4.8 Article

Hyperbranched lipoid-based lipid nanoparticles for bidirectional regulation of collagen accumulation in liver fibrosis

期刊

JOURNAL OF CONTROLLED RELEASE
卷 321, 期 -, 页码 629-640

出版社

ELSEVIER
DOI: 10.1016/j.jconrel.2020.02.049

关键词

Liver fibrosis; Hepatic stellate cells; Collagen accumulation; Lipoid-based lipid nanoparticles; siRNA; Bidirectional regulation

资金

  1. National Science and Technology Major Project [2017YFA0205400]
  2. National Natural Science Foundation of China [81773667, 81573369, 81803473]
  3. Fund for International Cooperation and Exchange of the National Natural Science Foundation of China [81811540416]
  4. Open Project of Jiangsu Key Laboratory of Druggability of Biopharmaceuticals [1131730003]
  5. Double First-class Project [CPU2018GY06]
  6. 111 Project from the Ministry of Education of China
  7. State Administration of Foreign Experts Affairs of China [B16046]
  8. National Research Foundation of Korea [2018K2A9A2A06019172]

向作者/读者索取更多资源

Liver fibrosis leads to over one million deaths annually worldwide. Hepatic stellate cells (HSCs) have been identified as the main executors of liver fibrosis. Unfortunately, no drug has yet been approved for clinical use against liver fibrosis, largely because the tested drugs have been unable to access HSCs and efficiently remove the collagen accumulation involved in fibrogenesis. Here, we designed an efficient HSC-targeting lipid delivery system that carried dual siRNAs intended to both inhibit collagen synthesis and promote collagen degradation, with the goal of realizing enhanced anti-liver fibrosis by bidirectional regulation of collagen accumulation. The delivery system was constructed by using amphiphilic cationic hyperbranched lipoids (C-15-PA) for siRNA complexation and helper lipoids (cholesterol-polyethylene glycol-vitamin A, Chol-PEG-VA) for HSCs targeting. The generated vitamin A-decorated and hyperbranched lipoid-based lipid nanoparticles (VLNPs) showed excellent gene-binding ability and transfection efficiency, and enhanced the delivery of siRNAs to HSCs. Fibrotic mice treated with dual siRNA-loaded VLNPs showed a great reduction in the collagen accumulation seen in this model; the enhanced effect of bidirectional regulation reduced the collagen accumulation level in treated mice to almost that seen in normal mice. There was no notable sign of toxicity or tissue inflammation in mice exposed to repeated intravenous administration of the dual siRNA-loaded VLNPs. In conclusion, our results indicate that biocompatible VLNPs designed to exploit precise targeting and an effective bidirectional regulation strategy hold promise for treating liver fibrosis.

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