Multiomic Profiling and Neuroprotective Bioactivity of Salvia Hairy Root-Derived Extracellular Vesicles in a Cellular Model of Parkinson’s Disease

IF 6.6 2区 医学 Q1 NANOSCIENCE & NANOTECHNOLOGY International Journal of Nanomedicine Pub Date : 2024-09-11 DOI:10.2147/ijn.s479959
Vincenzo Vestuto, Marisa Conte, Mariapia Vietri, Francesca Mensitieri, Valentina Santoro, Anna Di Muro, Mariaevelina Alfieri, Maria Moros, Maria Rosaria Miranda, Chiara Amante, Matteo Delli Carri, Pietro Campiglia, Fabrizio Dal Piaz, Pasquale Del Gaudio, Nunziatina De Tommasi, Antonietta Leone, Ornella Moltedo, Giacomo Pepe, Elisa Cappetta, Alfredo Ambrosone
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Abstract

Purpose: Extracellular vesicles (EVs) are promising tools for nanomedicine and nanobiotechnology. The purification of mammalian-derived EVs involves intensive processes, and their therapeutic application raises multiple safety and regulatory issues. Plants have the potential to serve as nonconventional sources of therapeutically relevant EVs. In this context, we recently identified hairy roots (HRs) of medicinal plants as a novel biotechnological platform to produce EVs for human health.
Methods: Herein, we report the purification, omics profiling, and bioactivity of EVs isolated from HRs of the medicinal plants S. sclarea and S. dominica. EVs were isolated from conditioned media of HR cultures using differential ultracentrifugation (dUC) and size exclusion chromatography (SEC). The isolated EVs were characterized by nanoparticle tracking analysis (NTA) and electron microscopy. The proteomic and metabolomic profiles of the EVs were determined using mass spectrometry. Uptake studies and bioactivity assays, including confocal microscopy, MTT, flow cytometry, ROS quantification, and untargeted metabolomics analyses, were conducted in SH-SY5Y cells treated with the neurotoxin 6-hydroxydopamine (6-OHDA) to evaluate the therapeutic potential of EVs in an in vitro model of Parkinson’s disease.
Results: S. sclarea HRs released nanosized round-shaped EVs with a distinctive molecular signature. HR EVs from S. sclarea and S. dominica revealed conserved cargo of secondary metabolites, predominantly triterpenoids, which are known for their antioxidant properties. We showed that HR EVs are safe, enter the cells, and strongly inhibit apoptosis in a cellular model of Parkinson’s disease. Cellular metabolomics revealed that EVs preserved metabolic homeostasis and mitigated cellular oxidative stress when co-administered with 6-OHDA. Mechanistically, HR EVs inhibited 6-OHDA autoxidation and substantially reduced the accumulation of its oxidative products, which are responsible for 6-OHDA-induced toxicity.
Conclusion: Collectively, our findings provide compelling evidence that EVs isolated from the hairy roots of Salvia species are promising, non-mammalian alternative for the design of novel therapies targeting neurological disorders.

Keywords: non-mammalian EV source, Salvia extracellular vesicles, hairy roots, nanomedicine, neuroprotection, Parkinson’s disease
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丹参毛根提取的细胞外囊泡在帕金森病细胞模型中的多组学分析和神经保护生物活性
目的:细胞外囊泡(EVs)是纳米医学和纳米生物技术的理想工具。纯化源自哺乳动物的 EVs 需要密集的过程,而且其治疗应用会引发多种安全和监管问题。植物有可能成为治疗相关 EVs 的非常规来源。方法:在此,我们报告了从药用植物 S. sclarea 和 S. dominica 的毛根(HRs)中分离出的 EVs 的纯化、omics 分析和生物活性。我们使用差分超速离心(dUC)和尺寸排阻色谱(SEC)从HR培养的条件培养基中分离出了EVs。通过纳米粒子跟踪分析(NTA)和电子显微镜对分离的 EVs 进行了表征。利用质谱测定了 EVs 的蛋白质组和代谢组特征。在用神经毒素 6-羟基多巴胺(6-OHDA)处理的 SH-SY5Y 细胞中进行了吸收研究和生物活性测定,包括共聚焦显微镜、MTT、流式细胞仪、ROS 定量和非靶向代谢组学分析,以评估 EVs 在帕金森病体外模型中的治疗潜力:结果:S. sclarea HRs释放的纳米级圆形EVs具有独特的分子特征。来自 S. sclarea 和 S. dominica 的 HR EVs 揭示了保守的次生代谢产物,主要是三萜类化合物,它们具有抗氧化特性。在帕金森病的细胞模型中,我们发现 HR EVs 是安全的,可以进入细胞并强烈抑制细胞凋亡。细胞代谢组学显示,当与 6-OHDA 同时服用时,EVs 能保持代谢平衡并减轻细胞氧化应激。从机理上讲,HR EVs 可抑制 6-OHDA 的自氧化作用,并大大减少其氧化产物的积累,而氧化产物正是 6-OHDA 引发毒性的原因:总之,我们的研究结果提供了令人信服的证据,证明从丹参毛根中分离出的EVs是一种很有前景的非哺乳动物EVs,可用于设计针对神经系统疾病的新型疗法。关键词:非哺乳动物EV来源;丹参细胞外囊泡;毛状根;纳米药物;神经保护;帕金森病
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来源期刊
International Journal of Nanomedicine
International Journal of Nanomedicine NANOSCIENCE & NANOTECHNOLOGY-PHARMACOLOGY & PHARMACY
CiteScore
14.40
自引率
3.80%
发文量
511
审稿时长
1.4 months
期刊介绍: The International Journal of Nanomedicine is a globally recognized journal that focuses on the applications of nanotechnology in the biomedical field. It is a peer-reviewed and open-access publication that covers diverse aspects of this rapidly evolving research area. With its strong emphasis on the clinical potential of nanoparticles in disease diagnostics, prevention, and treatment, the journal aims to showcase cutting-edge research and development in the field. Starting from now, the International Journal of Nanomedicine will not accept meta-analyses for publication.
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