School of Life Sciences, Tianjin University, 92 Weijin Road, Nankai District, Tianjin, 300072, China.
School of Life Sciences, Tianjin University, 92 Weijin Road, Nankai District, Tianjin, 300072, China.
Biomaterials. 2019 Apr;199:22-31. doi: 10.1016/j.biomaterials.2019.01.042. Epub 2019 Feb 1.
In vivo noninvasively manipulating biological functions by the mediation of biosafe near infrared (NIR) light is becoming increasingly popular. For these applications, upconversion rare-earth nanomaterial holds great promise as a novel photonic element, and has been widely adopted in optogenetics. In this article, an upconversion optogenetic nanosystem that was promised to achieve autophagy up-regulation with spatiotemporal precision was designed. The implantable, wireless, recyclable, less-invasive and biocompatible system worked via two separated parts: blue light-receptor optogenetics-autophagy upregulation plasmids, for protein import; upconversion rods-encapsulated flexible capsule (UCRs-capsule), for converting tissue-penetrative NIR light into local visible blue light. Results validated that this system could achieve up-regulation of autophagy in vitro (in both HeLa and 293T cell lines) and remotely penetrate tissue (∼3.5 mm) in vivo. Since autophagy serves at a central position in intracellular signalling pathways, which is correlative with diverse pathologies, we expect that this method could establish an upconversion material-based autophagy up-regulation strategy for fundamental and clinical applications.
通过生物安全的近红外(NIR)光介导来实现对生物功能的体内无创操控正变得越来越流行。对于这些应用,上转换稀土纳米材料作为一种新型光子元件具有很大的应用前景,并已广泛应用于光遗传学。在本文中,设计了一种上转换光遗传学纳米系统,有望实现时空精确的自噬上调。该植入式、无线、可回收、微创和生物相容的系统通过两个独立的部分工作:蓝光受体光遗传学-自噬上调质粒,用于蛋白导入;上转换棒-封装的柔性胶囊(UCRs-胶囊),用于将组织穿透性 NIR 光转换为局部可见的蓝光。结果验证了该系统能够在体外(在 HeLa 和 293T 细胞系中)和体内远程穿透组织(约 3.5mm)实现自噬的上调。由于自噬在细胞内信号通路中处于中心位置,与多种病理学相关,我们期望这种方法可以为基础和临床应用建立基于上转换材料的自噬上调策略。