TY - JOUR
T1 - Polyurethanes and Their Biomedical Applications
AU - Azarmgin, Sepideh
AU - Torabinejad, Bahman
AU - Kalantarzadeh, Rooja
AU - Garcia, Heriberto
AU - Velazquez, Carlo Alberto
AU - Lopez, Gino
AU - Vazquez, Marisol
AU - Rosales, Gabriel
AU - Heidari, Behzad Shiroud
AU - Davachi, Seyed Mohammad
N1 - Publisher Copyright:
© 2024 American Chemical Society.
PY - 2024/11/11
Y1 - 2024/11/11
N2 - The tunable mechanical properties of polyurethanes (PUs), due to their extensive structural diversity and biocompatibility, have made them promising materials for biomedical applications. Scientists can address PUs’ issues with platelet absorption and thrombus formation owing to their modifiable surface. In recent years, PUs have been extensively utilized in biomedical applications because of their chemical stability, biocompatibility, and minimal cytotoxicity. Moreover, addressing challenges related to degradation and recycling has led to a growing focus on the development of biobased polyurethanes as a current focal point. PUs are widely implemented in cardiovascular fields and as implantable materials for internal organs due to their favorable biocompatibility and physicochemical properties. Additionally, they show great potential in bone tissue engineering as injectable grafts or implantable scaffolds. This paper reviews the synthesis methods, physicochemical properties, and degradation pathways of PUs and summarizes recent progress in applying different types of polyurethanes in various biomedical applications, from wound repair to hip replacement. Finally, we discuss the challenges and future directions for the translation of novel polyurethane materials into biomedical applications.
AB - The tunable mechanical properties of polyurethanes (PUs), due to their extensive structural diversity and biocompatibility, have made them promising materials for biomedical applications. Scientists can address PUs’ issues with platelet absorption and thrombus formation owing to their modifiable surface. In recent years, PUs have been extensively utilized in biomedical applications because of their chemical stability, biocompatibility, and minimal cytotoxicity. Moreover, addressing challenges related to degradation and recycling has led to a growing focus on the development of biobased polyurethanes as a current focal point. PUs are widely implemented in cardiovascular fields and as implantable materials for internal organs due to their favorable biocompatibility and physicochemical properties. Additionally, they show great potential in bone tissue engineering as injectable grafts or implantable scaffolds. This paper reviews the synthesis methods, physicochemical properties, and degradation pathways of PUs and summarizes recent progress in applying different types of polyurethanes in various biomedical applications, from wound repair to hip replacement. Finally, we discuss the challenges and future directions for the translation of novel polyurethane materials into biomedical applications.
KW - Biodegradation
KW - Biomedical applications
KW - Polyurethane
KW - Synthesis and properties
UR - http://www.scopus.com/inward/record.url?scp=85207266507&partnerID=8YFLogxK
U2 - 10.1021/acsbiomaterials.4c01352
DO - 10.1021/acsbiomaterials.4c01352
M3 - Review article
C2 - 39436687
AN - SCOPUS:85207266507
SN - 2373-9878
VL - 10
SP - 6828
EP - 6859
JO - ACS Biomaterials Science and Engineering
JF - ACS Biomaterials Science and Engineering
IS - 11
ER -