動物成分を全く含まない、植物繊維のみでヒト幹細胞の制御培養に成功〜免疫拒絶や感染リスクが少ない再生医療用新素材の開発を目指して~

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2025-07-14 九州大学

九州大学の北岡卓也教授らの研究グループは、動物成分を一切使わず、樹木由来のセルロースナノファイバー(CNF)に硫酸基を導入することで、ヒト間葉系幹細胞(MSC)の接着・増殖を制御可能な新素材を開発しました。硫酸基量に応じて幹細胞の挙動が鋭敏に変化し、細胞接着因子や培地の安定化にも寄与。従来の動物由来コラーゲンと同等の性能を植物成分のみで実現しました。このゼノフリー素材は、再生医療や創薬支援分野における安全で持続可能な細胞培養基材として期待されます。

動物成分を全く含まない、植物繊維のみでヒト幹細胞の制御培養に成功〜免疫拒絶や感染リスクが少ない再生医療用新素材の開発を目指して~
樹木由来セルロースナノファイバーの表面を硫酸化することで、動物由来コラーゲンに匹敵する細胞接着・増殖性を発現しています。

<関連情報>

硫酸基含有率の異なる硫酸化セルロースナノファイバー足場上での初代ヒト間葉系幹細胞の接着および増殖挙動 Adhesion and proliferation behavior of primary human mesenchymal stem cells on sulfated cellulose nanofiber scaffolds with different sulfate contents

Ritomo Kai, Mayumi Hatakeyama, Shinichiro Iwamoto, Takuya Kitaoka
Carbohydrate Polymer Technologies and Applications  Available online: 4 July 2025
DOI:https://doi.org/10.1016/j.carpta.2025.100930

Abstract

Primary human mesenchymal stem cells (hMSCs) have attracted much attention in regenerative medicine, where stem cell culture currently requires xeno-free (xenogeneic component-free) systems for both media and scaffolds. Herein, we propose plant-derived, sulfated cellulose nanofibers (S-CNFs) with different sulfate contents as a novel xeno-free scaffold. Primary and immortalized hMSCs were cultured on S-CNF scaffolds with different sulfate contents (0–1.69 mmol g–1) under serum-free conditions. The cell proliferation behavior was sensitive to the sulfate content, although the original CNFs did not contribute to cell adhesion. In particular, S-CNF scaffolds with sulfate contents of 0.31–0.47 mmol g–1 demonstrated more efficient cell growth than a standard polystyrene substrate and comparable cell growth to animal-derived type I collagen. The engineered S-CNF scaffolds with the optimal sulfate content promoted the initial cell adhesion and proliferation of primary hMSCs by facilitating the formation of focal adhesions. In addition, these scaffolds improved the stability and efficacy of growth factors in serum-free environments, potentially contributing to their functional preservation in xeno-free culture systems. Our strategy of using S-CNFs as a new medical modality provides new insights into the development of xeno-free culture systems in cell culture engineering.

生物環境工学
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