Shin Yong Cheol, Kim Chuntae, Song Su-Jin, Jun Seungwon, Kim Chang-Seok, Hong Suck Won, Hyon Suong-Hyu, Han Dong-Wook, Oh Jin-Woo
Research Center for Energy Convergence Technology, Pusan National University, Busan 46241, Republic of Korea.
Department of Nanofusion Technology, College of Nanoscience & Nanotechnology, Pusan National University, Busan 46241, Republic of Korea.
Nanotheranostics. 2018 Feb 15;2(2):144-156. doi: 10.7150/ntno.22433. eCollection 2018.
Recently, there have been tremendous efforts to develop the biofunctional scaffolds by incorporating various biochemical factors. In the present study, we fabricated poly(lactic--glycolic acid) (PLGA) nanofiber sheets decorated with graphene oxide (GO) and RGD peptide. The decoration of GO and RGD peptide was readily achieved by using RGD peptide-displaying M13 bacteriophage (RGD-M13 phage) and electrospinning. Furthermore, the aligned GO-decorated PLGA/RGD peptide (GO-PLGA/RGD) ternary nanofiber sheets were prepared by magnetic field-assisted electrospinning, and their potentials as bifunctional scaffolds for facilitating myogenesis were explored. We characterized the physicochemical and mechanical properties of the sheets by scanning electron microscopy, Raman spectroscopy, contact angle measurement, and tensile test. In addition, the C2C12 skeletal myoblasts were cultured on the aligned GO-PLGA/RGD nanofiber sheets, and their cellular behaviors, including initial attachment, proliferation and myogenic differentiation, were evaluated. Our results revealed that the GO-PLGA/RGD nanofiber sheets had suitable physicochemical and mechanical properties for supporting cell growth, and could significantly promote the spontaneous myogenic differentiation of C2C12 skeletal myoblasts. Moreover, it was revealed that the myogenic differentiation was further accelerated on the aligned GO-PLGA/RGD nanofiber sheets due to the synergistic effects of RGD peptide, GO and aligned nanofiber structure. Therefore, , it is suggested that the aligned GO-PLGA/RGD ternary nanofiber sheets are one of the most promising approaches for facilitating myogenesis and promoting skeletal tissue regeneration.
最近,人们为了通过整合各种生物化学因子来开发生物功能支架付出了巨大努力。在本研究中,我们制备了用氧化石墨烯(GO)和RGD肽修饰的聚乳酸-乙醇酸共聚物(PLGA)纳米纤维片。利用展示RGD肽的M13噬菌体(RGD-M13噬菌体)和静电纺丝技术,很容易实现GO和RGD肽的修饰。此外,通过磁场辅助静电纺丝制备了排列整齐的GO修饰的PLGA/RGD肽(GO-PLGA/RGD)三元纳米纤维片,并探索了它们作为促进肌生成的双功能支架的潜力。我们通过扫描电子显微镜、拉曼光谱、接触角测量和拉伸试验对这些片材的物理化学和力学性能进行了表征。此外,将C2C12骨骼肌成肌细胞培养在排列整齐的GO-PLGA/RGD纳米纤维片上,并评估了它们的细胞行为,包括初始附着、增殖和肌源性分化。我们的结果表明,GO-PLGA/RGD纳米纤维片具有适合支持细胞生长的物理化学和力学性能,并且可以显著促进C2C12骨骼肌成肌细胞的自发肌源性分化。此外,研究发现,由于RGD肽、GO和排列整齐的纳米纤维结构的协同作用,排列整齐的GO-PLGA/RGD纳米纤维片上的肌源性分化进一步加速。因此,有人认为排列整齐的GO-PLGA/RGD三元纳米纤维片是促进肌生成和促进骨骼组织再生的最有前途的方法之一。