Artigos de revistas sobre o tema "Natural bioink"
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Willson, Kelsey, Anthony Atala e James J. Yoo. "Bioprinting Au Natural: The Biologics of Bioinks". Biomolecules 11, n.º 11 (28 de outubro de 2021): 1593. http://dx.doi.org/10.3390/biom11111593.
Texto completo da fonteZhe, Man, Xinyu Wu, Peiyun Yu, Jiawei Xu, Ming Liu, Guang Yang, Zhou Xiang, Fei Xing e Ulrike Ritz. "Recent Advances in Decellularized Extracellular Matrix-Based Bioinks for 3D Bioprinting in Tissue Engineering". Materials 16, n.º 8 (18 de abril de 2023): 3197. http://dx.doi.org/10.3390/ma16083197.
Texto completo da fonteGoklany, Sheba. "Conductive Nanomaterials used in Bioinks for 3D Bioprinting". Nano LIFE 11, n.º 02 (junho de 2021): 2130005. http://dx.doi.org/10.1142/s1793984421300053.
Texto completo da fonteDelkash, Yasaman, Maxence Gouin, Tanguy Rimbeault, Fatemeh Mohabatpour, Petros Papagerakis, Sean Maw e Xiongbiao Chen. "Bioprinting and In Vitro Characterization of an Eggwhite-Based Cell-Laden Patch for Endothelialized Tissue Engineering Applications". Journal of Functional Biomaterials 12, n.º 3 (11 de agosto de 2021): 45. http://dx.doi.org/10.3390/jfb12030045.
Texto completo da fonteZhang, Chun-Yang, Chao-Ping Fu, Xiong-Ya Li, Xiao-Chang Lu, Long-Ge Hu, Ranjith Kumar Kankala, Shi-Bin Wang e Ai-Zheng Chen. "Three-Dimensional Bioprinting of Decellularized Extracellular Matrix-Based Bioinks for Tissue Engineering". Molecules 27, n.º 11 (26 de maio de 2022): 3442. http://dx.doi.org/10.3390/molecules27113442.
Texto completo da fonteChen, Yan, Yingge Zhou e Chi Wang. "Investigation of Collagen-Incorporated Sodium Alginate Bioprinting Hydrogel for Tissue Engineering". Journal of Composites Science 6, n.º 8 (4 de agosto de 2022): 227. http://dx.doi.org/10.3390/jcs6080227.
Texto completo da fonteTolmacheva, Nelli, Amitava Bhattacharyya e Insup Noh. "Calcium Phosphate Biomaterials for 3D Bioprinting in Bone Tissue Engineering". Biomimetics 9, n.º 2 (6 de fevereiro de 2024): 95. http://dx.doi.org/10.3390/biomimetics9020095.
Texto completo da fonteSanz-Fraile, Héctor, Carolina Herranz-Diez, Anna Ulldemolins, Bryan Falcones, Isaac Almendros, Núria Gavara, Raimon Sunyer, Ramon Farré e Jorge Otero. "Characterization of Bioinks Prepared via Gelifying Extracellular Matrix from Decellularized Porcine Myocardia". Gels 9, n.º 9 (13 de setembro de 2023): 745. http://dx.doi.org/10.3390/gels9090745.
Texto completo da fonteLee, Juo, Sungmin Lee, Jae Woon Lim, Iksong Byun, Kyoung-Je Jang, Jin-Woo Kim, Jong Hoon Chung, Jungsil Kim e Hoon Seonwoo. "Development of Plum Seed-Derived Carboxymethylcellulose Bioink for 3D Bioprinting". Polymers 15, n.º 23 (21 de novembro de 2023): 4473. http://dx.doi.org/10.3390/polym15234473.
Texto completo da fonteGao, Qiqi, Byoung-Soo Kim e Ge Gao. "Advanced Strategies for 3D Bioprinting of Tissue and Organ Analogs Using Alginate Hydrogel Bioinks". Marine Drugs 19, n.º 12 (15 de dezembro de 2021): 708. http://dx.doi.org/10.3390/md19120708.
