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Out of Box Thinking to Tangible Science: A Benchmark History of 3D Bio-Printing in Regenerative Medicine and Tissues Engineering

Advancements and developments in the 3D bioprinting have been promising and have met the needs of organ transplantation. Current improvements in tissue engineering constructs have enhanced their applications in regenerative medicines and other medical fields. The synergistic effects of 3D bioprintin...

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Autores principales: Pushparaj, Karthika, Balasubramanian, Balamuralikrishnan, Pappuswamy, Manikantan, Anand Arumugam, Vijaya, Durairaj, Kaliannan, Liu, Wen-Chao, Meyyazhagan, Arun, Park, Sungkwon
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10145662/
https://www.ncbi.nlm.nih.gov/pubmed/37109483
http://dx.doi.org/10.3390/life13040954
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author Pushparaj, Karthika
Balasubramanian, Balamuralikrishnan
Pappuswamy, Manikantan
Anand Arumugam, Vijaya
Durairaj, Kaliannan
Liu, Wen-Chao
Meyyazhagan, Arun
Park, Sungkwon
author_facet Pushparaj, Karthika
Balasubramanian, Balamuralikrishnan
Pappuswamy, Manikantan
Anand Arumugam, Vijaya
Durairaj, Kaliannan
Liu, Wen-Chao
Meyyazhagan, Arun
Park, Sungkwon
author_sort Pushparaj, Karthika
collection PubMed
description Advancements and developments in the 3D bioprinting have been promising and have met the needs of organ transplantation. Current improvements in tissue engineering constructs have enhanced their applications in regenerative medicines and other medical fields. The synergistic effects of 3D bioprinting have brought technologies such as tissue engineering, microfluidics, integrated tissue organ printing, in vivo bioprinted tissue implants, artificial intelligence and machine learning approaches together. These have greatly impacted interventions in medical fields, such as medical implants, multi-organ-on-chip models, prosthetics, drug testing tissue constructs and much more. This technological leap has offered promising personalized solutions for patients with chronic diseases, and neurodegenerative disorders, and who have been in severe accidents. This review discussed the various standing printing methods, such as inkjet, extrusion, laser-assisted, digital light processing, and stereolithographic 3D bioprinter models, adopted for tissue constructs. Additionally, the properties of natural, synthetic, cell-laden, dECM-based, short peptides, nanocomposite and bioactive bioinks are briefly discussed. Sequels of several tissue-laden constructs such as skin, bone and cartilage, liver, kidney, smooth muscles, cardiac and neural tissues are briefly analyzed. Challenges, future perspectives and the impact of microfluidics in resolving the limitations in the field, along with 3D bioprinting, are discussed. Certainly, a technology gap still exists in the scaling up, industrialization and commercialization of this technology for the benefit of stakeholders.
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spelling pubmed-101456622023-04-29 Out of Box Thinking to Tangible Science: A Benchmark History of 3D Bio-Printing in Regenerative Medicine and Tissues Engineering Pushparaj, Karthika Balasubramanian, Balamuralikrishnan Pappuswamy, Manikantan Anand Arumugam, Vijaya Durairaj, Kaliannan Liu, Wen-Chao Meyyazhagan, Arun Park, Sungkwon Life (Basel) Review Advancements and developments in the 3D bioprinting have been promising and have met the needs of organ transplantation. Current improvements in tissue engineering constructs have enhanced their applications in regenerative medicines and other medical fields. The synergistic effects of 3D bioprinting have brought technologies such as tissue engineering, microfluidics, integrated tissue organ printing, in vivo bioprinted tissue implants, artificial intelligence and machine learning approaches together. These have greatly impacted interventions in medical fields, such as medical implants, multi-organ-on-chip models, prosthetics, drug testing tissue constructs and much more. This technological leap has offered promising personalized solutions for patients with chronic diseases, and neurodegenerative disorders, and who have been in severe accidents. This review discussed the various standing printing methods, such as inkjet, extrusion, laser-assisted, digital light processing, and stereolithographic 3D bioprinter models, adopted for tissue constructs. Additionally, the properties of natural, synthetic, cell-laden, dECM-based, short peptides, nanocomposite and bioactive bioinks are briefly discussed. Sequels of several tissue-laden constructs such as skin, bone and cartilage, liver, kidney, smooth muscles, cardiac and neural tissues are briefly analyzed. Challenges, future perspectives and the impact of microfluidics in resolving the limitations in the field, along with 3D bioprinting, are discussed. Certainly, a technology gap still exists in the scaling up, industrialization and commercialization of this technology for the benefit of stakeholders. MDPI 2023-04-05 /pmc/articles/PMC10145662/ /pubmed/37109483 http://dx.doi.org/10.3390/life13040954 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Review
Pushparaj, Karthika
Balasubramanian, Balamuralikrishnan
Pappuswamy, Manikantan
Anand Arumugam, Vijaya
Durairaj, Kaliannan
Liu, Wen-Chao
Meyyazhagan, Arun
Park, Sungkwon
Out of Box Thinking to Tangible Science: A Benchmark History of 3D Bio-Printing in Regenerative Medicine and Tissues Engineering
title Out of Box Thinking to Tangible Science: A Benchmark History of 3D Bio-Printing in Regenerative Medicine and Tissues Engineering
title_full Out of Box Thinking to Tangible Science: A Benchmark History of 3D Bio-Printing in Regenerative Medicine and Tissues Engineering
title_fullStr Out of Box Thinking to Tangible Science: A Benchmark History of 3D Bio-Printing in Regenerative Medicine and Tissues Engineering
title_full_unstemmed Out of Box Thinking to Tangible Science: A Benchmark History of 3D Bio-Printing in Regenerative Medicine and Tissues Engineering
title_short Out of Box Thinking to Tangible Science: A Benchmark History of 3D Bio-Printing in Regenerative Medicine and Tissues Engineering
title_sort out of box thinking to tangible science: a benchmark history of 3d bio-printing in regenerative medicine and tissues engineering
topic Review
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10145662/
https://www.ncbi.nlm.nih.gov/pubmed/37109483
http://dx.doi.org/10.3390/life13040954
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