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三维合成支架在神经组织工程应用中的优化。

Optimization of 3D Synthetic Scaffolds for Neuronal Tissue Engineering Applications.

机构信息

Instituto Regional de Investigación Científica Aplicada (IRICA) and Facultad de Ciencias y Tecnologías Químicas, Universidad de Castilla-La Mancha, 13071, Ciudad Real, Spain.

Facultad de Fisioterapia y Enfermería, Universidad de Castilla-La Mancha, 45071, Toledo, Spain.

出版信息

Chemistry. 2024 Jan 2;30(1):e202302481. doi: 10.1002/chem.202302481. Epub 2023 Nov 9.

DOI:10.1002/chem.202302481
PMID:37823243
Abstract

The increasing prevalence of neurodegenerative diseases has spurred researchers to develop advanced 3D models that accurately mimic neural tissues. Hydrogels stand out as ideal candidates as their properties closely resemble those of the extracellular matrix. A critical challenge in this regard is to comprehend the influence of the scaffold's mechanical properties on cell growth and differentiation, thus enabling targeted modifications. In light of this, a synthesis and comprehensive analysis of acrylamide-based hydrogels incorporating a peptide has been conducted. Adequate cell adhesion and development is achieved due to their bioactive nature and specific interactions with cellular receptors. The integration of a precisely controlled physicochemical hydrogel matrix and inclusion of the arginine-glycine-aspartic acid peptide sequence has endowed this system with an optimal structure, thus providing a unique ability to interact effectively with biomolecules. The analysis fully examined essential properties governing cell behavior, including pore size, mechanical characteristics, and swelling ability. Cell-viability experiments were performed to assess the hydrogel's biocompatibility, while the incorporation of grow factors aimed to promote the differentiation of neuroblastoma cells. The results underscore the hydrogel's ability to stimulate cell viability and differentiation in the presence of the peptide within the matrix.

摘要

神经退行性疾病的患病率不断上升,促使研究人员开发出能够准确模拟神经组织的先进 3D 模型。水凝胶作为理想的候选材料脱颖而出,因为其性质与细胞外基质非常相似。在这方面的一个关键挑战是理解支架机械性能对细胞生长和分化的影响,从而实现有针对性的修饰。有鉴于此,对包含肽的丙烯酰胺基水凝胶进行了合成和综合分析。由于其具有生物活性和与细胞受体的特定相互作用,因此可以实现足够的细胞黏附和发育。精确控制的物理化学水凝胶基质的整合和精氨酸-甘氨酸-天冬氨酸肽序列的包含赋予了该系统最佳的结构,从而使其具有与生物分子有效相互作用的独特能力。该分析全面检查了控制细胞行为的基本特性,包括孔径、机械特性和溶胀能力。进行了细胞活力实验以评估水凝胶的生物相容性,而生长因子的掺入旨在促进成神经细胞瘤细胞的分化。结果强调了水凝胶在基质中存在肽的情况下刺激细胞活力和分化的能力。

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