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Surfactant Protein B Promotes Cytosolic SiRNA Delivery by Adopting a Virus-like Mechanism of Action

纳米载体 内体 细胞生物学 胞浆 细胞内 小干扰RNA 核糖核酸 内化 基因沉默 共焦显微镜 生物物理学 化学 细胞 生物 纳米技术 药物输送 材料科学 生物化学 基因
作者
Roberta Guagliardo,Lore Herman,Jelle Penders,Agata Zamborlin,Herlinde De Keersmaecker,Thijs Van de Vyver,Sandrine L. Verstraeten,Pieterjan Merckx,Marie‐Paule Mingeot‐Leclercq,Mercedes Echaide,Jesús Pérez‐Gil,Molly M. Stevens,Stefaan C. De Smedt,Koen Raemdonck
出处
期刊:ACS Nano [American Chemical Society]
卷期号:15 (5): 8095-8109 被引量:35
标识
DOI:10.1021/acsnano.0c04489
摘要

RNA therapeutics are poised to revolutionize medicine. To unlock the full potential of RNA drugs, safe and efficient (nano)formulations to deliver them inside target cells are required. Endosomal sequestration of nanocarriers represents a major bottleneck in nucleic acid delivery. Gaining more detailed information on the intracellular behavior of RNA nanocarriers is crucial to rationally develop delivery systems with improved therapeutic efficiency. Surfactant protein B (SP-B) is a key component of pulmonary surfactant (PS), essential for mammalian breathing. In contrast to the general belief that PS should be regarded as a barrier for inhaled nanomedicines, we recently discovered the ability of SP-B to promote gene silencing by siRNA-loaded and lipid-coated nanogels. However, the mechanisms governing this process are poorly understood. The major objective of this work was to obtain mechanistic insights into the SP-B-mediated cellular delivery of siRNA. To this end, we combined siRNA knockdown experiments, confocal microscopy, and focused ion beam scanning electron microscopy imaging in an in vitro non-small-cell lung carcinoma model with lipid mixing assays on vesicles that mimic the composition of (intra)cellular membranes. Our work highlights a strong correlation between SP-B-mediated fusion with anionic endosomal membranes and cytosolic siRNA delivery, a mode of action resembling that of certain viruses and virus-derived cell-penetrating peptides. Building on these gained insights, we optimized the SP-B proteolipid composition, which dramatically improved delivery efficiency. Altogether, our work provides a mechanistic understanding of SP-B-induced perturbation of intracellular membranes, offering opportunities to fuel the rational design of SP-B-inspired RNA nanoformulations for inhalation therapy.
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