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Electromagnetic Wireless Remote Control Of Mammalian Transgene Expression Zhihua Lin Preetam Guha Ray Jinbo Huang Peter Buchmann Martin Fussenegger

  • SKU: BELL-235045762
Electromagnetic Wireless Remote Control Of Mammalian Transgene Expression Zhihua Lin Preetam Guha Ray Jinbo Huang Peter Buchmann Martin Fussenegger
$ 35.00 $ 45.00 (-22%)

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Electromagnetic Wireless Remote Control Of Mammalian Transgene Expression Zhihua Lin Preetam Guha Ray Jinbo Huang Peter Buchmann Martin Fussenegger instant download after payment.

Publisher: x
File Extension: PDF
File size: 15.86 MB
Author: Zhihua Lin & Preetam Guha Ray & Jinbo Huang & Peter Buchmann & Martin Fussenegger
ISBN: 101038/S4156502501929W
Language: English
Year: 2025

Product desciption

Electromagnetic Wireless Remote Control Of Mammalian Transgene Expression Zhihua Lin Preetam Guha Ray Jinbo Huang Peter Buchmann Martin Fussenegger by Zhihua Lin & Preetam Guha Ray & Jinbo Huang & Peter Buchmann & Martin Fussenegger 101038/S4156502501929W instant download after payment.

Nature Nanotechnology, doi:10.1038/s41565-025-01929-w

Communication between wireless feld 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 feld. 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 feld.