Tianjin Key Laboratory of Radiation Medicine and Molecular Nuclear Medicine, Institute of Radiation Medicine, Chinese Academy of Medical Sciences & Peking Union Medical College, Tianjin 300192, China.
Nano Lett. 2020 Mar 11;20(3):1755-1765. doi: 10.1021/acs.nanolett.9b04966. Epub 2020 Feb 21.
Insulin would undergo unfolding and fibrillation under stressed conditions, which may cause serious biotechnological and medical problems. Herein, by mimicking the structure and functions of natural chaperones HSP70s, self-assembled polymeric micelles are used as nanochaperones for the delivery of insulin. The confined hydrophobic domains on the surface of nanochaperones adsorb partially unfolded insulin, inhibiting the aggregation and fibrillation and enhancing the stability of insulin. The bioactivity of insulin is well-reserved after incubation with the nanochaperones at 37 °C for 7 d or heating at 70 °C for 1 h. The stealthy poly(ethylene glycol) chains around the confined domains protect the adsorbed insulin from enzymatic degradation and prolong the circulation time. More importantly, the excellent glucose sensitivity of the hydrophobic domains enables the nanochaperones to release and refold insulin in native form in response to hyperglycemia. This kind of nanochaperone may offer a hopeful strategy for the protection and delivery of insulin.
胰岛素在应激条件下会经历去折叠和纤维形成,这可能会导致严重的生物技术和医学问题。在此,通过模拟天然伴侣蛋白 HSP70s 的结构和功能,自组装的聚合物胶束被用作胰岛素的递呈纳米伴侣。纳米伴侣表面受限的疏水区吸附部分去折叠的胰岛素,抑制聚集和纤维形成,提高胰岛素的稳定性。在 37°C 孵育 7 天或在 70°C 加热 1 小时后,胰岛素与纳米伴侣孵育后其生物活性得以很好地保留。受限区域周围的隐形聚乙二醇链保护吸附的胰岛素免受酶降解,并延长其循环时间。更重要的是,疏水区域的优异葡萄糖敏感性使纳米伴侣能够在响应高血糖时以天然形式释放和重折叠胰岛素。这种纳米伴侣可能为胰岛素的保护和递送提供一种有希望的策略。