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

NFκB inhibition to lift the mechano-competence of mesenchymal stromal cell-derived neocartilage toward articular chondrocyte levels.

NFκB阻害による間葉系間質細胞由来新生軟骨のメカノコンピテンス向上:関節軟骨細胞レベルへ (機械翻訳の邦題)

Stem cell research & therapy2022Lückgen J, Raqué E, Reiner T, et al.
研究デザインその他の原著論文
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研究デザイン
その他の原著論文
対象
ヒト
出版年
2022
出典
doi.org
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有効な記録
状態確認日
2026/08/17
収集日
2026/08/04
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自動処理
記録状態
公開

日本語要約(機械生成)

間葉系間質細胞(MSC)由来軟骨細胞は、in vitroで適切に分化しても、生理的動的荷重に対するメカノコンピテンスが関節軟骨細胞(AC)と異なるかを検討した。MSCとACを最長35日間分化培養し、新生軟骨に動的荷重を負荷して、メカノ感受性遺伝子、細胞外マトリックス(ECM)合成、一酸化窒素(NO)、プロスタグランジンE2(PGE2)産生を比較した。両群でプロテオグリカン含量や硬さは同等で、荷重による遺伝子発現やERKリン酸化、NO、PGE2産生も同様に上昇した。しかし、MSC由来軟骨では荷重によりECM合成が有意に低下し、COX2とBMP2の基礎発現が高く、PGE2産生が100倍以上高く、SOX9刺激が弱かった。NFκB活性化は荷重の負の効果を模倣し、NFκB阻害はECM合成の低下を回復させた。MSC由来軟骨はAC様のメカノコンピテンスを獲得しておらず、NFκBの抑制がその改善に重要であることが示された。

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抄録

Background: Fully functional regeneration of skeletal defects by multipotent progenitor cells requires that differentiating cells gain the specific mechano-competence needed in the target tissue. Using cartilage neogenesis as an example, we asked whether proper phenotypic differentiation of mesenchymal stromal cells (MSC) into chondrocytes in vitro will install the adequate biological mechano-competence of native articular chondrocytes (AC).Methods: The mechano-competence of human MSC- and AC-derived neocartilage was compared during differentiation for up to 35 days. The neocartilage layer was subjected to physiologic dynamic loading in a custom-designed bioreactor and assayed for mechano-sensitive gene and pathway activation, extracellular matrix (ECM) synthesis by radiolabel incorporation, nitric oxide (NO) and prostaglandin E2 (PGE2) production. Input from different pathways was tested by application of agonists or antagonists.Results: MSC and AC formed neocartilage of similar proteoglycan content with a hardness close to native tissue. Mechano-stimulation on day 21 and 35 induced a similar upregulation of mechano-response genes, ERK phosphorylation, NO production and PGE2 release in both groups, indicating an overall similar transduction of external mechanical signals. However, while AC maintained or enhanced proteoglycan synthesis after loading dependent on tissue maturity, ECM synthesis was always significantly disturbed by loading in MSC-derived neocartilage. This was accompanied by significantly higher COX2 and BMP2 background expression, > 100-fold higher PGE2 production and a weaker SOX9 stimulation in response to loading in MSC-derived neocartilage. Anabolic BMP-pathway activity was not rate limiting for ECM synthesis after loading in both groups. However, NFκB activation mimicked the negative loading effects and enhanced PGE2 production while inhibition of catabolic NFκB signaling rescued the load-induced negative effects on ECM synthesis in MSC-derived neocartilage.Conclusions: MSC-derived chondrocytes showed a higher vulnerability to be disturbed by loading despite proper differentiation and did not acquire an AC-like mechano-competence to cope with the mechanical stress of a physiologic loading protocol. Managing catabolic NFκB influences was one important adaptation to install a mechano-resistance closer to AC-derived neocartilage. This new knowledge asks for a more functional adaptation of MSC chondrogenesis, novel pharmacologic co-treatment strategies for MSC-based clinical cartilage repair strategies and may aid a more rational design of physical rehabilitation therapy after AC- versus MSC-based surgical cartilage intervention.

MeSH

Cartilage, ArticularCells, CulturedChondrocytesHumansMesenchymal Stem CellsNF-kappa BProstaglandins EProteoglycans

DOI 10.1186/s13287-022-02843-x

PMID 35477424

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