Centre for Research, Anna University , Chennai 600025, Tamil Nadu, India.
ACS Appl Mater Interfaces. 2017 May 24;9(20):16939-16950. doi: 10.1021/acsami.7b05842. Epub 2017 May 12.
The present study illustrates the progress of the wheat grass bioactive-reinforced collagen-based aerogel system as an instructive scaffold for collagen turnover and angiogenesis for wound healing applications. The reinforcement of wheat grass bioactives in collagen resulted in the design and development of aerogels with enhanced physicochemical and biomechanical properties due to the intermolecular interaction between the active growth factors of wheat grass and collagen fibril. Differential scanning calorimetry analysis revealed an enhanced denaturation temperature when compared to those of native collagen aerogels. Fourier transform infrared spectroscopy analysis confirmed that the reinforcement of bioactives in the wheat grass did not affect the structural integrity of the collagen molecule. Additionally, the reinforced biomaterial with a systematic absorptive morphology resulted in a three-dimensional (3D) sponge-like aerogel exhibiting a potent highly oriented 3D structural assembly that showed increased water retention ability and substance permeability that would enable the passage of nutrients and gaseous components for cellular growth. Furthermore, the cumulative effect of the growth factors in wheat grass and the collagen molecule augments the angiogenic ability and collagen production of the aerogel by restoration of the damaged tissue thereby making it a potential 3D wound dressing scaffold. The results were confirmed by in vivo wound healing assays. This study shows the possibility for progress of a biocompatible, biodegradable, and nonadhesive nutraceutical-reinforced collagen aerogel as an instructive scaffold with good antimicrobial properties for collagen turnover and angiogenic response for wound healing applications.
本研究说明了小麦草生物活性增强的胶原基气凝胶系统作为胶原转化和血管生成的指导支架在伤口愈合应用中的进展。由于小麦草的活性生长因子与胶原纤维之间的分子间相互作用,小麦草生物活性物质在胶原中的增强导致了具有增强的物理化学和生物力学性能的气凝胶的设计和开发。与天然胶原气凝胶相比,差示扫描量热法分析显示出增强的变性温度。傅里叶变换红外光谱分析证实,小麦草中生物活性物质的增强不会影响胶原分子的结构完整性。此外,具有系统吸收形态的增强生物材料导致具有三维(3D)海绵状气凝胶的三维(3D)海绵状气凝胶,其具有增强的高度取向的 3D 结构组装,显示出增加的水保持能力和物质渗透性,从而能够使营养物质和气体成分通过促进细胞生长。此外,小麦草中的生长因子和胶原分子的累积效应通过恢复受损组织增强了气凝胶的血管生成能力和胶原产生能力,从而使其成为一种有潜力的 3D 伤口敷料支架。体内伤口愈合试验证实了这一结果。这项研究表明,作为一种具有生物相容性、可生物降解和非粘性的营养强化胶原气凝胶作为指导支架具有良好的抗菌性能,可促进胶原转化和血管生成反应,适用于伤口愈合应用。