Результаты исследований: Научные публикации в периодических изданиях › Обзорная статья › Рецензирование
Development of Bioactive Scaffolds for Orthopedic Applications by Designing Additively Manufactured Titanium Porous Structures: A Critical Review. / Kiselevskiy, Mikhail V.; Anisimova, Natalia Yu.; Kapustin, Alexei V.; Ryzhkin, Alexander A.; Kuznetsova, Daria N.; Polyakova, Veronika V.; Enikeev, Nariman A.
в: Biomimetics, Том 8, № 7, 546, 13.11.2023.Результаты исследований: Научные публикации в периодических изданиях › Обзорная статья › Рецензирование
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TY - JOUR
T1 - Development of Bioactive Scaffolds for Orthopedic Applications by Designing Additively Manufactured Titanium Porous Structures: A Critical Review
AU - Kiselevskiy, Mikhail V.
AU - Anisimova, Natalia Yu.
AU - Kapustin, Alexei V.
AU - Ryzhkin, Alexander A.
AU - Kuznetsova, Daria N.
AU - Polyakova, Veronika V.
AU - Enikeev, Nariman A.
PY - 2023/11/13
Y1 - 2023/11/13
N2 - We overview recent findings achieved in the field of model-driven development of additively manufactured porous materials for the development of a new generation of bioactive implants for orthopedic applications. Porous structures produced from biocompatible titanium alloys using selective laser melting can present a promising material to design scaffolds with regulated mechanical properties and with the capacity to be loaded with pharmaceutical products. Adjusting pore geometry, one could control elastic modulus and strength/fatigue properties of the engineered structures to be compatible with bone tissues, thus preventing the stress shield effect when replacing a diseased bone fragment. Adsorption of medicals by internal spaces would make it possible to emit the antibiotic and anti-tumor agents into surrounding tissues. The developed internal porosity and surface roughness can provide the desired vascularization and osteointegration. We critically analyze the recent advances in the field featuring model design approaches, virtual testing of the designed structures, capabilities of additive printing of porous structures, biomedical issues of the engineered scaffolds, and so on. Special attention is paid to highlighting the actual problems in the field and the ways of their solutions.
AB - We overview recent findings achieved in the field of model-driven development of additively manufactured porous materials for the development of a new generation of bioactive implants for orthopedic applications. Porous structures produced from biocompatible titanium alloys using selective laser melting can present a promising material to design scaffolds with regulated mechanical properties and with the capacity to be loaded with pharmaceutical products. Adjusting pore geometry, one could control elastic modulus and strength/fatigue properties of the engineered structures to be compatible with bone tissues, thus preventing the stress shield effect when replacing a diseased bone fragment. Adsorption of medicals by internal spaces would make it possible to emit the antibiotic and anti-tumor agents into surrounding tissues. The developed internal porosity and surface roughness can provide the desired vascularization and osteointegration. We critically analyze the recent advances in the field featuring model design approaches, virtual testing of the designed structures, capabilities of additive printing of porous structures, biomedical issues of the engineered scaffolds, and so on. Special attention is paid to highlighting the actual problems in the field and the ways of their solutions.
UR - https://www.mendeley.com/catalogue/047c4322-aecc-3be3-b73c-e75d6eb71268/
U2 - 10.3390/biomimetics8070546
DO - 10.3390/biomimetics8070546
M3 - Review article
C2 - 37999187
VL - 8
JO - Biomimetics
JF - Biomimetics
SN - 2313-7673
IS - 7
M1 - 546
ER -
ID: 114104246