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无细胞合成连接蛋白 43 整合的外泌体模拟纳米颗粒用于 siRNA 递释。

Cell-free synthesis of connexin 43-integrated exosome-mimetic nanoparticles for siRNA delivery.

机构信息

School of Pharmacy, Shenyang Pharmaceutical University, Shenyang, China.

School of Life Science and Biopharmaceutics, Shenyang Pharmaceutical University, Shenyang, China.

出版信息

Acta Biomater. 2019 Sep 15;96:517-536. doi: 10.1016/j.actbio.2019.07.006. Epub 2019 Jul 5.


DOI:10.1016/j.actbio.2019.07.006
PMID:31284098
Abstract

Exosomes are naturally secreted nanovesicles that have emerged as a promising therapeutic nanodelivery platform, due to their specific composition and biological properties. However, challenges like considerable complexity, low isolation yield, drug payload, and potential safety concerns substantially reduce their pharmaceutical acceptability. Given that the nano-bio-interface is a crucial factor for nanocarrier behavior and function, modification of synthetic nanoparticles with the intrinsic hallmarks of exosomes' membrane to create exosome mimetics could allow for siRNA delivery in a safer and more efficient manner. Herein, connexin 43 (Cx43)-embedded, exosome-mimicking lipid bilayers coated chitosan nanoparticles (Cx43/L/CS NPs) were constructed by using cell-free (CF) synthesis systems with plasmids encoding Cx43 in the presence of lipid-coated CS NPs (L/CS NPs). The integration of de novo synthesized Cx43 into the lipid bilayers of L/CS NPs occurred cotranslationally during one-pot reaction and, more importantly, the integrated Cx43 was functionally active in transport. In addition to considerably lower cytotoxicity (<four-fold) than cationic Lipo 2000, the obtained Cx43/L/CS-siRNA NPs showed feasible cellular uptake and silencing efficacy that was significantly higher than free siRNA and CS-siRNA NPs. By using a gap junction (GJ) inhibitor, 18β-glycyrrhetinic acid, we demonstrated that Cx43 facilitated the delivery of siRNA into Cx43-expressing U87 MG cells. Additionally, the cellular entry of Cx43/L/CS-siRNA NPs may rely on different endocytic mechanisms, depending on the types of recipient cells. However, Cx43/L/CS-siRNA NPs still exhibited far from adequate delivery efficiency compared with transfection reagent Lipo 2000. Taken together, our study provides a brand new strategy to construct Cx43-functionalized, exosome-mimetic nanoparticles, which may further encourage the establishment of more biomimetic nanocarriers with higher biocompatibility and delivery efficiency. SIGNIFICANCE OF STATEMENT: The major issue to move RNA interference (RNAi) therapy from bench to bedside is the lack of safe and efficient delivery vehicles. Given the certain advantages and limitations of exosomes and synthetic nanocarriers, a promising strategy is to facilitate positive feedbacks between the two fields, in which the superiority of exosomes regarding special membrane composition beneficial for cytoplasmic delivery and the better pharmaceutical acceptance of synthetic nanocarriers could be combined. In this study, we reported to construct Cx43-integrated, exosome-mimetic lipid bilayers coated nanoparticles by using CF synthesis technique. The obtained Cx43/L/CS-siRNA NPs were characterized by desirable cytotoxicity profile and feasible delivery efficiency. This study provides a new avenue and insights for the synthesis of more biocompatible and effective bio-mimetic siRNA delivery platforms.

