Neves Mariana Isabel, Moroni Lorenzo, Barrias Cristina Carvalho
i3S - Instituto de Investigação e Inovação em Saúde, Universidade do Porto, Porto, Portugal.
INEB - Instituto de Engenharia Biomédica, Universidade do Porto, Porto, Portugal.
Front Bioeng Biotechnol. 2020 Jun 30;8:665. doi: 10.3389/fbioe.2020.00665. eCollection 2020.
The rational choice and design of biomaterials for biomedical applications is crucial for successful and strategies, ultimately dictating their performance and potential clinical applications. Alginate, a marine-derived polysaccharide obtained from seaweeds, is one of the most widely used polymers in the biomedical field, particularly to build three dimensional (3D) systems for culture and delivery of cells. Despite their biocompatibility, alginate hydrogels often require modifications to improve their biological activity, namely via inclusion of mammalian cell-interactive domains and fine-tuning of mechanical properties. These modifications enable the addition of new features for greater versatility and control over alginate-based systems, extending the plethora of applications and procedures where they can be used. Additionally, hybrid systems based on alginate combination with other components can also be explored to improve the mimicry of extracellular microenvironments and their dynamics. This review provides an overview on alginate properties and current clinical applications, along with different strategies that have been reported to improve alginate hydrogels performance as 3D matrices and 4D dynamic systems.
用于生物医学应用的生物材料的合理选择和设计对于成功的治疗策略至关重要,最终决定了它们的性能和潜在的临床应用。藻酸盐是一种从海藻中提取的海洋来源多糖,是生物医学领域中使用最广泛的聚合物之一,特别是用于构建用于细胞培养和递送的三维(3D)系统。尽管藻酸盐水凝胶具有生物相容性,但通常需要进行修饰以提高其生物活性,即通过包含哺乳动物细胞相互作用域和微调机械性能。这些修饰能够为基于藻酸盐的系统增加新的特性,以实现更大的通用性和控制,扩展了它们可以使用的大量应用和程序。此外,还可以探索基于藻酸盐与其他成分组合的混合系统,以改善对细胞外微环境及其动态变化的模拟。本文综述了藻酸盐的特性和当前的临床应用,以及据报道的不同策略,这些策略可改善藻酸盐水凝胶作为3D基质和4D动态系统的性能。