Literature DB >> 30639351

Bioprinting functional tissues.

Ashley N Leberfinger1, Shantanab Dinda2, Yang Wu3, Srinivas V Koduru1, Veli Ozbolat4, Dino J Ravnic1, Ibrahim T Ozbolat5.   

Abstract

Despite the numerous lives that have been saved since the first successful procedure in 1954, organ transplant has several shortcomings which prevent it from becoming a more comprehensive solution for medical care than it is today. There is a considerable shortage of organ donors, leading to patient death in many cases. In addition, patients require lifelong immunosuppression to prevent graft rejection postoperatively. With such issues in mind, recent research has focused on possible solutions for the lack of access to donor organs and rejections, with the possibility of using the patient's own cells and tissues for treatment showing enormous potential. Three-dimensional (3D) bioprinting is a rapidly emerging technology, which holds great promise for fabrication of functional tissues and organs. Bioprinting offers the means of utilizing a patient's cells to design and fabricate constructs for replacement of diseased tissues and organs. It enables the precise positioning of cells and biologics in an automated and high throughput manner. Several studies have shown the promise of 3D bioprinting. However, many problems must be overcome before the generation of functional tissues with biologically-relevant scale is possible. Specific focus on the functionality of bioprinted tissues is required prior to clinical translation. In this perspective, this paper discusses the challenges of functionalization of bioprinted tissue under eight dimensions: biomimicry, cell density, vascularization, innervation, heterogeneity, engraftment, mechanics, and tissue-specific function, and strives to inform the reader with directions in bioprinting complex and volumetric tissues. STATEMENT OF SIGNIFICANCE: With thousands of patients dying each year waiting for an organ transplant, bioprinted tissues and organs show the potential to eliminate this ever-increasing organ shortage crisis. However, this potential can only be realized by better understanding the functionality of the organ and developing the ability to translate this to the bioprinting methodologies. Considering the rate at which the field is currently expanding, it is reasonable to expect bioprinting to become an integral component of regenerative medicine. For this purpose, this paper discusses several factors that are critical for printing functional tissues including cell density, vascularization, innervation, heterogeneity, engraftment, mechanics, and tissue-specific function, and inform the reader with future directions in bioprinting complex and volumetric tissues.
Copyright © 2019 Acta Materialia Inc. Published by Elsevier Ltd. All rights reserved.

Entities:  

Keywords:  Cell density; Engraftment; Functional tissue bioprinting; Heterogeneity; Innervation; Mechanics; Transplant; Vascularization

Mesh:

Year:  2019        PMID: 30639351      PMCID: PMC6625952          DOI: 10.1016/j.actbio.2019.01.009

Source DB:  PubMed          Journal:  Acta Biomater        ISSN: 1742-7061            Impact factor:   8.947


  163 in total

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Review 3.  A review of rapid prototyping techniques for tissue engineering purposes.

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Review 4.  Application areas of 3D bioprinting.

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Review 5.  Application of conductive polymers, scaffolds and electrical stimulation for nerve tissue engineering.

Authors:  Laleh Ghasemi-Mobarakeh; Molamma P Prabhakaran; Mohammad Morshed; Mohammad Hossein Nasr-Esfahani; Hossein Baharvand; Sahar Kiani; Salem S Al-Deyab; Seeram Ramakrishna
Journal:  J Tissue Eng Regen Med       Date:  2011-01-10       Impact factor: 3.963

6.  3D bioprinting of functional human skin: production and in vivo analysis.

Authors:  Nieves Cubo; Marta Garcia; Juan F Del Cañizo; Diego Velasco; Jose L Jorcano
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7.  [Amniotic membrane transplantation improves herpetic keratitis by local and not by systemic effects].

Authors:  A Heiligenhaus; D Bauer; S Wasmuth; K P Steuhl
Journal:  Ophthalmologe       Date:  2003-03       Impact factor: 1.059

8.  Design and development of nanocomposite scaffolds for auricular reconstruction.

Authors:  Leila Nayyer; Martin Birchall; Alexander M Seifalian; Gavin Jell
Journal:  Nanomedicine       Date:  2013-06-20       Impact factor: 5.307

9.  The application of graphene oxidized combining with decellularized scaffold to repair of sciatic nerve injury in rats.

