TY - JOUR
T1 - Poly(N-isopropylacrylamide)-based thermoresponsive surfaces provide new types of biomedical applications
AU - Nagase, Kenichi
AU - Yamato, Masayuki
AU - Kanazawa, Hideko
AU - Okano, Teruo
N1 - Funding Information:
Funding: This work was supported by Creation of Innovation Centers for Advanced Interdisciplinary Research Areas Program of the Project for Developing Innovation Systems ‘‘Cell Sheet Tissue Engineering Center (CSTEC)” funded by the Ministry of Education, Culture, Sports, Science, and Technology (MEXT) of Japan , SENTAN from the Japan Science and Technology Agency (JST) , A3 Foresight Program “Nano-Biomaterials and Delivery Strategies in Regenerative Medicine for Intractable Diseases” from the Japan Society for the Promotion of Science , and by a Grant-in-aid for Scientific Research (No. 26420714 ) from the JSPS.
Publisher Copyright:
© 2017 The Authors
PY - 2018/1
Y1 - 2018/1
N2 - Thermoresponsive surfaces, prepared by grafting of poly(N-isopropylacrylamide) (PIPAAm) or its copolymers, have been investigated for biomedical applications. Thermoresponsive cell culture dishes that show controlled cell adhesion and detachment following external temperature changes, represent a promising application of thermoresponsive surfaces. These dishes can be used to fabricate cell sheets, which are currently used as effective therapies for patients. Thermoresponsive microcarriers for large-scale cell cultivation have also been developed by taking advantage of the thermally modulated cell adhesion and detachment properties of thermoresponsive surfaces. Furthermore, thermoresponsive bioseparation systems using thermoresponsive surfaces for separating and purifying pharmaceutical proteins and therapeutic cells have been developed, with the separation systems able to maintain their activity and biological potency throughout the procedure. These applications of thermoresponsive surfaces have been improved with progress in preparation techniques of thermoresponsive surfaces, such as polymerization methods, and surface modification techniques. In the present review, the various types of PIPAAm-based thermoresponsive surfaces are summarized by describing their preparation methods, properties, and successful biomedical applications.
AB - Thermoresponsive surfaces, prepared by grafting of poly(N-isopropylacrylamide) (PIPAAm) or its copolymers, have been investigated for biomedical applications. Thermoresponsive cell culture dishes that show controlled cell adhesion and detachment following external temperature changes, represent a promising application of thermoresponsive surfaces. These dishes can be used to fabricate cell sheets, which are currently used as effective therapies for patients. Thermoresponsive microcarriers for large-scale cell cultivation have also been developed by taking advantage of the thermally modulated cell adhesion and detachment properties of thermoresponsive surfaces. Furthermore, thermoresponsive bioseparation systems using thermoresponsive surfaces for separating and purifying pharmaceutical proteins and therapeutic cells have been developed, with the separation systems able to maintain their activity and biological potency throughout the procedure. These applications of thermoresponsive surfaces have been improved with progress in preparation techniques of thermoresponsive surfaces, such as polymerization methods, and surface modification techniques. In the present review, the various types of PIPAAm-based thermoresponsive surfaces are summarized by describing their preparation methods, properties, and successful biomedical applications.
KW - Bioseparation
KW - Cell sheet
KW - Regenerative medicine
KW - Surface modification
KW - Thermoresponsive surface
KW - Tissue engineering
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U2 - 10.1016/j.biomaterials.2017.10.026
DO - 10.1016/j.biomaterials.2017.10.026
M3 - Review article
C2 - 29096399
AN - SCOPUS:85032454341
SN - 0142-9612
VL - 153
SP - 27
EP - 48
JO - Biomaterials
JF - Biomaterials
ER -