Patel Dinesh K, Seo Yu-Ri, Lim Ki-Taek
The Institute of Forest Science, Kangwon National University, Chuncheon 24341, Republic of Korea.
Department of Biosystems Engineering, College of Agriculture and Life Sciences, Kangwon National University, Chuncheon 24341, Republic of Korea.
Stem Cells Int. 2019 Apr 2;2019:9831853. doi: 10.1155/2019/9831853. eCollection 2019.
Stimuli-responsive materials, also known as smart materials, can change their structure and, consequently, original behavior in response to external or internal stimuli. This is due to the change in the interactions between the various functional groups. Graphene, which is a single layer of carbon atoms with a hexagonal morphology and has excellent physiochemical properties with a high surface area, is frequently used in materials science for various applications. Numerous surface functionalizations are possible for the graphene structure with different functional groups, which can be used to alter the properties of native materials. Graphene-based hybrids exhibit significant improvements in their native properties. Since functionalized graphene contains several reactive groups, the behavior of such hybrid materials can be easily tuned by changing the external conditions, which is very useful in biomedical applications. Enhanced cell proliferation and differentiation of stem cells was reported on the surfaces of graphene-based hybrids with negligible cytotoxicity. In addition, pH or light-induced drug delivery with a controlled release rate was observed for such nanohybrids. Besides, notable improvements in antimicrobial activity were observed for nanohybrids, which demonstrated their potential for biomedical applications. This review describes the physiochemical properties of graphene and graphene-based hybrid materials for stimuli-responsive drug delivery, tissue engineering, and antimicrobial applications.
刺激响应材料,也称为智能材料,能够响应外部或内部刺激而改变其结构,进而改变其原始行为。这是由于各种官能团之间相互作用的变化所致。石墨烯是具有六边形形态的单层碳原子,具有优异的物理化学性质和高表面积,在材料科学中常用于各种应用。石墨烯结构可以通过不同的官能团进行多种表面功能化,这些官能团可用于改变天然材料的性质。基于石墨烯的杂化材料在其天然性质方面有显著改善。由于功能化石墨烯含有多个反应基团,这种杂化材料的行为可以通过改变外部条件轻松调节,这在生物医学应用中非常有用。据报道,基于石墨烯的杂化材料表面上干细胞的增殖和分化增强,且细胞毒性可忽略不计。此外,观察到此类纳米杂化材料具有pH或光诱导的药物递送且释放速率可控。此外,纳米杂化材料的抗菌活性有显著提高,这证明了它们在生物医学应用中的潜力。本综述描述了用于刺激响应性药物递送、组织工程和抗菌应用的石墨烯及基于石墨烯的杂化材料的物理化学性质。