Authors:  Qiaoling Wang; Jinlong Chen; Qingfei Niu; Xiumei Fu; Xiaohong Sun; Xiaojie Tong
Journal:  Saudi Pharm J       Date:  2017-04-20       Impact factor: 4.330

10.  Biomaterial-Free Three-Dimensional Bioprinting of Cardiac Tissue using Human Induced Pluripotent Stem Cell Derived Cardiomyocytes.

Authors:  Chin Siang Ong; Takuma Fukunishi; Huaitao Zhang; Chen Yu Huang; Andrew Nashed; Adriana Blazeski; Deborah DiSilvestre; Luca Vricella; John Conte; Leslie Tung; Gordon F Tomaselli; Narutoshi Hibino
Journal:  Sci Rep       Date:  2017-07-04       Impact factor: 4.379

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  14 in total

Review 1.  3D Bioprinting of Cell-Laden Hydrogels for Improved Biological Functionality.

Authors:  Sarah M Hull; Lucia G Brunel; Sarah C Heilshorn
Journal:  Adv Mater       Date:  2021-10-20       Impact factor: 30.849

Review 2.  Cell Aggregate Assembly through Microengineering for Functional Tissue Emergence.

Authors:  Gozde Eke; Laurence Vaysse; Xi Yao; Mélanie Escudero; Audrey Carrière; Emmanuelle Trevisiol; Christophe Vieu; Christian Dani; Louis Casteilla; Laurent Malaquin
Journal:  Cells       Date:  2022-04-20       Impact factor: 7.666

Review 3.  Emerging Technologies in Multi-Material Bioprinting.

Authors:  Hossein Ravanbakhsh; Vahid Karamzadeh; Guangyu Bao; Luc Mongeau; David Juncker; Yu Shrike Zhang
Journal:  Adv Mater       Date:  2021-10-01       Impact factor: 32.086

Review 4.  Recent advances in bioprinting technologies for engineering cardiac tissue.

Authors:  Tarun Agarwal; Gabriele Maria Fortunato; Sung Yun Hann; Bugra Ayan; Kiran Yellappa Vajanthri; Dario Presutti; Haitao Cui; Alex H P Chan; Marco Costantini; Valentina Onesto; Concetta Di Natale; Ngan F Huang; Pooyan Makvandi; Majid Shabani; Tapas Kumar Maiti; Lijie Grace Zhang; Carmelo De Maria
Journal:  Mater Sci Eng C Mater Biol Appl       Date:  2021-03-25

Review 5.  Challenges on optimization of 3D-printed bone scaffolds.

Authors:  Marjan Bahraminasab
Journal:  Biomed Eng Online       Date:  2020-09-03       Impact factor: 2.819

6.  Bionic Organs: Shear Forces Reduce Pancreatic Islet and Mammalian Cell Viability during the Process of 3D Bioprinting.

Authors:  Marta Klak; Patrycja Kowalska; Tomasz Dobrzański; Grzegorz Tymicki; Piotr Cywoniuk; Magdalena Gomółka; Katarzyna Kosowska; Tomasz Bryniarski; Andrzej Berman; Agnieszka Dobrzyń; Wojciech Sadowski; Bartosz Górecki; Michał Wszoła
Journal:  Micromachines (Basel)       Date:  2021-03-14       Impact factor: 2.891

7.  New Biodegradable Drug Delivery System for Patients with Dry Eye.

Authors:  Beom Chan Park; Ho Tae Kim; Jae Woong Koh
Journal:  Korean J Ophthalmol       Date:  2021-09-06

8.  Bioprinting Cell- and Spheroid-Laden Protein-Engineered Hydrogels as Tissue-on-Chip Platforms.

Authors:  Daniela F Duarte Campos; Christopher D Lindsay; Julien G Roth; Bauer L LeSavage; Alexis J Seymour; Brad A Krajina; Ricardo Ribeiro; Pedro F Costa; Andreas Blaeser; Sarah C Heilshorn
Journal:  Front Bioeng Biotechnol       Date:  2020-04-28

Review 9.  Advances on Bone Substitutes through 3D Bioprinting.

Authors:  Tullio Genova; Ilaria Roato; Massimo Carossa; Chiara Motta; Davide Cavagnetto; Federico Mussano
Journal:  Int J Mol Sci       Date:  2020-09-23       Impact factor: 5.923

Review 10.  3D Bioprinting at the Frontier of Regenerative Medicine, Pharmaceutical, and Food Industries.

Authors:  Qasem Ramadan; Mohammed Zourob
Journal:  Front Med Technol       Date:  2021-01-28
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