Photothermal nanofibres enable safe engineering of therapeutic cells

光热治疗 材料科学 纳米技术 细胞 转染 光热效应 细胞生物学 细胞内 活力测定 细胞疗法 干细胞 生物物理学 化学 细胞培养 生物 生物化学 遗传学
作者
Ranhua Xiong,Dawei Hua,Jelter Van Hoeck,Dominika Berdecka,Laurens Léger,Stijn De Munter,Juan C. Fraire,Laurens Raes,Aranit Harizaj,Félix Sauvage,Glenn Goetgeluk,Melissa Pille,J.G. Aalders,Joke Belza,Thibaut Van Acker,Eduardo Bolea-Fernández,Ting Si,Frank Vanhaecke,Winnok H. De Vos,Bart Vandekerckhove
出处
期刊:Nature Nanotechnology [Nature Portfolio]
卷期号:16 (11): 1281-1291 被引量:240
标识
DOI:10.1038/s41565-021-00976-3
摘要

Nanoparticle-sensitized photoporation is an upcoming approach for the intracellular delivery of biologics, combining high efficiency and throughput with excellent cell viability. However, as it relies on close contact between nanoparticles and cells, its translation towards clinical applications is hampered by safety and regulatory concerns. Here we show that light-sensitive iron oxide nanoparticles embedded in biocompatible electrospun nanofibres induce membrane permeabilization by photothermal effects without direct cellular contact with the nanoparticles. The photothermal nanofibres have been successfully used to deliver effector molecules, including CRISPR–Cas9 ribonucleoprotein complexes and short interfering RNA, to adherent and suspension cells, including embryonic stem cells and hard-to-transfect T cells, without affecting cell proliferation or phenotype. In vivo experiments furthermore demonstrated successful tumour regression in mice treated with chimeric antibody receptor T cells in which the expression of programmed cell death protein 1 (PD1) is downregulated after nanofibre photoporation with short interfering RNA to PD1. In conclusion, cell membrane permeabilization with photothermal nanofibres is a promising concept towards the safe and more efficient production of engineered cells for therapeutic applications, including stem cell or adoptive T cell therapy. Nanoparticle-mediated photoporation is used to temporarily permeabilize cell membranes for intracellular delivery of macromolecules, but cell exposure to nanoparticles might cause cellular damage and hamper application of the technique to therapeutic cell engineering. Here the authors show that, under photothermal heating, nanofibre-embedded iron oxide nanoparticles can be used to deliver effector macromolecules to different types of cells, in a contactless manner, with no cellular toxicity or diminished therapeutic potency.
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