Feng Yuan, Xiao Kecen, He Yuanyuan, Du Bohong, Hong Jianghui, Yin Hang, Lu Dan, Luo Feng, Li Zhen, Li Jiehua, Tan Hong, Fu Qiang
College of Polymer Science and Engineering, State Key Laboratory of Polymer Materials Engineering, Sichuan University, Chengdu 610065, China.
Department of Otorhinolaryngology, Head & Neck Surgery, West China Hospital, Sichuan University, Chengdu 610065, China.
Mater Sci Eng C Mater Biol Appl. 2021 Feb;121:111820. doi: 10.1016/j.msec.2020.111820. Epub 2020 Dec 24.
The functionalization of tough and biodegradable hydrogels is an important way to broaden their applications in biomedical field. However, most of the hydrophobic functional drugs are difficult to incorporate with the hydrogels. In this work, curcumin (Cur), a hydrophobic functional drug, was chosen to composite with polyurethane (PU) to obtain PU-Cur hydrogels by a direct and simple in-situ copolymerization. The incorporation of curcumin in PU hydrogel increases the crosslink but reduces the hydrophilicity and degradation rate of PU-Cur hydrogels. Thus, it can increase the mechanical strength to a maximum of 6.4±0.8 MPa and initial modulus to a maximum of 3.0±0.4 MPa. More importantly, curcumin incorporated in PU networks is not deactivated. The degradation products of PU-Curs at relatively low concentrations (2.5 mg/mL) can scavenge free radicals very efficiently (maximum over 90%), which exhibits strong antioxidant properties to improve wound healing. Moreover, based on the photochemical activity of curcumin, notable inhibition effects of the degradation products of PU-Curs against bacteria (maximum over 80%) and cancer cells are demonstrated with blue light treatment as a photodynamic therapy (PDT). Therefore, the beneficial effects of curcumin are retained in PU-Cur hydrogels, suggesting potential use as wound dressings or tumor isolation membranes. This work proposes a promising strategy to combine hydrophobic functional drugs with hydrophilic hydrogels for applications in a wide range of biomaterials.
坚韧且可生物降解水凝胶的功能化是拓宽其在生物医学领域应用的重要途径。然而,大多数疏水性功能药物难以与水凝胶结合。在这项工作中,选择疏水性功能药物姜黄素(Cur)与聚氨酯(PU)复合,通过直接且简单的原位共聚获得PU-Cur水凝胶。姜黄素掺入PU水凝胶中增加了交联度,但降低了PU-Cur水凝胶的亲水性和降解速率。因此,它可将机械强度提高到最大6.4±0.8 MPa,初始模量提高到最大3.0±0.4 MPa。更重要的是,掺入PU网络中的姜黄素未失活。PU-Cur在相对较低浓度(2.5 mg/mL)下的降解产物能够非常有效地清除自由基(最大超过90%),表现出强大的抗氧化性能以促进伤口愈合。此外,基于姜黄素的光化学活性,通过蓝光处理作为光动力疗法(PDT),证明了PU-Cur的降解产物对细菌(最大超过80%)和癌细胞具有显著的抑制作用。因此,姜黄素的有益作用在PU-Cur水凝胶中得以保留,表明其有潜力用作伤口敷料或肿瘤隔离膜。这项工作提出了一种将疏水性功能药物与亲水性水凝胶相结合的有前景的策略,用于广泛的生物材料应用。