Haag Stephanie L, Martinez-Alvarez Jacquelin, Schiele Nathan R, Bernards Matthew T
Department of Chemical & Biological Engineering, University of Idaho, Moscow, ID 83844.
J Appl Polym Sci. 2022 Sep 15;139(35). doi: 10.1002/app.52846. Epub 2022 Jul 22.
Tissue engineered scaffolds are currently being explored to aid in healing and regeneration of non-union fractures in bone. Additionally, albumin has been demonstrated to provide benefits to healing when applied to injury sites. This paper focuses on delivery of calcium modified, bioactive bovine serum albumin (BSA) from a multi-functional polyampholyte polymer scaffold. First, the inherent nonfouling and conjugation properties of the polyampholyte hydrogel were verified to determine the impact of calcium exposure. The polyampholyte hydrogel delivery platform was then assessed with calcium titrations and osteoblast-like cell (MC3T3-E1) adhesion, proliferation, and viability evaluations. Finally, integrin inhibitors were used to identify the binding mechanisms that mediate cell adhesion to the calcium-modified BSA-conjugated hydrogels. An increase in cell adhesion was observed following calcium exposure up to 0.075 M, although this and higher calcium concentrations affected hydrogel stability and cell growth. BSA exposed to 0.05 M calcium and delivered from polyampholyte hydrogels promoted the most promising viable cell adhesion over 7 days. Cell adhesion to the calcium-modified BSA-conjugated hydrogels appeared to be regulated by arginine-glycine-aspartic acid (RGD) and collagen specific integrins. These results demonstrate that the delivery of calcium modified BSA from an implantable polymer scaffold is promising for bone tissue engineering applications.
目前正在探索组织工程支架,以帮助促进骨不连骨折的愈合和再生。此外,白蛋白已被证明应用于损伤部位时对愈合有益。本文重点研究了从多功能聚两性电解质聚合物支架中递送钙修饰的生物活性牛血清白蛋白(BSA)。首先,验证了聚两性电解质水凝胶固有的抗污和缀合特性,以确定钙暴露的影响。然后通过钙滴定以及成骨样细胞(MC3T3-E1)的粘附、增殖和活力评估,对聚两性电解质水凝胶递送平台进行了评估。最后,使用整合素抑制剂来确定介导细胞与钙修饰的BSA偶联水凝胶粘附的结合机制。钙暴露至0.075 M时,观察到细胞粘附增加,尽管该浓度及更高的钙浓度会影响水凝胶稳定性和细胞生长。暴露于0.05 M钙并从聚两性电解质水凝胶中递送的BSA在7天内促进了最有前景的活细胞粘附。细胞与钙修饰的BSA偶联水凝胶的粘附似乎受精氨酸-甘氨酸-天冬氨酸(RGD)和胶原蛋白特异性整合素的调节。这些结果表明,从可植入聚合物支架中递送钙修饰的BSA在骨组织工程应用中具有前景。