School of Materials, The University of Manchester, Manchester, UK.
Acta Biomater. 2013 Jan;9(1):4609-17. doi: 10.1016/j.actbio.2012.08.044. Epub 2012 Sep 8.
Nature has evolved a variety of creative approaches to many aspects of materials synthesis and microstructural control. Molecular self-assembly is a simple and efficient way to fabricate complex nanostructures such as hydrogels. We have recently investigated the gelation properties of a series of ionic-complementary peptides based on the alternation of non-polar hydrophobic and polar hydrophilic residues. In this work we focus on one specific octapeptide, FEFEFKFK (F, phenylalanine; E, glutamic acid; K, lysine). This peptide was shown to self-assemble in solution and form β-sheet-rich nanofibres which, above a critical gelation concentration, entangle to form a self-supporting hydrogel. The fibre morphology of the hydrogel was analysed using transmission electron microscopy and cryo-scanning electron microscopy illustrating a dense fibrillar network of nanometer size fibres. Oscillatory rheology results show that the hydrogel possesses visco-elastic properties. Bovine chondrocytes were used to assess the biocompatibility of the scaffolds over 21 days under two-dimensional (2-D) and three-dimensional (3-D) cell culture conditions, particularly looking at cell morphology, proliferation and matrix deposition. 2-D culture resulted in cell viability and collagen type I deposition. In 3-D culture the mechanically stable gel was shown to support the viability of cells, the retention of cell morphology and collagen type II deposition. Subsequently the scaffold may serve as a template for cartilage tissue engineering.
大自然在材料合成和微观结构控制的许多方面都进化出了各种创造性的方法。分子自组装是一种制造复杂纳米结构(如水凝胶)的简单而有效的方法。我们最近研究了一系列基于非极性疏水性和亲水性残基交替的离子互补肽的凝胶化性质。在这项工作中,我们专注于一种特定的八肽,FEFEFKFK(F,苯丙氨酸;E,谷氨酸;K,赖氨酸)。该肽在溶液中自组装并形成富含β-折叠的纳米纤维,在超过临界凝胶浓度时,这些纤维缠结形成自支撑水凝胶。使用透射电子显微镜和 cryo-scanning 电子显微镜分析水凝胶的纤维形态,说明了纳米尺寸纤维的致密纤维状网络。振荡流变学结果表明,水凝胶具有粘弹性。牛软骨细胞用于评估支架在二维(2-D)和三维(3-D)细胞培养条件下 21 天的生物相容性,特别是观察细胞形态、增殖和基质沉积。2-D 培养导致细胞活力和 I 型胶原沉积。在 3-D 培养中,机械稳定的凝胶被证明可以支持细胞的活力、细胞形态的保留和 II 型胶原的沉积。随后,该支架可用作软骨组织工程的模板。