摘要

外泌体是自然分泌的纳米囊泡,由于其特定的组成和生物学特性,已成为有前途的治疗性纳米递药平台。然而,相当大的复杂性、低分离产率、药物有效载荷和潜在的安全问题等挑战,大大降低了它们在药物方面的可接受性。鉴于纳米-生物界面是纳米载体行为和功能的关键因素,用外泌体膜的固有特征对合成纳米粒子进行修饰,以创建外泌体模拟物,可能允许以更安全、更有效的方式递送 siRNA。在此,通过使用含有编码 Cx43 的质粒的无细胞 (CF) 合成系统,在脂质包覆的壳聚糖纳米粒子 (L/CS NPs) 存在下,构建了嵌入连接蛋白 43 (Cx43) 的、具有外泌体模拟双层膜的壳聚糖纳米粒子 (Cx43/L/CS NPs)。在一锅反应中,Cx43 进行共翻译整合到 L/CS NPs 的脂质双层中,更重要的是,整合的 Cx43 在转运过程中具有功能活性。与阳离子脂质体 2000 相比,获得的 Cx43/L/CS-siRNA NPs 的细胞毒性显著降低(<4 倍),并且其细胞摄取和沉默效果明显高于游离 siRNA 和 CS-siRNA NPs。通过使用间隙连接 (GJ) 抑制剂 18β-甘草次酸,我们证明 Cx43 有助于 siRNA 递送至表达 Cx43 的 U87 MG 细胞。此外,Cx43/L/CS-siRNA NPs 的细胞进入可能依赖于不同的内吞机制,具体取决于受体细胞的类型。然而,与转染试剂脂质体 2000 相比,Cx43/L/CS-siRNA NPs 的递送效率仍然远远不够。总的来说,我们的研究提供了一种构建 Cx43 功能化的外泌体模拟纳米粒子的全新策略,这可能进一步鼓励建立具有更高生物相容性和递送效率的更多仿生纳米载体。

声明的意义:将 RNA 干扰 (RNAi) 疗法从实验室推向临床的主要问题是缺乏安全有效的递送载体。鉴于外泌体和合成纳米载体的某些优势和局限性,一种有前途的策略是促进这两个领域之间的积极反馈,其中外泌体在细胞质递送方面特殊膜组成的优势和合成纳米载体更好的药物可接受性可以结合起来。在这项研究中,我们报告了使用 CF 合成技术构建 Cx43 整合的外泌体模拟脂质双层包覆的纳米粒子。所得到的 Cx43/L/CS-siRNA NPs 表现出良好的细胞毒性特征和可行的递送效率。本研究为合成更具生物相容性和有效性的仿生 siRNA 递药平台提供了新的途径和思路。

相似文献

[1]
Cell-free synthesis of connexin 43-integrated exosome-mimetic nanoparticles for siRNA delivery.

Acta Biomater. 2019-7-5

[2]
Comparison of exosome-mimicking liposomes with conventional liposomes for intracellular delivery of siRNA.

Int J Pharm. 2018-8-20

[3]
One-Step Production Using a Microfluidic Device of Highly Biocompatible Size-Controlled Noncationic Exosome-like Nanoparticles for RNA Delivery.

ACS Appl Bio Mater. 2021-2-15

[4]
Biomimetic cell membrane-coated nanocarriers for targeted siRNA delivery in cancer therapy.

Drug Discov Today. 2023-4

[5]
Arrowtail RNA for Ligand Display on Ginger Exosome-like Nanovesicles to Systemic Deliver siRNA for Cancer Suppression.

Sci Rep. 2018-10-2

[6]
Development of antibody-modified chitosan nanoparticles for the targeted delivery of siRNA across the blood-brain barrier as a strategy for inhibiting HIV replication in astrocytes.

Drug Deliv Transl Res. 2017-8

[7]
siRNA release kinetics from polymeric nanoparticles correlate with RNAi efficiency and inflammation therapy via oral delivery.

Acta Biomater. 2020-2

[8]
Bioinspired exosome-like therapeutics and delivery nanoplatforms.

Biomaterials. 2020-6

[9]
RNAi delivery by exosome-mimetic nanovesicles - Implications for targeting c-Myc in cancer.

Biomaterials. 2016-6-15

[10]
Macrophage-derived exosome-mimetic hybrid vesicles for tumor targeted drug delivery.

Acta Biomater. 2019-5-24

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[3]
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[4]
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[5]
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[7]
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[8]
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[9]
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