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通过具有强韧多糖的生物活性肽的互补自组装来制备可调谐杂化水凝胶。

Tuneable Hybrid Hydrogels via Complementary Self-Assembly of a Bioactive Peptide with a Robust Polysaccharide.

机构信息

Biofab3D, Aikenhead Centre for Medical Discovery, St Vincent's Hospital Melbourne, Fitzroy, VIC 3065, Australia.

Biomedical and Electrical Engineering, School of Engineering, RMIT University, Melbourne, VIC 3000, Australia.

出版信息

ACS Biomater Sci Eng. 2021 Jul 12;7(7):3340-3350. doi: 10.1021/acsbiomaterials.1c00675. Epub 2021 Jun 14.

Abstract

Synthetic materials designed for improved biomimicry of the extracellular matrix must contain fibrous, bioactive, and mechanical cues. Self-assembly of low molecular weight gelator (LMWG) peptides Fmoc-DIKVAV (Fmoc-aspartic acid-isoleucine-lysine-valine-alanine-valine) and Fmoc-FRGDF (Fmoc-phenylalanine-arginine-glycine-aspartic acid-phenylalanine) creates fibrous and bioactive hydrogels. Polysaccharides such as agarose are biocompatible, degradable, and non-toxic. Agarose and these Fmoc-peptides have both demonstrated efficacy and . These materials have complementary properties; agarose has known mechanics in the physiological range but is inert and would benefit from bioactive and topographical cues found in the fibrous, protein-rich extracellular matrix. Fmoc-DIKVAV and Fmoc-FRGDF are synthetic self-assembling peptides that present bioactive cues "IKVAV" and "RGD" designed from the ECM proteins laminin and fibronectin. The work presented here demonstrates that the addition of agarose to Fmoc-DIKVAV and Fmoc-FRGDF results in physical characteristics that are dependent on agarose concentration. The networks are peptide-dominated at low agarose concentrations, and agarose-dominated at high agarose concentrations, resulting in distinct changes in structural morphology. Interestingly, at mid-range agarose concentration, a hybrid network is formed with structural similarities to both peptide and agarose systems, demonstrating reinforced mechanical properties. Bioactive-LMWG polysaccharide hydrogels demonstrate controllable microenvironmental properties, providing the ability for tissue-specific biomaterial design for tissue engineering and 3D cell culture.

摘要

设计用于更好地仿生细胞外基质的合成材料必须包含纤维状、生物活性和机械线索。低分子量凝胶剂(LMWG)肽 Fmoc-DIKVAV(Fmoc-天冬氨酸-异亮氨酸-赖氨酸-缬氨酸-缬氨酸)和 Fmoc-FRGDF(Fmoc-苯丙氨酸-精氨酸-甘氨酸-天冬氨酸-苯丙氨酸)的自组装会形成纤维状和生物活性水凝胶。琼脂糖等多糖具有生物相容性、可降解性和无毒性。琼脂糖和这些 Fmoc-肽都表现出功效和。这些材料具有互补的特性;琼脂糖在生理范围内具有已知的力学性能,但它是惰性的,并且受益于纤维状、富含蛋白质的细胞外基质中存在的生物活性和形貌线索。Fmoc-DIKVAV 和 Fmoc-FRGDF 是合成自组装肽,具有源自细胞外基质蛋白层粘连蛋白和纤维连接蛋白的生物活性线索“IKVAV”和“RGD”。这里展示的工作表明,向 Fmoc-DIKVAV 和 Fmoc-FRGDF 添加琼脂糖会导致依赖琼脂糖浓度的物理特性。在低琼脂糖浓度下,网络由肽主导,而在高琼脂糖浓度下,由琼脂糖主导,导致结构形态发生明显变化。有趣的是,在琼脂糖浓度的中间范围内,形成了一种混合网络,其结构与肽和琼脂糖系统相似,表现出增强的机械性能。生物活性-LMWG 多糖水凝胶表现出可控制的微环境特性,为组织工程和 3D 细胞培养提供了针对特定组织的生物材料设计能力。

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