Pele Karinna Georgiana, Amaveda Hippolyte, Mora Mario, Marcuello Carlos, Lostao Anabel, Alamán-Díez Pilar, Pérez-Huertas Salvador, Ángeles Pérez María, García-Aznar José Manuel, García-Gareta Elena
Multiscale in Mechanical & Biological Engineering Research Group, Aragon Institute of Engineering Research (I3A), School of Engineering & Architecture, University of Zaragoza, 50018 Zaragoza, Aragon, Spain.
Instituto de Nanociencia y Materiales de Aragón (INMA), CSIC and University of Zaragoza, 50018 Zaragoza, Aragon, Spain.
Gels. 2023 Jun 20;9(6):505. doi: 10.3390/gels9060505.
Innovative materials are needed to produce scaffolds for various tissue engineering and regenerative medicine (TERM) applications, including tissue models. Materials derived from natural sources that offer low production costs, easy availability, and high bioactivity are highly preferred. Chicken egg white (EW) is an overlooked protein-based material. Whilst its combination with the biopolymer gelatin has been investigated in the food technology industry, mixed hydrocolloids of EW and gelatin have not been reported in TERM. This paper investigates these hydrocolloids as a suitable platform for hydrogel-based tissue engineering, including 2D coating films, miniaturized 3D hydrogels in microfluidic devices, and 3D hydrogel scaffolds. Rheological assessment of the hydrocolloid solutions suggested that temperature and EW concentration can be used to fine-tune the viscosity of the ensuing gels. Fabricated thin 2D hydrocolloid films presented globular nano-topography and in vitro cell work showed that the mixed hydrocolloids had increased cell growth compared with EW films. Results showed that hydrocolloids of EW and gelatin can be used for creating a 3D hydrogel environment for cell studies inside microfluidic devices. Finally, 3D hydrogel scaffolds were fabricated by sequential temperature-dependent gelation followed by chemical cross-linking of the polymeric network of the hydrogel for added mechanical strength and stability. These 3D hydrogel scaffolds displayed pores, lamellae, globular nano-topography, tunable mechanical properties, high affinity for water, and cell proliferation and penetration properties. In conclusion, the large range of properties and characteristics of these materials provide a strong potential for a large variety of TERM applications, including cancer models, organoid growth, compatibility with bioprinting, or implantable devices.
需要创新材料来制造用于各种组织工程和再生医学(TERM)应用的支架,包括组织模型。源自天然来源的材料具有低成本、易于获取和高生物活性的特点,因此备受青睐。鸡蛋白(EW)是一种被忽视的基于蛋白质的材料。虽然其与生物聚合物明胶的组合已在食品技术行业中得到研究,但EW和明胶的混合水胶体在TERM中尚未见报道。本文研究了这些水胶体作为基于水凝胶的组织工程的合适平台,包括二维涂层膜、微流控装置中的小型化三维水凝胶以及三维水凝胶支架。对水胶体溶液的流变学评估表明,温度和EW浓度可用于微调所得凝胶的粘度。制备的二维薄水胶体膜呈现出球状纳米形貌,体外细胞实验表明,与EW膜相比,混合水胶体的细胞生长有所增加。结果表明,EW和明胶的水胶体可用于在微流控装置中为细胞研究创建三维水凝胶环境。最后,通过顺序温度依赖性凝胶化,然后对水凝胶的聚合物网络进行化学交联以增加机械强度和稳定性,制备了三维水凝胶支架。这些三维水凝胶支架显示出孔隙、薄片、球状纳米形貌、可调机械性能、对水的高亲和力以及细胞增殖和穿透性能。总之,这些材料的广泛特性为包括癌症模型、类器官生长、与生物打印的兼容性或可植入装置在内的各种TERM应用提供了强大的潜力。