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通过金属有机骨架纳米颗粒递送来辅助缺血性脑卒中神经干细胞治疗的 microRNAs。

Delivery of miRNAs through Metal-Organic Framework Nanoparticles for Assisting Neural Stem Cell Therapy for Ischemic Stroke.

机构信息

State Key Laboratory of Crystal Materials, Shandong University, Jinan, Shandong 250100, People's Republic of China.

Department of Neurosurgery, The First Affiliated Hospital of Shandong First Medical University & Shandong Provincial Qianfoshan Hospital, Jinan, Shandong 250014, People's Republic of China.

出版信息

ACS Nano. 2022 Sep 27;16(9):14503-14516. doi: 10.1021/acsnano.2c04886. Epub 2022 Sep 6.

Abstract

Stroke is the most common cause of disability globally. Neural stem cell (NSC) therapy, which can replace lost and damaged neurons, has been proposed as a potential treatment for stroke. The therapeutic efficacy of NSC therapy is hindered by the fact that only a small number of NSCs undergo neuronal differentiation. Neuron-specific miR-124, which promotes the differentiation of NSCs into mature neurons, can be combined with NSC therapy to cure ischemic stroke. However, the instability and poor internalization of miR-124 seriously hamper its broad clinical application. Herein, an innovative strategy involving delivery of miR-124 via a Ca-MOF@miR-124 nanodelivery system, which effectively prevents the degradation of miR-124 by nucleases and promotes the internalization of miR-124 by NSCs, is presented. The effect of accelerated neuronal directed differentiation of NSCs was assessed through cell experiments, and the clinical application potential of this nanodelivery system for the treatment of ischemic stroke was assessed through experiments involving the combination of NSC therapy and Ca-MOF@miR-124 nanoparticles. The results indicate that Ca-MOF@miR-124 nanoparticles can promote the differentiation of NSCs into mature neurons with electrophysiological function within 5 days. The differentiation rate of cells treated with Ca-MOF@miR-124 nanoparticles was at least 5 days faster than that of untreated cells. Moreover, Ca-MOF@miR-124 nanoparticles decreased the ischemic area to almost normal levels by day 7. The combination of Ca-MOF@miR-124 nanoparticles and NSC therapy will enhance the treatment of traumatic nerve injury and neurodegenerative diseases.

摘要

中风是全球最常见的致残原因。神经干细胞(NSC)治疗,可替代丢失和受损的神经元,被认为是中风的一种潜在治疗方法。NSC 治疗的疗效受到只有少数 NSCs 进行神经元分化的限制。神经元特异性 miR-124 可促进 NSCs 分化为成熟神经元,与 NSC 治疗相结合可治疗缺血性中风。然而,miR-124 的不稳定性和内化不良严重阻碍了其广泛的临床应用。在此,提出了一种通过 Ca-MOF@miR-124 纳米递药系统递送 miR-124 的创新策略,该策略可有效防止核酸酶降解 miR-124 并促进 NSCs 内化 miR-124。通过细胞实验评估了 NSCs 加速向神经元定向分化的效果,并通过将 NSC 治疗与 Ca-MOF@miR-124 纳米颗粒结合的实验评估了该纳米递药系统治疗缺血性中风的临床应用潜力。结果表明,Ca-MOF@miR-124 纳米颗粒可在 5 天内促进 NSCs 分化为具有电生理功能的成熟神经元。用 Ca-MOF@miR-124 纳米颗粒处理的细胞的分化速度比未处理的细胞至少快 5 天。此外,Ca-MOF@miR-124 纳米颗粒可使缺血区在第 7 天几乎恢复正常水平。Ca-MOF@miR-124 纳米颗粒与 NSC 治疗的结合将增强对创伤性神经损伤和神经退行性疾病的治疗效果。

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