine fabrication methods (electrohydrodynamic deposition) and materials (poly[ɛ-caprolactone] and gelatin) to develop the engineered poroelastic material. This composite material achieved a mean peak fluid load fraction of 68%, displayed consistency with mixture theory, and demonstrated cytocompatibility. This work creates a foundation for designing poroelastic cartilage implants and developing scaffold systems to study chondrocyte mechanobiology and tissue engineering. STATEMENT OF SIGNIFICANCE: Poroelasticity drives the functional mechanics of articular cartilage (load bearing and lubrication). In this work we develop the design rationale and approach to produce a poroelastic material, known as a fiber reinforced hydrated network (FiHy™), that begins to approach the native performance of articular cartilage. This is the first engineered material system capable of exceeding isotropic linear poroelastic theory. The framework developed here enables fundamental studies of poroelasticity and the development of translational materials for cartilage repair.

MeSH

Cartilage, ArticularChondrocytesHumansTissue Engineering

DOI 10.1016/j.actbio.2023.06.015

PMID 37331613

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