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

Enhanced articular cartilage by human mesenchymal stem cells in enzymatically mediated transiently RGDS-functionalized collagen-mimetic hydrogels.

酵素的に媒介される一過性RGDS機能化コラーゲン模倣ヒドロゲルにおけるヒト間葉系幹細胞による関節軟骨の増強 (機械翻訳の邦題)

Acta biomaterialia2017Parmar PA, St-Pierre JP, Chow LW, 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
2017
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)

関節軟骨の微小環境を模倣するため、組換え細菌コラーゲンScl2を用い、グリコサミノグリカン結合ペプチドを導入した後、MMP7切断可能または非切断可能な架橋剤でヒドロゲルを形成した。架橋剤にRGDSペプチドを結合させ、切断可能なヒドロゲルからRGDSが放出される系と放出されない系を比較した。その結果、RGDS放出系では、ヒト間葉系幹細胞の軟骨分化において、II型コラーゲン、アグリカン、SOX9の発現が非分解性ヒドロゲルと比較して有意に増加し、細胞外マトリックス蓄積も増大した。また、低濃度RGDS含有ヒドロゲルではI型およびX型コラーゲン遺伝子発現が低下し、関節軟骨表現型の促進に有利であった。これらのヒドロゲルは、他の組織工学への応用可能性も示す。

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

Recapitulation of the articular cartilage microenvironment for regenerative medicine applications faces significant challenges due to the complex and dynamic biochemical and biomechanical nature of native tissue. Towards the goal of biomaterial designs that enable the temporal presentation of bioactive sequences, recombinant bacterial collagens such as Streptococcal collagen-like 2 (Scl2) proteins can be employed to incorporate multiple specific bioactive and biodegradable peptide motifs into a single construct. Here, we first modified the backbone of Scl2 with glycosaminoglycan-binding peptides and cross-linked the modified Scl2 into hydrogels via matrix metalloproteinase 7 (MMP7)-cleavable or non-cleavable scrambled peptides. The cross-linkers were further functionalized with a tethered RGDS peptide creating a system whereby the release from an MMP7-cleavable hydrogel could be compared to a system where release is not possible. The release of the RGDS peptide from the degradable hydrogels led to significantly enhanced expression of collagen type II (3.9-fold increase), aggrecan (7.6-fold increase), and SOX9 (5.2-fold increase) by human mesenchymal stem cells (hMSCs) undergoing chondrogenesis, as well as greater extracellular matrix accumulation compared to non-degradable hydrogels (collagen type II; 3.2-fold increase, aggrecan; 4-fold increase, SOX9; 2.8-fold increase). Hydrogels containing a low concentration of the RGDS peptide displayed significantly decreased collagen type I and X gene expression profiles, suggesting a major advantage over either hydrogels functionalized with a higher RGDS peptide concentration, or non-degradable hydrogels, in promoting an articular cartilage phenotype. These highly versatile Scl2 hydrogels can be further manipulated to improve specific elements of the chondrogenic response by hMSCs, through the introduction of additional bioactive and/or biodegradable motifs. As such, these hydrogels have the possibility to be used for other applications in tissue engineering.Statement of significance: Recapitulating aspects of the native tissue biochemical microenvironment faces significant challenges in regenerative medicine and tissue engineering due to the complex and dynamic nature of the tissue. The ability to take advantage of, mimic, and modulate cell-mediated processes within novel naturally-derived hydrogels is of great interest in the field of biomaterials to generate constructs that more closely resemble the biochemical microenvironment and functions of native biological tissues such as articular cartilage. Towards this goal, the temporal presentation of bioactive sequences such as RGDS on the chondrogenic differentiation of human mesenchymal stem cells is considered important as it has been shown to influence the chondrogenic phenotype. Here, a novel and versatile platform to recreate a high degree of biological complexity is proposed, which could also be applicable to other tissue engineering and regenerative medicine applications.

MeSH

Bacterial ProteinsBiomimetic MaterialsCartilage, ArticularCell SurvivalCells, CulturedChondrogenesisCollagenCompressive StrengthDNAExtracellular MatrixGene Expression RegulationGlycosaminoglycansHumansHydrogel, Polyethylene Glycol DimethacrylateKineticsMatrix Metalloproteinase 7Mesenchymal Stem CellsOligopeptides

DOI 10.1016/j.actbio.2017.01.028

PMID 28087486

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