4.8 Article

Pore-forming bioinks to enable spatio-temporally defined gene delivery in bioprinted tissues

期刊

JOURNAL OF CONTROLLED RELEASE
卷 301, 期 -, 页码 13-27

出版社

ELSEVIER SCIENCE BV
DOI: 10.1016/j.jconrel.2019.03.006

关键词

Non-viral gene delivery; Bioink; Tissue engineering; 3D printing; Gene activated matrix; Osteochondral regeneration

资金

  1. Science Foundation Ireland through the Advanced Materials and Bioengineering Research (AMBER) center and an Investigator Programme grant [12/IA/1554]
  2. European Research Council [258463, 647004]
  3. ERC (StG 2DNanocaps)
  4. SFI
  5. European Research Council (ERC) [647004] Funding Source: European Research Council (ERC)

向作者/读者索取更多资源

The regeneration of complex tissues and organs remains a major clinical challenge. With a view towards bio-printing such tissues, we developed a new class of pore-forming bioink to spatially and temporally control the presentation of therapeutic genes within bioprinted tissues. By blending sacrificial and stable hydrogels, we were able to produce bioinks whose porosity increased with time following printing. When combined with amphi-pathic peptide-based plasmid DNA delivery, these bioinks supported enhanced non-viral gene transfer to stem cells in vitro. By modulating the porosity of these bioinks, it was possible to direct either rapid and transient (pore forming bioinks), or slower and more sustained (solid bioinks) transfection of host or transplanted cells in vivo. To demonstrate the utility of these bioinks for the bioprinting of spatially complex tissues, they were next used to zonally position stem cells and plasmids encoding for either osteogenic (BMP2) or chondrogenic (combination of TGF-j33, BMP2 and SOX9) genes within networks of 3D printed thermoplastic fibers to produce mechanically reinforced, gene activated constructs. In vivo, these bioprinted tissues supported the development of a vascularised, bony tissue overlaid by a layer of stable cartilage. When combined with multiple-tool bio-fabrication strategies, these gene activated bioinks can enable the bioprinting of a wide range of spatially complex tissues.

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