Texto completo da fonteTuan Mohd Marzuki, Tuan Mohamad Farhan, Mohd Syahir Anwar Hamzah e Nadirul Hasraf Mat Nayan. "A Review of Bioink Development for 3D Bioprinting: Application in Corneal Tissue Regeneration". Journal of Medical Device Technology 3, n.º 2 (30 de dezembro de 2024): 113–19. https://doi.org/10.11113/jmeditec.v3.58.
Texto completo da fonteGhosh, Prasanta Kumar. "Polymeric hydrogel nanoparticles in drug delivery and bioprinting technologies: a review". MGM Journal of Medical Sciences 11, n.º 4 (outubro de 2024): 755–62. https://doi.org/10.4103/mgmj.mgmj_340_24.
Texto completo da fonteDatta, Sudipto. "Advantage of Alginate Bioinks in Biofabrication for Various Tissue Engineering Applications". International Journal of Polymer Science 2023 (7 de junho de 2023): 1–20. http://dx.doi.org/10.1155/2023/6661452.
Texto completo da fonteHe, Yunfan, Soroosh Derakhshanfar, Wen Zhong, Bingyun Li, Feng Lu, Malcolm Xing e Xiaojian Li. "Characterization and Application of Carboxymethyl Chitosan-Based Bioink in Cartilage Tissue Engineering". Journal of Nanomaterials 2020 (12 de março de 2020): 1–11. http://dx.doi.org/10.1155/2020/2057097.
Texto completo da fonteStepanovska, Jana, Monika Supova, Karel Hanzalek, Antonin Broz e Roman Matejka. "Collagen Bioinks for Bioprinting: A Systematic Review of Hydrogel Properties, Bioprinting Parameters, Protocols, and Bioprinted Structure Characteristics". Biomedicines 9, n.º 9 (1 de setembro de 2021): 1137. http://dx.doi.org/10.3390/biomedicines9091137.
Texto completo da fonteLee, Juo, Sangbae Park, Sungmin Lee, Hae Yong Kweon, You-Young Jo, Jungsil Kim, Jong Hoon Chung e Hoon Seonwoo. "Development of Silk Fibroin-Based Non-Crosslinking Thermosensitive Bioinks for 3D Bioprinting". Polymers 15, n.º 17 (28 de agosto de 2023): 3567. http://dx.doi.org/10.3390/polym15173567.
Texto completo da fonteDouglas, Alisa, Yufei Chen, Margarita Elloso, Adam Levschuk e Marc G. Jeschke. "Bioprinting-By-Design of Hydrogel-Based Biomaterials for In Situ Skin Tissue Engineering". Gels 11, n.º 2 (3 de fevereiro de 2025): 110. https://doi.org/10.3390/gels11020110.
Texto completo da fonteXu, Jie, Shuangshuang Zheng, Xueyan Hu, Liying Li, Wenfang Li, Roxanne Parungao, Yiwei Wang, Yi Nie, Tianqing Liu e Kedong Song. "Advances in the Research of Bioinks Based on Natural Collagen, Polysaccharide and Their Derivatives for Skin 3D Bioprinting". Polymers 12, n.º 6 (29 de maio de 2020): 1237. http://dx.doi.org/10.3390/polym12061237.
Texto completo da fontePatrocinio, David, Victor Galván-Chacón, J. Carlos Gómez-Blanco, Sonia P. Miguel, Jorge Loureiro, Maximiano P. Ribeiro, Paula Coutinho, J. Blas Pagador e Francisco M. Sanchez-Margallo. "Biopolymers for Tissue Engineering: Crosslinking, Printing Techniques, and Applications". Gels 9, n.º 11 (10 de novembro de 2023): 890. http://dx.doi.org/10.3390/gels9110890.
Texto completo da fonteAbuhamad, Asmaa Y., Syafira Masri, Nur Izzah Md Fadilah, Mohammed Numan Alamassi, Manira Maarof e Mh Busra Fauzi. "Application of 3D-Printed Bioinks in Chronic Wound Healing: A Scoping Review". Polymers 16, n.º 17 (29 de agosto de 2024): 2456. http://dx.doi.org/10.3390/polym16172456.
Texto completo da fonteAghajani, Mohammad, Hamid Reza Garshasbi, Seyed Morteza Naghib e M. R. Mozafari. "3D Printing of Hydrogel Polysaccharides for Biomedical Applications: A Review". Biomedicines 13, n.º 3 (17 de março de 2025): 731. https://doi.org/10.3390/biomedicines13030731.
