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Paracellular Delivery of Protein Drugs with Smart EnteroPatho Nanoparticles

并行传输 细胞生物学 分泌物 肠粘膜 紧密连接 小肠 糖萼 化学 纳米技术 生物 材料科学 医学 生物化学 内科学 磁导率
作者
Isabela Ramirez-Velez,Aditya A. Namjoshi,Unyime M. Effiong,Nicholas A. Peppas,Brian Belardi
出处
期刊:ACS Nano [American Chemical Society]
卷期号:18 (32): 21038-21051 被引量:2
标识
DOI:10.1021/acsnano.4c02116
摘要

A general platform for the safe and effective oral delivery of biologics would revolutionize the administration of protein-based drugs, improving access for patients and lowering the financial burden on the health-care industry. Because of their dimensions and physiochemical properties, nanomaterials stand as promising vehicles for navigating the complex and challenging environment in the gastrointestinal (GI) tract. Recent developments have led to materials that protect protein drugs from degradation and enable controlled release in the small intestine, the site of absorption for most proteins. Yet, once present in the small intestine, the protein must transit through the secreted mucus and epithelial cells of the intestinal mucosa into systemic circulation, a process that remains a bottleneck for nanomaterial-based delivery. One attractive pathway through the intestinal mucosa is the paracellular route, which avoids cell trafficking and other degradative processes in the interior of cells. Direct flux between cells is regulated by epithelial tight junctions (TJs) that seal the paracellular space and prevent protein flux. Here, we describe a smart nanoparticle system that directly and transiently disrupts TJs for improved protein delivery, an unrealized goal to-date. We take inspiration from enteropathogenic bacteria that adhere to intestinal epithelia and secrete inhibitors that block TJ interactions in the local environment. To mimic these natural mechanisms, we engineer nanoparticles (EnteroPatho NPs) that attach to the epithelial glycocalyx and release TJ modulators in response to the intestinal pH. We show that EnteroPatho NPs lead to TJ disruption and paracellular protein delivery, giving rise to a general platform for oral delivery.
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