Wang Yihua, Worrell Gregory A, Wang Hai-Long
Neurology Department Mayo Clinic Rochester Minnesota USA.
Department of Physiology and Biomedical Engineering Mayo Clinic Rochester Minnesota USA.
J Extracell Biol. 2024 Nov 29;3(11):e70018. doi: 10.1002/jex2.70018. eCollection 2024 Nov.
Extracellular vesicles (EVs) are small membrane-bound structures that originate from various cell types and carry molecular cargos to influence the behaviour of recipient cells. The use of EVs as biomarkers for diagnosis and as delivery vehicles for treatment in a wide range of human disease is a rapidly growing field in research and clinical practice. We hypothesized that electric fields (EFs) could influence the release and content of EVs. To examine this hypothesis, we developed a specialized bioreactor enabling cells to thrive in a three-dimensional setting, replicating in-vivo conditions amidst programmable EF environments. We established a three-step EV purification protocol to achieve high-density production of EVs. We also performed mass spectrometry-based proteomics analysis on EV-carrying proteins and used high-resolution nanoparticle flowcytometry for single-vesicle analysis. Findings from this report suggest that electrical stimulation, employing physiologically relevant amplitudes typical in therapeutic deep brain stimulation, influences the release of EVs and their cargo content in a frequency-dependent fashion. This conclusion could carry significant implications for both fundamental biological understanding and medical advancements. First, it raises an intriguing question about how the endogenous electrical activity of neuronal and other cellular assemblies influence the production and composition of EVs. Second, it reveals a novel underlying mechanism of how therapeutic electrical stimulations can modulate EVs and treat human brain disorders. Third, it provides a novel approach to utilize electrical stimulation for generating desired EV cargos in a programmable setting.
细胞外囊泡(EVs)是源自各种细胞类型的小膜结合结构,携带分子货物以影响受体细胞的行为。在广泛的人类疾病中,将EVs用作诊断生物标志物和治疗递送载体是研究和临床实践中一个快速发展的领域。我们假设电场(EFs)可以影响EVs的释放和内容物。为了检验这一假设,我们开发了一种专门的生物反应器,使细胞能够在三维环境中茁壮成长,在可编程的EF环境中模拟体内条件。我们建立了一个三步EV纯化方案,以实现EVs的高密度生产。我们还对携带EV的蛋白质进行了基于质谱的蛋白质组学分析,并使用高分辨率纳米颗粒流式细胞术进行单囊泡分析。本报告的研究结果表明,采用治疗性深部脑刺激中典型的生理相关振幅的电刺激,以频率依赖的方式影响EVs的释放及其货物含量。这一结论可能对基础生物学理解和医学进步都具有重要意义。首先,它提出了一个有趣的问题,即神经元和其他细胞集合体的内源性电活动如何影响EVs的产生和组成。其次,它揭示了治疗性电刺激如何调节EVs并治疗人类脑部疾病的一种新的潜在机制。第三,它提供了一种在可编程环境中利用电刺激产生所需EV货物的新方法。