Texto completo da fonteGill, Amoljit Singh, Parneet Kaur Deol e Indu Pal Kaur. "An Update on the Use of Alginate in Additive Biofabrication Techniques". Current Pharmaceutical Design 25, n.º 11 (6 de agosto de 2019): 1249–64. http://dx.doi.org/10.2174/1381612825666190423155835.
Texto completo da fonteNashchekina, Yuliya, Anastasia Militsina, Vladimir Elokhovskiy, Elena Ivan’kova, Alexey Nashchekin, Almaz Kamalov e Vladimir Yudin. "Precisely Printable Silk Fibroin/Carboxymethyl Cellulose/Alginate Bioink for 3D Printing". Polymers 16, n.º 8 (9 de abril de 2024): 1027. http://dx.doi.org/10.3390/polym16081027.
Texto completo da fonteKostenko, Anastassia, Che J. Connon e Stephen Swioklo. "Storable Cell-Laden Alginate Based Bioinks for 3D Biofabrication". Bioengineering 10, n.º 1 (23 de dezembro de 2022): 23. http://dx.doi.org/10.3390/bioengineering10010023.
Texto completo da fonteKreimendahl, Franziska, Caroline Kniebs, Ana Margarida Tavares Sobreiro, Thomas Schmitz-Rode, Stefan Jockenhoevel e Anja Lena Thiebes. "FRESH bioprinting technology for tissue engineering – the influence of printing process and bioink composition on cell behavior and vascularization". Journal of Applied Biomaterials & Functional Materials 19 (janeiro de 2021): 228080002110288. http://dx.doi.org/10.1177/22808000211028808.
Texto completo da fonteTeixeira, Maria C., Nicole S. Lameirinhas, João P. F. Carvalho, Armando J. D. Silvestre, Carla Vilela e Carmen S. R. Freire. "A Guide to Polysaccharide-Based Hydrogel Bioinks for 3D Bioprinting Applications". International Journal of Molecular Sciences 23, n.º 12 (12 de junho de 2022): 6564. http://dx.doi.org/10.3390/ijms23126564.
Texto completo da fonteMadhusudhan, Alle, Tejaskumar A. Suhagia, Chhavi Sharma, Saravana Kumar Jaganathan e Shiv Dutt Purohit. "Carbon Based Polymeric Nanocomposite Hydrogel Bioink: A Review". Polymers 16, n.º 23 (27 de novembro de 2024): 3318. http://dx.doi.org/10.3390/polym16233318.
Texto completo da fontePisani, Silvia, Rossella Dorati, Franca Scocozza, Camilla Mariotti, Enrica Chiesa, Giovanna Bruni, Ida Genta, Ferdinando Auricchio, Michele Conti e Bice Conti. "Preliminary investigation on a new natural based poly(gamma‐glutamic acid)/Chitosan bioink". Journal of Biomedical Materials Research Part B: Applied Biomaterials 108, n.º 7 (11 de março de 2020): 2718–32. http://dx.doi.org/10.1002/jbm.b.34602.
Texto completo da fonteCohen, Roni, Ester-Sapir Baruch, Itai Cabilly, Assaf Shapira e Tal Dvir. "Modified ECM-Based Bioink for 3D Printing of Multi-Scale Vascular Networks". Gels 9, n.º 10 (1 de outubro de 2023): 792. http://dx.doi.org/10.3390/gels9100792.
Texto completo da fonteJung, Chi Sung, Byeong Kook Kim, Junhee Lee, Byoung-Hyun Min e Sang-Hyug Park. "Development of Printable Natural Cartilage Matrix Bioink for 3D Printing of Irregular Tissue Shape". Tissue Engineering and Regenerative Medicine 15, n.º 2 (28 de dezembro de 2017): 155–62. http://dx.doi.org/10.1007/s13770-017-0104-8.
