Lin Zhihua, Guha Ray Preetam, Huang Jinbo, Buchmann Peter, Fussenegger Martin
Department of Biosystems Science and Engineering, ETH Zurich, Basel, Switzerland.
University of Basel, Faculty of Life Science, Basel, Switzerland.
Nat Nanotechnol. 2025 May 5. doi: 10.1038/s41565-025-01929-w.
Communication between wireless field receivers and biological sensors remains a key constraint in the development of wireless electronic devices for minimally invasive medical monitoring and biomedical applications involving gene and cell therapies. Here we describe a nanoparticle-cell interface that enables electromagnetic programming of wireless expression regulation (EMPOWER) of transgenes via the generation of cellular reactive oxygen species (ROS) at a biosafe level. Multiferroic nanoparticles coated with chitosan to improve biocompatibility generate ROS in the cytoplasm of cells in response to a low-frequency (1-kHz) magnetic field. Overexpressed ROS-responsive KEAP1/NRF2 biosensors detect the generated ROS which is rewired to synthetic ROS-responsive promoters to drive transgene expression. In a proof-of-concept study, subcutaneously implanted alginate-microencapsulated cells stably expressing an EMPOWER-controlled insulin expression system normalized blood-glucose levels in a mouse model of type 1 diabetes in response to a weak magnetic field.
对于用于微创医疗监测以及涉及基因和细胞疗法的生物医学应用的无线电子设备而言,无线现场接收器与生物传感器之间的通信仍然是一个关键限制因素。在此,我们描述了一种纳米颗粒 - 细胞界面,其能够通过在生物安全水平产生细胞活性氧(ROS)来实现对转基因的无线表达调控(EMPOWER)的电磁编程。涂有壳聚糖以提高生物相容性的多铁性纳米颗粒,在低频(1千赫兹)磁场作用下,会在细胞质中产生ROS。过表达的ROS响应性KEAP1/NRF2生物传感器检测所产生的ROS,该ROS被重新连接到合成的ROS响应性启动子以驱动转基因表达。在一项概念验证研究中,皮下植入稳定表达EMPOWER控制的胰岛素表达系统的藻酸盐微囊化细胞,在1型糖尿病小鼠模型中,可响应弱磁场使血糖水平恢复正常。