Kovacevic Bozica, Ionescu Corina Mihaela, Jones Melissa, Wagle Susbin Raj, Lewkowicz Michael, Đanić Maja, Mikov Momir, Mooranian Armin, Al-Salami Hani
The Biotechnology and Drug Development Research Laboratory, Curtin Medical School and Curtin Health Innovation Research Institute, Curtin University, Perth, WA 6102, Australia.
Hearing Therapeutics Department, Ear Science Institute Australia, Queen Elizabeth II Medical Centre, Perth, WA 6009, Australia.
Gels. 2022 Jun 7;8(6):358. doi: 10.3390/gels8060358.
The pathophysiology of a multitude of diseases is influenced by bioenergetic dysfunction. Healthy mitochondria are presented as essential for the regulation and function of multiple cell types, including the cells of relevance for this research: pancreatic beta cells, muscle cells, and liver cells. Hence, effects of hydrogels (particularly nanogels) on bioenergetics needs to be taken into account when designing optimum delivery matrices. Several polymers have been suggested for use in hydrogels and nanogels, with focus on chitosan due to its range of beneficial properties. Bile acids have emerged as beneficial excipients, including deoxycholic acid, which can increase membrane permeability of cells. Nanogels were manufactured containing various concentrations of chitosan and deoxycholic acid in addition to the staple sodium alginate. Nanogels then underwent an array of analysis including rheological studies and in vitro cell work assessing viability, hypoxia, and the bioenergetic profiles. Overall, deoxycholic acid showed enhanced gel strength although this resulted in slightly lower cell viability and impacted bioenergetic profiles. Results from this study showed the benefits of deoxycholic acid; however, this was found to be less suitable for cell delivery matrices and is perhaps more beneficial for drug-delivery systems.
多种疾病的病理生理学受到生物能量功能障碍的影响。健康的线粒体对于多种细胞类型的调节和功能至关重要,包括与本研究相关的细胞:胰腺β细胞、肌肉细胞和肝细胞。因此,在设计最佳递送基质时,需要考虑水凝胶(特别是纳米凝胶)对生物能量学的影响。已经提出了几种聚合物用于水凝胶和纳米凝胶,由于壳聚糖具有一系列有益特性,因此重点关注壳聚糖。胆汁酸已成为有益的辅料,包括脱氧胆酸,它可以增加细胞的膜通透性。除了主要成分海藻酸钠外,还制备了含有不同浓度壳聚糖和脱氧胆酸的纳米凝胶。然后对纳米凝胶进行了一系列分析,包括流变学研究和评估活力、缺氧和生物能量学特征的体外细胞实验。总体而言,脱氧胆酸显示出增强的凝胶强度,尽管这导致细胞活力略有降低并影响生物能量学特征。这项研究的结果显示了脱氧胆酸的益处;然而,发现它不太适合细胞递送基质,可能对药物递送系统更有益。