Jalani Ghulam, Jung Chan Woo, Lee Jae Sang, Lim Dong Woo
Department of Bionano Engineering, College of Engineering Sciences, Hanyang University, Education Research Industry Cluster at Ansan Campus, Ansan, South Korea.
Int J Nanomedicine. 2014 May 6;9 Suppl 1(Suppl 1):33-49. doi: 10.2147/IJN.S51842. eCollection 2014.
Stimuli-responsive, polymer-based nanostructures with anisotropic compartments are of great interest as advanced materials because they are capable of switching their shape via environmentally-triggered conformational changes, while maintaining discrete compartments. In this study, a new class of stimuli-responsive, anisotropic nanofiber scaffolds with physically and chemically distinct compartments was prepared via electrohydrodynamic cojetting with side-by-side needle geometry. These nanofibers have a thermally responsive, physically-crosslinked compartment, and a chemically-crosslinked compartment at the nanoscale. The thermally responsive compartment is composed of physically crosslinkable poly(N-isopropylacrylamide) poly(NIPAM) copolymers, and poly(NIPAM-co-stearyl acrylate) poly(NIPAM-co-SA), while the thermally-unresponsive compartment is composed of polyethylene glycol dimethacrylates. The two distinct compartments were physically crosslinked by the hydrophobic interaction of the stearyl chains of poly(NIPAM-co-SA) or chemically stabilized via ultraviolet irradiation, and were swollen in physiologically relevant buffers due to their hydrophilic polymer networks. Bicompartmental nanofibers with the physically-crosslinked network of the poly(NIPAM-co-SA) compartment showed a thermally-triggered shape change due to thermally-induced aggregation of poly(NIPAM-co-SA). Furthermore, when bovine serum albumin and dexamethasone phosphate were separately loaded into each compartment, the bicompartmental nanofibers with anisotropic actuation exhibited decoupled, controlled release profiles of both drugs in response to a temperature. A new class of multicompartmental nanofibers could be useful for advanced nanofiber scaffolds with two or more drugs released with different kinetics in response to environmental stimuli.
具有各向异性隔室的刺激响应性聚合物基纳米结构作为先进材料备受关注,因为它们能够通过环境触发的构象变化来改变形状,同时保持离散的隔室。在本研究中,通过采用并排针状几何结构的电流体动力学共喷射制备了一类新型的具有物理和化学性质不同隔室的刺激响应性各向异性纳米纤维支架。这些纳米纤维在纳米尺度上具有一个热响应性的物理交联隔室和一个化学交联隔室。热响应隔室由可物理交联的聚(N-异丙基丙烯酰胺)(聚NIPAM)共聚物以及聚(NIPAM-共-硬脂酰丙烯酸酯)(聚NIPAM-共-SA)组成,而热不响应隔室由聚乙二醇二甲基丙烯酸酯组成。这两个不同的隔室通过聚(NIPAM-共-SA)的硬脂酰链的疏水相互作用进行物理交联,或通过紫外线照射进行化学稳定,并且由于其亲水性聚合物网络而在生理相关缓冲液中溶胀。具有聚(NIPAM-共-SA)隔室物理交联网络的双隔室纳米纤维由于聚(NIPAM-共-SA)的热诱导聚集而呈现出热触发的形状变化。此外,当牛血清白蛋白和地塞米松磷酸分别加载到每个隔室中时,具有各向异性驱动的双隔室纳米纤维在温度响应下表现出两种药物的解耦、可控释放曲线。一类新型的多隔室纳米纤维对于具有两种或更多种药物以不同动力学响应环境刺激而释放的先进纳米纤维支架可能是有用的。