Synthesis of siRNA nanoparticles to silence plaque-destabilizing gene in atherosclerotic lesional macrophages

体内 梅尔特克 RNA干扰 小干扰RNA 细胞生物学 化学 基因沉默 体外 转染 核糖核酸 癌症研究 生物 信号转导 生物化学 基因 生物技术 受体酪氨酸激酶
作者
Xiangang Huang,Chuang LIU,Na Kong,Yufen Xiao,Arif Yurdagul,Ira Tabas,Wei Tao
出处
期刊:Nature Protocols [Nature Portfolio]
卷期号:17 (3): 748-780 被引量:126
标识
DOI:10.1038/s41596-021-00665-4
摘要

Macrophages in atherosclerotic lesions promote plaque progression and are an attractive therapeutic target in cardiovascular research. Here we present a protocol for synthesis of small interfering RNA (siRNA) nanoparticles (NP) that target lesional macrophages as a potential treatment for atherosclerosis. Ca2+/calmodulin-dependent protein kinase γ (CaMKIIγ) activity in macrophages of advanced human and mouse atherosclerotic plaques drives necrosis by downregulating the expression of the efferocytosis receptor MerTK. Therefore, selective inhibition of CaMKIIγ in lesional macrophages holds great promise for the treatment of advanced atherosclerosis. We recently developed a siRNA NP platform that can selectively silence CaMKIIγ in macrophages, resulting in increased plaque stability. We provide a detailed protocol for the synthesis of NP components, the preparation and characterization (physicochemical and in vitro) of siRNA NPs, and the evaluation of in vivo therapeutic effects of siRNA NPs and their biocompatibility in atherosclerotic mice. Our siRNA-loaded polymer–lipid hybrid NPs are constructed via a robust self-assembly method, exhibiting excellent in vivo features for systemic siRNA delivery. Following this protocol, it takes 3–5 d to prepare the siRNA NPs, 8–10 d to characterize the NPs and 4–5 weeks to evaluate their therapeutic effects in established atherosclerotic mice. By changing the RNA molecules loaded in the NPs, lesional macrophages can be targeted for the exploration and validation of new targets/pathways in atherosclerosis. Tao et al. present the synthesis and characterization of siRNA-loaded polymer–lipid hybrid nanoparticles for targeted delivery to macrophages. The nanoparticles are used to silence CaMKIIγ activity in a mouse model of atherosclerosis.
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