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E3MPH16: An efficient endosomolytic peptide for intracellular protein delivery

内体 内吞作用 胞饮病 内吞循环 细胞生物学 胞浆 绿色荧光蛋白 细胞内 化学 HEK 293细胞 基因传递 中国仓鼠卵巢细胞 生物物理学 生物化学 转染 细胞 生物 受体 基因
作者
Yusuke Kawaguchi,Yuki Kawamura,Hajime Hirose,Megumi Kiyokawa,Momo Hirate,Tsuyoshi Hirata,Yuriko Higuchi,Shiroh Futaki
出处
期刊:Journal of Controlled Release [Elsevier]
卷期号:367: 877-891 被引量:3
标识
DOI:10.1016/j.jconrel.2024.01.067
摘要

To facilitate the introduction of proteins, such as antibodies, into cells, a variety of delivery peptides have been engineered. These peptides are typically highly cationic and somewhat hydrophobic, enabling cytosolic protein delivery at the cost of causing cell damage by rupturing membranes. This balance between delivery effectiveness and cytotoxicity presents obstacles for their real-world use. To tackle this problem, we designed a new endosome-disruptive cytosolic delivery peptide, E3MPH16, inspired by mastoparan X (MP). E3MPH16 was engineered to incorporate three Glu (E3) and 16 His (H16) residues at the N- and C-termini of MP, respectively. The negative charges of E3 substantially mitigate the cell-surface damage induced by MP. The H16 segment is known to enhance cell-surface adsorption and endocytic uptake of the associated molecules. With these modifications, E3MPH16 was successfully trapped within endosomes. The acidification of endosomes is expected to protonate the side chains of E3 and H16, enabling E3MPH16 to rupture endosomal membranes. As a result, nearly 100% of cells achieved cytosolic delivery of a model biomacromolecule, Alexa Fluor 488-labeled dextran (10 kDa), via endosomal escape by co-incubation with E3MPH16. The delivery process also suggested the involvement of macropinocytosis and caveolae-mediated endocytosis. With the assistance of E3MPH16, Cre recombinase and anti-Ras-IgG delivered into HEK293 cells and HT1080 cells enabled gene recombination and inhibited cell proliferation, respectively. The potential for in vivo application of this intracellular delivery method was further validated by topically injecting the green fluorescent protein fused with a nuclear localization signal (NLS-GFP) along with E3MPH16 into Colon-26 tumor xenografts in mice.
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