遺伝子スイッチによる3Dプリント骨組織の血管形成制御 (Genetic ‘Switches’ Could Program 3D-Printed Bone Tissue for Blood Vessel Growth)

ad

2026-08-18 ペンシルベニア州立大学(Penn State)

米国ペンシルベニア州立大学(Penn State)の研究チームは、遺伝子スイッチを利用して3Dプリントした骨組織内で血管形成を制御する新技術を開発した。組織工学では、移植後の組織生着や機能維持のために血管網の形成が重要課題となっている。本研究では、細胞内に組み込んだ合成遺伝子スイッチを用いて、特定の刺激に応答して血管新生因子の発現を制御できるシステムを構築した。これを3Dプリント骨組織に適用した結果、必要な時期と場所で血管形成を促進でき、組織の成熟や生存性が向上することが示された。従来の成長因子投与法と比べ、より精密かつ持続的な制御が可能であり、骨再生医療や組織移植の実用化に向けた重要な進展といえる。研究チームは、将来的に患者ごとの状態に応じた再生組織の設計や、複雑な人工臓器開発への応用を期待している。

<関連情報>

miRNA誘導スフェロイドのバイオプリンティングによる血管新生を伴う異種細胞性骨再生 Bioprinting of miRNA-induced spheroids for vascularized, heterocellular bone regeneration

Nazmiye Celik, Amar Yeware, Vaibhav Pal, Miji Yeo, Myoung Hwan Kim, Logan Haugh, Ibrahim T. Ozbolat, Daniel J. Hayes
Chemical Engineering Journal  Available online: 19 June 2026
DOI:https://doi.org/10.1016/j.cej.2026.178521

Abstract

Successful bone regeneration requires coupled osteogenic and vascular development; however, achieving simultaneous multicellular differentiation within engineered tissues remains challenging. Here, we developed a microRNA (miR)-guided spheroid platform to induce dual osteogenic and endothelial differentiation of human adipose-derived stem cells (hASCs) for vascularized bone regeneration. hASCs were transfected with miR-148b or miR-210 to promote osteogenic and vascular-associated phenotypes, respectively, and assembled into spheroids that were bioprinted within an nHA-containing GelMA microgel environment using aspiration-assisted bioprinting (AAB).

The integrated platform combined miR-guided osteogenic and endothelial differentiation, spatially organized AAB-based spheroid assembly, and an nHA-containing GelMA microgel environment to support vascularized bone tissue regeneration. The engineered constructs maintained high cell viability (> 90%) and supported active cell spreading and migration within the microgel matrix, together with increased osteogenic and endothelial gene expression.

To further verify their in vivo regenerative potential, the constructs were implanted into mouse critical-size calvarial defects, where those containing miR-transfected hASCs improved bone regeneration, achieving ∼91% of defect closure, and promoted the formation of vessel-like CD31-positive structures compared to controls. Together, these findings demonstrate that combining miR-mediated dual-lineage differentiation with spatially organized spheroid assembly and a supportive microgel environment provides a promising strategy for vascularized bone tissue engineering.

細胞遺伝子工学
ad
ad
Follow
ad
タイトルとURLをコピーしました