Castro Vânia I B, Amorim Sara, Caballero David, Abreu Catarina M, Kundu Subhas C, Reis Rui L, Pashkuleva Iva, Pires Ricardo A
3B's Research Group, I3Bs - Research Institute on Biomaterials, Biodegradables and Biomimetics, University of Minho, Headquarters of the European Institute of Excellence on Tissue Engineering and Regenerative Medicine, 4805-017, AvePark, Barco, Portugal; ICVS/3B's-PT Government Associate Laboratory, Braga/Guimarães, Portugal.
3B's Research Group, I3Bs - Research Institute on Biomaterials, Biodegradables and Biomimetics, University of Minho, Headquarters of the European Institute of Excellence on Tissue Engineering and Regenerative Medicine, 4805-017, AvePark, Barco, Portugal; ICVS/3B's-PT Government Associate Laboratory, Braga/Guimarães, Portugal.
Biomater Adv. 2025 Feb;167:214091. doi: 10.1016/j.bioadv.2024.214091. Epub 2024 Oct 29.
The functional restoration of a damaged cardiac tissue relies on a synchronized contractile capacity of exogenous and/or endogenous cardiomyocytes, which is challenging to achieve. Here, we explored the potential of the short glycopeptide diphenylalanine glucosamine-6-sulfate (FFGlcN6S) conjugated with an aromatic moiety, namely fluorenylmethoxycarbonyl (Fmoc), to enhance cardiac tissue regeneration. At physiological conditions, Fmoc-FFGlcN6S assembles into nanofibrous hydrated meshes, i.e., matrix mimicking hydrogels. These hydrogels can be further micropatterned allowing co-existence of hierarchical structures at different lenght. The patterned hydrogels support the culture of induced pluripotent stem cell-derived cardiomyocytes (iPSC-CMs) and promote their alignment. The cultured iPSC-CMs exhibit anisotropic synchronized contractions, indicating maturation and electrical interconnectivity. Moreover, the cultures express specific cardiac markers including, connexin-43 and sarcomeric-α-actinin, confirming enhanced cell-cell crosstalk, spontaneous contractility, and efficient transmission of electrical signals. Our results showcase the potential of short amphiphilic glycopeptides to mimic physical and biochemical cues that are essential for cardiomyocytes functionality and thus, these conjugates can be used in cardiac tissue engineering and regeneration.
受损心脏组织的功能恢复依赖于外源性和/或内源性心肌细胞的同步收缩能力,而实现这一点具有挑战性。在此,我们探索了与芳香基团芴甲氧羰基(Fmoc)偶联的短糖肽二苯基丙氨酸氨基葡萄糖-6-硫酸盐(FFGlcN6S)促进心脏组织再生的潜力。在生理条件下,Fmoc-FFGlcN6S组装成纳米纤维水合网,即模拟水凝胶的基质。这些水凝胶可以进一步进行微图案化,允许不同长度的层次结构共存。图案化水凝胶支持诱导多能干细胞衍生的心肌细胞(iPSC-CMs)的培养并促进其排列。培养的iPSC-CMs表现出各向异性的同步收缩,表明其成熟和电互连性。此外,培养物表达包括连接蛋白-43和肌节α-肌动蛋白在内的特定心脏标志物,证实细胞间串扰增强、自发收缩性以及电信号的有效传递。我们的结果展示了短两亲性糖肽模拟对心肌细胞功能至关重要的物理和生化线索的潜力,因此,这些偶联物可用于心脏组织工程和再生。