Texto completo da fonteFilippova, Svetlana Yu, Oleg I. Kit, Anastasia O. Sitkovskaya, Irina V. Mezhevova, Nadezhda V. Gnennaya, Tatiana V. Shamova, Sofia V. Timofeeva et al. "Photo-curing of GelMA A bioink is more preferable than chemical curing for creating 3D models of breast cancer tumor growth." Journal of Clinical Oncology 40, n.º 16_suppl (1 de junho de 2022): e15067-e15067. http://dx.doi.org/10.1200/jco.2022.40.16_suppl.e15067.
Texto completo da fonteWu, Kevin Y., Rahma Osman, Natalie Kearn e Ananda Kalevar. "Three-Dimensional Bioprinting for Retinal Tissue Engineering". Biomimetics 9, n.º 12 (1 de dezembro de 2024): 733. https://doi.org/10.3390/biomimetics9120733.
Texto completo da fonteCastro Thomazi, Vinicius, Natasha Maurmann e Patricia Pranke. "Bioprinting for Skin: Current Approaches, Technological Advancements and the Role of Artificial Intelligence". International Journal of Advances in Medical Biotechnology - IJAMB 6, n.º 2 (1 de dezembro de 2024): 114–30. https://doi.org/10.52466/ijamb.v6i2.135.
Texto completo da fonteVieira de Souza, Thaís, Sonia Maria Malmonge e Arnaldo R. Santos. "Development of a chitosan and hyaluronic acid hydrogel with potential for bioprinting utilization: A preliminary study". Journal of Biomaterials Applications 36, n.º 2 (9 de junho de 2021): 358–71. http://dx.doi.org/10.1177/08853282211024164.
Texto completo da fonteMohd, Nurulhuda, Masfueh Razali, Mariyam Jameelah Ghazali e Noor Hayaty Abu Kasim. "Current Advances of Three-Dimensional Bioprinting Application in Dentistry: A Scoping Review". Materials 15, n.º 18 (15 de setembro de 2022): 6398. http://dx.doi.org/10.3390/ma15186398.
Texto completo da fonteKhalida Fakhruddin, Belal Yahya Hussein Al-Tam, Abdallah Nasser Sayed, Zarin Mesbah, Angelique Maryann Pereira Anthony Jerald Pereira, Al Ameerah Elza Toto Syaputri e Mohamad Ikhwan Jamaludin. "3D Bioprinting: Introduction and Recent Advancement". Journal of Medical Device Technology 1, n.º 1 (8 de outubro de 2022): 25–29. http://dx.doi.org/10.11113/jmeditec.v1n1.13.
Texto completo da fontePahlevanzadeh, Farnoosh, Hamidreza Mokhtari, Hamid Reza Bakhsheshi-Rad, Rahmatollah Emadi, Mahshid Kharaziha, Ali Valiani, S. Ali Poursamar, Ahmad Fauzi Ismail, Seeram RamaKrishna e Filippo Berto. "Recent Trends in Three-Dimensional Bioinks Based on Alginate for Biomedical Applications". Materials 13, n.º 18 (8 de setembro de 2020): 3980. http://dx.doi.org/10.3390/ma13183980.
Texto completo da fonteSzychlinska, Marta Anna, Fabio Bucchieri, Alberto Fucarino, Alfredo Ronca e Ugo D’Amora. "Three-Dimensional Bioprinting for Cartilage Tissue Engineering: Insights into Naturally-Derived Bioinks from Land and Marine Sources". Journal of Functional Biomaterials 13, n.º 3 (12 de agosto de 2022): 118. http://dx.doi.org/10.3390/jfb13030118.
Texto completo da fonteTuladhar, Slesha, Scott Clark e Ahasan Habib. "Tuning Shear Thinning Factors of 3D Bio-Printable Hydrogels Using Short Fiber". Materials 16, n.º 2 (6 de janeiro de 2023): 572. http://dx.doi.org/10.3390/ma16020572.
Texto completo da fonteKanokova, Denisa, Roman Matejka, Margit Zaloudkova, Jan Zigmond, Monika Supova e Jana Matejkova. "Active Media Perfusion in Bioprinted Highly Concentrated Collagen Bioink Enhances the Viability of Cell Culture and Substrate Remodeling". Gels 10, n.º 5 (5 de maio de 2024): 316. http://dx.doi.org/10.3390/gels10050316.
