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超声刺激压电纳米复合水凝胶在正常和炎症环境中均能促进软骨分化。

Ultrasound Stimulation of Piezoelectric Nanocomposite Hydrogels Boosts Chondrogenic Differentiation , in Both a Normal and Inflammatory Milieu.

机构信息

The BioRobotics Institute, Scuola Superiore Sant'Anna, Piazza Martiri della Libertà 33, 56127 Pisa, Italy.

Department of Excellence in Robotics & AI, Scuola Superiore Sant'Anna, Piazza Martiri della Libertà 33, 56127 Pisa, Italy.

出版信息

ACS Nano. 2024 Jan 23;18(3):2047-2065. doi: 10.1021/acsnano.3c08738. Epub 2024 Jan 2.

Abstract

The use of piezoelectric nanomaterials combined with ultrasound stimulation is emerging as a promising approach for wirelessly triggering the regeneration of different tissue types. However, it has never been explored for boosting chondrogenesis. Furthermore, the ultrasound stimulation parameters used are often not adequately controlled. In this study, we show that adipose-tissue-derived mesenchymal stromal cells embedded in a nanocomposite hydrogel containing piezoelectric barium titanate nanoparticles and graphene oxide nanoflakes and stimulated with ultrasound waves with precisely controlled parameters (1 MHz and 250 mW/cm, for 5 min once every 2 days for 10 days) dramatically boost chondrogenic cell commitment . Moreover, fibrotic and catabolic factors are strongly down-modulated: proteomic analyses reveal that such stimulation influences biological processes involved in cytoskeleton and extracellular matrix organization, collagen fibril organization, and metabolic processes. The optimal stimulation regimen also has a considerable anti-inflammatory effect and keeps its ability to boost chondrogenesis , even in an inflammatory milieu. An analytical model to predict the voltage generated by piezoelectric nanoparticles invested by ultrasound waves is proposed, together with a computational tool that takes into consideration nanoparticle clustering within the cell vacuoles and predicts the electric field streamline distribution in the cell cytoplasm. The proposed nanocomposite hydrogel shows good injectability and adhesion to the cartilage tissue , as well as excellent biocompatibility according to ISO 10993. Future perspectives will involve preclinical testing of this paradigm for cartilage regeneration.

摘要

利用压电纳米材料与超声刺激相结合的方法正在成为一种很有前途的无线触发不同组织类型再生的方法。然而,它从未被用于促进软骨生成。此外,通常无法充分控制所使用的超声刺激参数。在这项研究中,我们表明,含有压电钛酸钡纳米颗粒和氧化石墨烯纳米片的纳米复合材料水凝胶中嵌入的脂肪组织来源的间充质基质细胞,在经过精确控制参数(1 MHz 和 250 mW/cm,每 2 天刺激 5 分钟,共 10 天)的超声波刺激下,可显著促进软骨细胞的定向分化。此外,纤维化和分解代谢因子的表达也被强烈下调:蛋白质组学分析表明,这种刺激会影响细胞骨架和细胞外基质组织、胶原纤维组织以及代谢过程等生物学过程。最佳刺激方案还具有显著的抗炎作用,并保持其促进软骨生成的能力,即使在炎症环境中也是如此。本文提出了一种预测被超声波投资的压电纳米粒子产生电压的分析模型,以及一种考虑到细胞液泡内纳米粒子团聚并预测细胞细胞质内电场流线分布的计算工具。所提出的纳米复合水凝胶具有良好的可注射性和与软骨组织的粘附性,并且根据 ISO 10993 标准具有良好的生物相容性。未来的研究方向将包括这种软骨再生范例的临床前测试。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/fb4b/10811754/243d82217132/nn3c08738_0009.jpg

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