Consiglio Nazionale delle Ricerche, Istituto per le Applicazioni del Calcolo "Mauro Picone", 00185 Roma, Italy.
Dipartimento di Scienza Applicata e Tecnologia, Politecnico di Torino, 10129 Turin, Italy.
Int J Mol Sci. 2024 Sep 11;25(18):9808. doi: 10.3390/ijms25189808.
The therapeutic usage of physical stimuli is framed in a highly heterogeneous research area, with variable levels of maturity and of translatability into clinical application. In particular, electrostimulation is deeply studied for its application on the autonomous nervous system, but less is known about the anti- inflammatory effects of such stimuli beyond the . Further, reproducibility and meta-analyses are extremely challenging, owing to the limited rationale on dosage and experimental standardization. It is specifically to address the fundamental question on the anti-inflammatory effects of electricity on biological systems, that we propose a series of controlled experiments on the effects of direct and alternate current delivered on a standardized 3D bioconstruct constituted by fibroblasts and keratinocytes in a collagen matrix, in the presence or absence of TNF-α as conventional inflammation inducer. This selected but systematic exploration, with transcriptomics backed by metabolomics at specific time points allows to obtain the first systemic overview of the biological functions at stake, highlighting the differential anti-inflammatory potential of such approaches, with promising results for 5 V direct current stimuli, correlating with the wound healing process. With our results, we wish to set the base for a rigorous systematic approach to the problem, fundamental towards future elucidations of the detailed mechanisms at stake, highlighting both the healing and damaging potential of such approaches.
物理刺激的治疗用途被框定在一个高度异质的研究领域,具有不同的成熟度和可转化为临床应用的程度。特别是,电刺激因其在自主神经系统上的应用而被深入研究,但关于此类刺激的抗炎作用,除了炎症反应之外,人们知之甚少。此外,由于剂量和实验标准化的基本原理有限,重现性和荟萃分析极具挑战性。正是为了解决关于电流对生物系统的抗炎作用的基本问题,我们提出了一系列关于直接和交流电在标准化 3D 生物构建体上的影响的对照实验,该生物构建体由成纤维细胞和角质形成细胞组成,存在或不存在 TNF-α作为常规炎症诱导剂。这种有选择但系统的探索,结合特定时间点的转录组学和代谢组学,使我们能够首次全面了解所涉及的生物学功能,突出了这些方法的抗炎潜力的差异,对于 5V 直流电刺激具有有希望的结果,与伤口愈合过程相关。通过我们的结果,我们希望为这个问题建立一个严格的系统方法的基础,这对未来阐明所涉及的详细机制至关重要,突出了这些方法的治疗和损伤潜力。