Enhanced Delivery of Oral Biomacromolecules through Edible Plant-Derived Nanovehicles: Exploiting the Self-Amplifying Trancytosis Feedback Loop and Phosphatidic Acid

跨细胞 磷脂酸 细胞生物学 化学 分泌物 内吞作用 肠上皮 生物化学 细胞外 生物物理学 药物输送 磷脂 脂质体 翻转酶 生物 信号转导 细胞信号 小泡
作者
Yaxian Zheng,Yuan Qin,Qin He,Jiang Xie,Xiaohaoran Lv,Tao Xiang,Zongyang Lan,Shiqin Luo,Ying Liu,Ying Liu,Min Xu,Jiawei Wu,Yanjun Liu,Yanjun Liu
出处
期刊:ACS Nano [American Chemical Society]
卷期号:20 (1): 1710-1731 被引量:4
标识
DOI:10.1021/acsnano.5c20533
摘要

The intestinal epithelium poses a formidable obstacle to the systemic absorption of the oral nanovehicles. Despite the development of extracellular vesicles (EVs) for drug delivery, there has been limited exploration into edible-product-derived EVs (EP-EVs), particularly those derived from plants as carriers to enhance the oral delivery of biomacromolecules. Here, we evaluated the potential of EP-EVs and highlighted their promising application and underlying mechanisms as orally delivered carriers from plant-derived EVs. Grape-derived EVs (Gra-EVs) were found to have superior efficacy in oral delivery of insulin to T1D rats compared to ginger-derived EVs (Gin-EVs) and milk-derived EVs (Mi-EVs), attributed to their enhanced endocytosis, secretion pathways, and more efficient transcytosis across epithelia. The capacity of Gra-EVs to regulate epithelial proteins associated with cytoskeletal organization, secretion, and recycling-related transport facilitated a robust positive feedback loop known as the self-amplifying feedback loop, thereby enhancing intestinal absorption. Notably, phosphatidic acid (PA), the phospholipid abundant in plant-derived EVs, was proved to augment the transcytosis through MAPK/ERK1/2 signaling pathway activation. Thus, edible plant-derived EVs, especially Gra-EVs, exploited the self-amplifying feedback loop and phosphatidic acid for improved oral delivery of biomacromolecules.
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