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Bioprinting Cellularized Constructs Using a Tissue-specific Hydrogel Bioink
Published on: April 21, 2016
Inorganic biomaterials-reinforced printable hydrogel modulating regenerative microenvironments for tissue repair
Ziyi Zhao1,2, Chengtie Wu1,2,3
1State Key Laboratory of High Performance Ceramics, Shanghai Institute of Ceramics, Chinese Academy of Sciences, Shanghai 200050, People's Republic of China.
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Complex tissue/organ regeneration is a well-orchestrated biological process that is orchestrated by the coordinated effort of neural, vascular and immune systems, accompanied by multiple cellular interactions and signal crosstalk. The beneficial pro-regenerative microenvironments are of great significance for regulating tissue-resident cell viability, migration and differentiation to direct tissue repair process. 3D bioprinting is an advanced biomanufacturing strategy that utilizes hydrogel-containing bioinks to fabricate cell-laden scaffolds, but they face the limitations of insufficient bioactivity. Inorganic biomaterials have been recognized as effective bioactive agents owing to their tunable chemical composition, topographical architectures, and physiochemical properties, which can overcome the limitation of printable hydrogel and broaden their potential biological applications. This review primarily focuses on the design of inorganic biomaterials-reinforced printable hydrogel for modulating regenerative microenvironments including neural, vascular, and immune regulation, as well as summarizes the recent progress of their applications for tissue and organ regeneration. It begins with an introduction of inorganic biomaterials augmenting the biophysical and the biochemical properties of 3D-printed hydrogel, especially highlighting the improvement of topographical cues, mechanical strength, external field responsiveness, and bioactive components release for regulating various tissue microenvironments. Subsequently, recent advancements of inorganic biomaterials-reinforced printable hydrogel in regenerating musculoskeletal system, skin, and cardiac tissues are systematically reviewed. Finally, current challenges and future perspectives in the development of inorganic biomaterials-reinforced printable hydrogel are proposed. This review may offer a novel insight for the design of novel bioinks in combination with inorganic biomaterials and printable hydrogel, which shows great potential for engineered biofabrication and complex tissue/organ regeneration.

