Granados-Carrera Carmen Mª, Castro-Criado Daniel, Abdullah Johar Amin Ahmed, Jiménez-Rosado Mercedes, Perez-Puyana Víctor M
Department of Chemical Engineering, Faculty of Chemistry, University of Seville, 41012 Seville, Spain.
Department of Applied Chemistry and Physics, Faculty of Biological and Ambiental Sciences, University of León, 24009 León, Spain.
Polymers (Basel). 2025 Jan 8;17(2):133. doi: 10.3390/polym17020133.
The necessity to mitigate the intrinsic issues associated with tissue or organ transplants, in order to address the rising prevalence of diseases attributable to increased life expectancy, provides a rationale for the pursuit of innovation in the field of biomaterials. Specifically, biopolymeric aerogels represent a significant advancement in the field of tissue engineering, offering a promising solution for the formation of temporary porous matrices that can replace damaged tissues. However, the functional characteristics of these materials are inadequate, necessitating the implementation of matrix reinforcement methods to enhance their performance. In this study, chemical and green iron oxide nanoparticles, previously synthesized and documented in existing research, were incorporated into hybrid aerogels combining collagen (C) and chitosan (CH). The characterization of these aerogels was conducted through rheological, microstructural, and functional analyses. The results demonstrate that the incorporation of iron oxide nanoparticles has a significant influence on the properties of the aerogels fabricated with them. In particular, the incorporation of these nanoparticles has been observed to modify the mechanical properties, with an increase in strength and porosity that may support cell proliferation.
为应对因预期寿命延长导致的疾病患病率上升,减轻与组织或器官移植相关的内在问题的必要性,为生物材料领域的创新追求提供了理论依据。具体而言,生物聚合物气凝胶是组织工程领域的一项重大进展,为形成可替代受损组织的临时多孔基质提供了一个有前景的解决方案。然而,这些材料的功能特性并不理想,需要实施基质增强方法来提高其性能。在本研究中,将先前在现有研究中合成并记录的化学和绿色氧化铁纳米颗粒掺入胶原蛋白(C)和壳聚糖(CH)的混合气凝胶中。通过流变学、微观结构和功能分析对这些气凝胶进行了表征。结果表明,氧化铁纳米颗粒的掺入对用它们制备的气凝胶的性能有显著影响。特别是,已观察到这些纳米颗粒的掺入改变了机械性能,强度和孔隙率增加,这可能支持细胞增殖。