TY - CHAP
T1 - Bio Mimicking of Extracellular Matrix
AU - Ghosh, Moumita
AU - Halperin-Sternfeld, Michal
AU - Adler-Abramovich, Lihi
N1 - Publisher Copyright: © 2019, Springer Nature Singapore Pte Ltd.
PY - 2019
Y1 - 2019
N2 - Biomaterials play a critical role in regenerative strategies such as stem cell-based therapies and tissue engineering, aiming to replace, remodel, regenerate, or support damaged tissues and organs. The design of appropriate three-dimensional (3D) scaffolds is crucial for generating bio-inspired replacement tissues. These scaffolds are primarily composed of degradable or non-degradable biomaterials and can be employed as cells, growth factors, or drug carriers. Naturally derived and synthetic biomaterials have been widely used for these purposes, but the ideal biomaterial remains to be found. Researchers from diversified fields have attempted to design and fabricate novel biomaterials, aiming to find novel theranostic approaches for tissue engineering and regenerative medicine. Since no single biomaterial has been found to possess all the necessary characteristics for an ideal performance, over the years scientists have tried to develop composite biomaterials that complement and combine the beneficial properties of multiple materials into a superior matrix. Herein, we highlight the structural features and performance of various biomaterials and their application in regenerative medicine and for enhanced tissue engineering approaches.
AB - Biomaterials play a critical role in regenerative strategies such as stem cell-based therapies and tissue engineering, aiming to replace, remodel, regenerate, or support damaged tissues and organs. The design of appropriate three-dimensional (3D) scaffolds is crucial for generating bio-inspired replacement tissues. These scaffolds are primarily composed of degradable or non-degradable biomaterials and can be employed as cells, growth factors, or drug carriers. Naturally derived and synthetic biomaterials have been widely used for these purposes, but the ideal biomaterial remains to be found. Researchers from diversified fields have attempted to design and fabricate novel biomaterials, aiming to find novel theranostic approaches for tissue engineering and regenerative medicine. Since no single biomaterial has been found to possess all the necessary characteristics for an ideal performance, over the years scientists have tried to develop composite biomaterials that complement and combine the beneficial properties of multiple materials into a superior matrix. Herein, we highlight the structural features and performance of various biomaterials and their application in regenerative medicine and for enhanced tissue engineering approaches.
KW - Biomaterials
KW - Extracellular matrix
KW - Hydrogels
KW - Peptides
KW - Scaffolds
KW - Supramolecular polymers
UR - http://www.scopus.com/inward/record.url?scp=85074848731&partnerID=8YFLogxK
U2 - https://doi.org/10.1007/978-981-13-9791-2_12
DO - https://doi.org/10.1007/978-981-13-9791-2_12
M3 - فصل
C2 - 31713206
T3 - Advances in Experimental Medicine and Biology
SP - 371
EP - 399
BT - Advances in Experimental Medicine and Biology
ER -