Ultrasound-Responsive Polymeric Piezoelectric Nanoparticles for Remote Activation and Neuronal Differentiation of Human Neural Stem Cells.

IF 11.1 Q1 MATERIALS SCIENCE, MULTIDISCIPLINARY
Small Science Pub Date : 2024-11-27 eCollection Date: 2025-02-01 DOI:10.1002/smsc.202400354
Arianna Bargero, Matteo Battaglini, Tommaso Curiale, Alessio Carmignani, Margherita Montorsi, Massimiliano Labardi, Carlotta Pucci, Attilio Marino, Gianni Ciofani
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引用次数: 0

Abstract

The regenerative capacity of the central nervous system (CNS) is limited. Understanding and enhancing the mechanisms that induce neural differentiation of neural stem cells (NSCs) is crucial for advancing regenerative medicine; one significant challenge in this effort is the remote delivery of pro-differentiation cues. In this framework, a nanotechnology-based solution able to remotely trigger the differentiation of human NSCs (hNSCs) into neurons is proposed. The approach involves organic piezoelectric nanotransducers, which can be remotely activated by low-intensity ultrasound (US) for local and noninvasive electrical stimulation. Highly biocompatible piezoelectric polymeric nanoparticles, when activated by US, demonstrate the ability to induce calcium influx, exit from the cell cycle, and neuronal differentiation in hNSCs, as evidenced by calcium imaging experiments and the expression analysis of the NeuN post-mitotic neural marker; additionally, an increased outgrowth of the developing axons is observed. Gene expression analysis moreover suggests that the neural differentiation mechanism induced by piezoelectric stimulation acts by upregulating the calcium signaling-sensitive NeuroD1 neural inducer and the Lamb1 marker, independently of the c-Jun/c-Fos pathway. Considering the high biocompatibility and the good piezoelectricity of the polymeric nanotransducers used in this work, it is believed that this "wireless" stimulation approach holds high potential in CNS regenerative medicine.

超声响应聚合物压电纳米颗粒用于人神经干细胞的远程激活和神经元分化。
中枢神经系统(CNS)的再生能力有限。了解和加强神经干细胞(NSCs)诱导神经分化的机制对推进再生医学至关重要;这项工作的一个重大挑战是远程传递促分化线索。在此框架下,提出了一种基于纳米技术的解决方案,能够远程触发人类NSCs (hNSCs)向神经元的分化。该方法涉及有机压电纳米换能器,它可以通过低强度超声(US)进行局部和非侵入性电刺激来远程激活。通过钙成像实验和NeuN有丝分裂后神经标记物的表达分析,高生物相容性压电聚合物纳米颗粒在被US激活时,显示出在hNSCs中诱导钙流入、退出细胞周期和神经元分化的能力;此外,还观察到发育中的轴突的生长增加。基因表达分析进一步表明,压电刺激诱导神经分化的机制是通过上调钙信号敏感的神经诱导剂NeuroD1和Lamb1标志物,而不依赖于c-Jun/c-Fos通路。考虑到本研究中使用的聚合物纳米换能器的高生物相容性和良好的压电性,我们认为这种“无线”刺激方法在中枢神经系统再生医学中具有很高的潜力。
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来源期刊
CiteScore
14.00
自引率
2.40%
发文量
0
期刊介绍: Small Science is a premium multidisciplinary open access journal dedicated to publishing impactful research from all areas of nanoscience and nanotechnology. It features interdisciplinary original research and focused review articles on relevant topics. The journal covers design, characterization, mechanism, technology, and application of micro-/nanoscale structures and systems in various fields including physics, chemistry, materials science, engineering, environmental science, life science, biology, and medicine. It welcomes innovative interdisciplinary research and its readership includes professionals from academia and industry in fields such as chemistry, physics, materials science, biology, engineering, and environmental and analytical science. Small Science is indexed and abstracted in CAS, DOAJ, Clarivate Analytics, ProQuest Central, Publicly Available Content Database, Science Database, SCOPUS, and Web of Science.
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