Tissue and Organ 3D Bioprinting: a technological prospection

Authors

DOI:

https://doi.org/10.9771/cp.v13i5.33571

Keywords:

Biomimetic Tissues, Patents , Three Dimensional.

Abstract

Three-dimensional (3D) bioprinting technology is based on the fabrication of biomimetic tissue, self-assembling and mini-tissue. The objective of this work was to perform a patent technology search in the database of the National Institute of Intellectual Property (INPI), and in the international databases; European Patent Office (EPO) and the World Intellectual Property Organization (WIPO) on tissue and organ bio-printing (3D). The terms used to search were: 3D bioprinting, tissue engineering, bioprinted tissue, tissue bioprinting, 3D tissue printing and bioprinting. The results showed that the EPO database had 915 filed patents, WIPO with 869 and INPI with 360 patents. It is noticeable the advance of research for the development of bioprinted tissues and organs with applicability in human medicine, where it presents itself as a promising technique regarding the reduction of waiting for time and rejection of patients to be transplanted.

Downloads

Download data is not yet available.

Author Biographies

Gutiele do Nascimento do É, Federal University of São Francisco Valley

Bachelor's Degree in Biological Sciences at the Federal University of Vale do São Francisco - UNIVASF.

Graziela Parente Peduti, Federal University of São Francisco Valley

Bachelor's Degree in Biological Sciences at the Federal University of Vale do São Francisco - UNIVASF.

Allyson Moises Lopes de Carvalho, Federal University of São Francisco Valley

Bachelor's Degree in Biological Sciences at the Federal University of Vale do São Francisco - UNIVASF.

Ananda dos Santos Rabelo, Federal University of São Francisco Valley

Bachelor's Degree in Biological Sciences at the Federal University of Vale do São Francisco - UNIVASF.

Michely Correia Diniz, Federal University of São Francisco Valley

Graduated in Licentiate and Bachelor's Degree in Biological Sciences from the State University of Ceará (2004). Completed a Masters in Genetics at the Federal University of Pernambuco with an emphasis on Molecular Genetics (2007). Completed the Doctorate in Biotechnology (2011). She is an Associate Professor at the Fundação Universidade Federal do Vale do São Francisco - UNIVASF -, working in the areas of Molecular Genetics, Evolutionary Biology, Biotechnology and Bioinformatics. She is currently Coordinator of Technology Diffusion and Transfer - NIT and Collaborating Professor of the Professional Postgraduate Program in Intellectual Property and Technology Transfer for Innovation - PROFINIT.

References

ARSLAN-YILDIZ, Ahu et al. Towards artificial tissue models: past, present, and future of 3D bioprinting. Biofabrication, [S.l.], v. 8, n. 1, p. 1-18, 2016.

ASHAMMAKHI, Nureddin et al. Bioinks and bioprinting technologies to make heterogeneous and biomimetic tissue constructs. Materials Today Bio, [S.l.], p. 1-23, 2019.

COMMUNICATION from the Commission to the European Parliament and the Council on the animal testing and marketing ban and on the state of play in relation to alternative methods in the field of cosmetics/* COM/2013/0135 final*/. [2019]. Disponível em: https://eur-lex.europa.eu/legal-content/EN/TXT/?uri=CELEX:52013DC0135. Acesso em: 10 set. 2019.

DOKE, Sonali K.; DHAWALE, Shashikant C. Alternatives to animal testing: A review. Saudi Pharmaceutical Journal, [S.l.], v. 23, n. 3, p. 223-229, 2015.

EUROPEAN PATENT OFFICE. [2019]. Disponível em: https://www.epo.org/index.html. Acesso em: 11 ago. 2019.

GERMAIN, Pierre-Luc; CHIAPPERINO, Luca; TESTA, Giuseppe. The European politics of animal experimentation: From Victorian Britain to ‘Stop Vivisection’. Studies in History and Philosophy of Science Part C: Studies in History and Philosophy of Biological and Biomedical Sciences, [S.l.], v. 64, p. 75-87, 2017.

GOCHT, T.; SCHWARZ, M. Towards the replacement of in vivo repeated dose systemic toxicity. Self-publishing, Paris, [S.l.], v. 6, 2016. Disponível em: http://www.seurat-1.eu/pages/library/seurat-1-annual-reports.php.php. Acesso em: 10 set. 2019.

HEINRICH, Marcel Alexander et al. 3D Bioprinting: from Benches to Translational Applications. Small, [S.l.], v. 15, n. 23, p. 1805510, 2019.

INPI – INSTITUTO NACIONAL DA PROPRIEDADE INDUSTRIAL. Base de Dados INPI. [2017]. Disponível em: http://www.inpi.gov.br/menu-servicos/patente/classificacao-de-patentes. Acesso em: 13 ago. 2019.

KANG, Hyun-Wook et al. A 3D bioprinting system to produce human-scale tissue constructs with structural integrity. Nature Biotechnology, [S.l.], v. 34, n. 3, p. 312, 2016.

MUKHERJEE, P.; RANI, A.; SARAVANAN, P. Polymeric Materials for 3D Bioprinting. 3D Printing Technology in Nanomedicine, [S.l.], p. 63-81, 2019.

MURPHY, Sean V.; ATALA, Anthony. 3D bioprinting of tissues and organs. Nature Biotechnology, [S.l.], v. 32, n. 8, p. 773, 2014.

SINGH, Satnam et al. In situ Bioprinting-Bioprinting from Benchside to Bedside? Acta Biomaterialia, [S.l.], 2019.

SERAFINI, M. R. et al. Mapeamento de tecnologias patenteáveis com o uso da hecogenina. GEINTEC-Gestão, Inovação e Tecnologias, [S.l.], v. 2, n. 5, p. 427-435, 2012.

SYKES, Antonio V. et al. Directive 2010/63/EU on animal welfare: a review on the existing scientific knowledge and implications in cephalopod aquaculture research. Reviews in Aquaculture, [S.l.], v. 4, n. 3, p. 142-162, 2012.

VIJAYAVENKATARAMAN, Sanjairaj et al. 3D bioprinting of tissues and organs for regenerative medicine. Advanced Drug Delivery Reviews, [S.l.], v. 132, p. 296-332, 2018.

WANG, Chi-Hwa et al. 3D-Bioprinting and Micro-/Nano-Technology: Emerging Technologies in Biomedical Sciences. Advanced Drug Delivery Reviews, [S.l.], v. 132, p. 1-2, 2018.

WIPO – WORLD INTELLECTUAL PROPERTY ORGANIZATION. PCT Yearly Review 2019: the International Patent System. Geneva: WIPO, 2019a.

WIPO – WORLD INTELLECTUAL PROPERTY ORGANIZATION. Base de Dados Patentscope. [2019b]. Disponível em: https://www.wipo.int/portal/en/index.html. Acesso em: 11 ago. 2019.

ZHANG, Shiqing; WANG, Haibin. Current progress in 3D bioprinting of tissue analogs. Slas Technology: Translating Life Sciences Innovation, [S.l.], v. 24, n. 1, p. 70-78, 2019.

Published

2020-10-01

How to Cite

É, G. do N. do, Peduti, G. P., Carvalho, A. M. L. de, Rabelo, A. dos S., & Diniz, M. C. (2020). Tissue and Organ 3D Bioprinting: a technological prospection. Cadernos De Prospecção, 13(5), 1383. https://doi.org/10.9771/cp.v13i5.33571

Issue

Section

Prospecções Tecnológicas de Assuntos Específicos