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探索脉冲电磁场与线粒体的相互作用:解决糖尿病性神经病变中神经炎症和氧化应激策略的深入探讨。

Exploring Mitochondrial Interactions with Pulsed Electromagnetic Fields: An Insightful Inquiry into Strategies for Addressing Neuroinflammation and Oxidative Stress in Diabetic Neuropathy.

机构信息

Medical Sciences Department, University of Ferrara, 44133 Ferrara, Italy.

Endocrine, Metabolism and Nutrition Disease Unit, Ca' Foncello Sant Mary Hospital, 30193 Treviso, Italy.

出版信息

Int J Mol Sci. 2024 Jul 16;25(14):7783. doi: 10.3390/ijms25147783.

Abstract

Pulsed electromagnetic fields (PEMFs) are recognized for their potential in regenerative medicine, offering a non-invasive avenue for tissue rejuvenation. While prior research has mainly focused on their effects on bone and dermo-epidermal tissues, the impact of PEMFs on nervous tissue, particularly in the context of neuropathy associated with the diabetic foot, remains relatively unexplored. Addressing this gap, our preliminary in vitro study investigates the effects of complex magnetic fields (CMFs) on glial-like cells derived from mesenchymal cell differentiation, serving as a model for neuropathy of the diabetic foot. Through assessments of cellular proliferation, hemocompatibility, mutagenicity, and mitochondrial membrane potential, we have established the safety profile of the system. Furthermore, the analysis of microRNAs (miRNAs) suggests that CMFs may exert beneficial effects on cell cycle regulation, as evidenced by the upregulation of the miRNAs within the 121, 127, and 142 families, which are known to be associated with mitochondrial function and cell cycle control. This exploration holds promise for potential applications in mitigating neuropathic complications in diabetic foot conditions.

摘要

脉冲电磁场(PEMFs)因其在再生医学中的潜力而备受认可,为组织再生提供了一种非侵入性的途径。虽然先前的研究主要集中在它们对骨骼和皮肤组织的影响上,但 PEMFs 对神经组织的影响,特别是在与糖尿病足相关的神经病变方面,仍然相对未被探索。为了填补这一空白,我们的初步体外研究调查了复杂磁场(CMFs)对源自间充质细胞分化的神经胶质样细胞的影响,该研究模型模拟了糖尿病足的神经病变。通过评估细胞增殖、血液相容性、致突变性和线粒体膜电位,我们已经确定了该系统的安全性特征。此外,miRNA 的分析表明,CMFs 可能对细胞周期调控发挥有益作用,这一点可以从已知与线粒体功能和细胞周期控制相关的 121、127 和 142 家族的 miRNA 上调得到证明。这种探索为减轻糖尿病足病症中的神经病变并发症的潜在应用提供了希望。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b62f/11277522/f5b75da0775c/ijms-25-07783-g001.jpg

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