Texto completo da fonteIbrahim, Eman Assem, Moamen Mohsen Sarhan, Salah Ezzelarab e Mona K. Marei. "A scoping review on the potential of three-dimensional bioprinting in auricular cartilage regeneration". SRM Journal of Research in Dental Sciences 15, n.º 3 (julho de 2024): 111–20. http://dx.doi.org/10.4103/srmjrds.srmjrds_43_24.
Texto completo da fonteNaranda, Jakob, Matej Bračič, Matjaž Vogrin e Uroš Maver. "Recent Advancements in 3D Printing of Polysaccharide Hydrogels in Cartilage Tissue Engineering". Materials 14, n.º 14 (16 de julho de 2021): 3977. http://dx.doi.org/10.3390/ma14143977.
Texto completo da fonteDoyle, S., D. Winrow, T. Aregbesola, J. Martin, E. Pernevik, V. Kuzmenko, L. Howard, K. Thompson, M. Johnson e C. Coleman. "FABRICATION OF A HIGH-THROUGHPUT 3D-PRINTED OSTEOGENIC CORAL-CONTAINING SCAFFOLD". Orthopaedic Proceedings 106-B, SUPP_1 (2 de janeiro de 2024): 129. http://dx.doi.org/10.1302/1358-992x.2024.1.129.
Texto completo da fonteMajhi, P. S., e K. Pramanik. "Development of three‐dimensional printed microfibrous structures using sodium alginate/silk fibroin bioink for tissue engineering application". Materialwissenschaft und Werkstofftechnik 54, n.º 12 (dezembro de 2023): 1542–53. http://dx.doi.org/10.1002/mawe.202200215.
Texto completo da fonteMatejkova, Jana, Denisa Kanokova, Monika Supova e Roman Matejka. "A New Method for the Production of High-Concentration Collagen Bioinks with Semiautonomic Preparation". Gels 10, n.º 1 (15 de janeiro de 2024): 66. http://dx.doi.org/10.3390/gels10010066.
Texto completo da fonteGalocha-León, Cristina, Cristina Antich, Beatriz Clares-Naveros, Ana Voltes-Martínez, Juan Antonio Marchal e Patricia Gálvez-Martín. "Design and Characterization of Biomimetic Hybrid Construct Based on Hyaluronic Acid and Alginate Bioink for Regeneration of Articular Cartilage". Pharmaceutics 16, n.º 11 (7 de novembro de 2024): 1422. http://dx.doi.org/10.3390/pharmaceutics16111422.
Texto completo da fonteNguyen, Thai Phuong Thao, Phuong Hien Le e Thi-Hiep Nguyen. "A review on injectable hydrogels from xanthan gum for biomedical applications". Ministry of Science and Technology, Vietnam 64, n.º 1 (15 de março de 2022): 53–62. http://dx.doi.org/10.31276/vjste.64(1).53-62.
Texto completo da fonteZhang, Yi, Dezhi Zhou, Jianwei Chen, Xiuxiu Zhang, Xinda Li, Wenxiang Zhao e Tao Xu. "Biomaterials Based on Marine Resources for 3D Bioprinting Applications". Marine Drugs 17, n.º 10 (28 de setembro de 2019): 555. http://dx.doi.org/10.3390/md17100555.
Texto completo da fonteLoureiro, Jorge, Sónia P. Miguel, Victor Galván-Chacón, David Patrocinio, José Blas Pagador, Francisco M. Sánchez-Margallo, Maximiano P. Ribeiro e Paula Coutinho. "Three-Dimensionally Printed Hydrogel Cardiac Patch for Infarct Regeneration Based on Natural Polysaccharides". Polymers 15, n.º 13 (26 de junho de 2023): 2824. http://dx.doi.org/10.3390/polym15132824.
Texto completo da fonteMasri, Syafira, Mazlan Zawani, Izzat Zulkiflee, Atiqah Salleh, Nur Izzah Md Fadilah, Manira Maarof, Adzim Poh Yuen Wen et al. "Cellular Interaction of Human Skin Cells towards Natural Bioink via 3D-Bioprinting Technologies for Chronic Wound: A Comprehensive Review". International Journal of Molecular Sciences 23, n.º 1 (1 de janeiro de 2022): 476. http://dx.doi.org/10.3390/ijms23010476.
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