Literature DB >> 34716451

3D bioprinted silk fibroin hydrogels for tissue engineering.

Soon Hee Kim1, Heesun Hong1, Olatunji Ajiteru1, Md Tipu Sultan1, Young Jin Lee1, Ji Seung Lee1, Ok Joo Lee1, Hanna Lee1, Hae Sang Park1,2, Kyu Young Choi1,3, Joong Seob Lee1,4, Hyung Woo Ju5, In-Sun Hong6, Chan Hum Park7,8.   

Abstract

The development of biocompatible and precisely printable bioink addresses the growing demand for three-dimensional (3D) bioprinting applications in the field of tissue engineering. We developed a methacrylated photocurable silk fibroin (SF) bioink for digital light processing 3D bioprinting to generate structures with high mechanical stability and biocompatibility for tissue engineering applications. Procedure 1 describes the synthesis of photocurable methacrylated SF bioink, which takes 2 weeks to complete. Digital light processing is used to fabricate 3D hydrogels using the bioink (1.5 h), which are characterized in terms of methacrylation, printability, mechanical and rheological properties, and biocompatibility. The physicochemical properties of the bioink can be modulated by varying photopolymerization conditions such as the degree of methacrylation, light intensity, and concentration of the photoinitiator and bioink. The versatile bioink can be used broadly in a range of applications, including nerve tissue engineering through co-polymerization of the bioink with graphene oxide, and for wound healing as a sealant. Procedure 2 outlines how to apply 3D-printed SF hydrogels embedded with chondrocytes and turbinate-derived mesenchymal stem cells in one specific in vivo application, trachea tissue engineering, which takes 2-9 weeks.
© 2021. The Author(s), under exclusive licence to Springer Nature Limited.

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Year:  2021        PMID: 34716451     DOI: 10.1038/s41596-021-00622-1

Source DB:  PubMed          Journal:  Nat Protoc        ISSN: 1750-2799            Impact factor:   13.491


  50 in total

1.  Laser assisted bioprinting of engineered tissue with high cell density and microscale organization.

Authors:  Bertrand Guillotin; Agnès Souquet; Sylvain Catros; Martí Duocastella; Benjamin Pippenger; Séverine Bellance; Reine Bareille; Murielle Rémy; Laurence Bordenave; Joëlle Amédée; Fabien Guillemot
Journal:  Biomaterials       Date:  2010-07-02       Impact factor: 12.479

Review 2.  Current advances and future perspectives in extrusion-based bioprinting.

Authors:  Ibrahim T Ozbolat; Monika Hospodiuk
Journal:  Biomaterials       Date:  2015-10-31       Impact factor: 12.479

3.  Nanostructured Pluronic hydrogels as bioinks for 3D bioprinting.

Authors:  Michael Müller; Jana Becher; Matthias Schnabelrauch; Marcy Zenobi-Wong
Journal:  Biofabrication       Date:  2015-08-11       Impact factor: 9.954

Review 4.  Microvalve-based bioprinting - process, bio-inks and applications.

Authors:  Wei Long Ng; Jia Min Lee; Wai Yee Yeong; May Win Naing
Journal:  Biomater Sci       Date:  2017-03-28       Impact factor: 6.843

Review 5.  Progress in 3D bioprinting technology for tissue/organ regenerative engineering.

Authors:  Ishita Matai; Gurvinder Kaur; Amir Seyedsalehi; Aneesah McClinton; Cato T Laurencin
Journal:  Biomaterials       Date:  2019-10-11       Impact factor: 12.479

Review 6.  3D bioprinting for engineering complex tissues.

Authors:  Christian Mandrycky; Zongjie Wang; Keekyoung Kim; Deok-Ho Kim
Journal:  Biotechnol Adv       Date:  2015-12-23       Impact factor: 14.227

7.  A simple and high-resolution stereolithography-based 3D bioprinting system using visible light crosslinkable bioinks.

Authors:  Zongjie Wang; Raafa Abdulla; Benjamin Parker; Roya Samanipour; Sanjoy Ghosh; Keekyoung Kim
Journal:  Biofabrication       Date:  2015-12-22       Impact factor: 9.954

8.  3D Bioprinting Using Cross-Linker-Free Silk-Gelatin Bioink for Cartilage Tissue Engineering.

Authors:  Yogendra Pratap Singh; Ashutosh Bandyopadhyay; Biman B Mandal
Journal:  ACS Appl Mater Interfaces       Date:  2019-09-10       Impact factor: 9.229

Review 9.  Evaluation of silk-based bioink during pre and post 3D bioprinting: A review.

Authors:  Sharda Gupta; Hussam Alrabaiah; Marquette Christophe; Mohammad Rahimi-Gorji; Sohail Nadeem; Arindam Bit
Journal:  J Biomed Mater Res B Appl Biomater       Date:  2020-08-31       Impact factor: 3.368

10.  Surprising strength of silkworm silk.

Authors:  Zhengzhong Shao; Fritz Vollrath
Journal:  Nature       Date:  2002-08-15       Impact factor: 49.962

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  3 in total

1.  Light-Triggered Adhesive Silk-Based Film for Effective Photodynamic Antibacterial Therapy and Rapid Hemostasis.

Authors:  Tingting Huang; Zhihao Zhou; Qiaoyuan Li; Xiaoxuan Tang; Xiaoli Chen; Yifan Ge; Jue Ling
Journal:  Front Bioeng Biotechnol       Date:  2022-01-11

Review 2.  Recent Advances in Bioengineered Scaffolds for Cutaneous Wound Healing.

Authors:  Jianghui Qin; Fang Chen; Pingli Wu; Guoming Sun
Journal:  Front Bioeng Biotechnol       Date:  2022-03-01

Review 3.  Borrowing the Features of Biopolymers for Emerging Wound Healing Dressings: A Review.

Authors:  Ioannis Gardikiotis; Florina-Daniela Cojocaru; Cosmin-Teodor Mihai; Vera Balan; Gianina Dodi
Journal:  Int J Mol Sci       Date:  2022-08-07       Impact factor: 6.208

  3 in total

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