Scaffold-free tenogenic macro-tissues engineered by multi-layered bioassembly of rat tendon fibroblast spheroids.

Prabhakaran, Vinothini; Sobrattee, Anya; Melchels, Ferry P W; Murray, Lyndsay M; Paxton, Jennifer Z · Biofabrication · 2026

basic_science · Level V

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Abstract

Tissue-engineered tendon constructs that replicate the structural and functional properties of natural tendons are crucial in regenerative medicine to improve treatment outcomes after tendon injury. This study aimed to engineer 3-dimensional biomimetic tendon macro-tissues through bioassembly of cell spheroids. Rat tendon fibroblasts seeded at different cell numbers (1 × 10<sup>4</sup>, 5 × 10<sup>4</sup>, 1 × 10<sup>5</sup>, 2 × 10<sup>5</sup>, 3 × 10<sup>5</sup>) were analysed for spheroid formation and development for 28 d. The spheroid diameters decreased over time with a reduction in cell density while synthesising their own collagen fibres. Spheroids were then bioassembled to form fused macro-tissue constructs using pillar array temporary supports. With the presence of ascorbic acid in growth media, the spheroids fused within 6 d after bioassembly, during which the supports were removed, leaving the constructs scaffold-free. The fused spheroids reorganised over time with increased fibrillar collagen content, showing elongated cell morphology in peripheral regions, which were parallelly aligned with collagen fibres resembling natural tendon micro-anatomy. The presence of scleraxis and tenomodulin gene markers also supports the tenogenic nature of tissue constructs. These biomimetic scaffold-free tenogenic macro-tissues have promising applications in tendon repair and regeneration, as<i>in vitro</i>models and tendon graft substitutes.

Medical subject headings