Photobiomodulation: a novel approach to promote trans-differentiation of adipose-derived stem cells into neuronal-like cells.

IF 5.9 2区 医学 Q2 CELL BIOLOGY Neural Regeneration Research Pub Date : 2025-02-01 Epub Date: 2024-04-03 DOI:10.4103/NRR.NRR-D-23-01219
Daniella Da Silva, Madeleen Jansen van Rensburg, Anine Crous, Heidi Abrahamse
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Abstract

JOURNAL/nrgr/04.03/01300535-202502000-00035/figure1/v/2024-05-28T214302Z/r/image-tiff Photobiomodulation, originally used red and near-infrared lasers, can alter cellular metabolism. It has been demonstrated that the visible spectrum at 451-540 nm does not necessarily increase cell proliferation, near-infrared light promotes adipose stem cell proliferation and affects adipose stem cell migration, which is necessary for the cells homing to the site of injury. In this in vitro study, we explored the potential of adipose-derived stem cells to differentiate into neurons for future translational regenerative treatments in neurodegenerative disorders and brain injuries. We investigated the effects of various biological and chemical inducers on trans-differentiation and evaluated the impact of photobiomodulation using 825 nm near-infrared and 525 nm green laser light at 5 J/cm2. As adipose-derived stem cells can be used in autologous grafting and photobiomodulation has been shown to have biostimulatory effects. Our findings reveal that adipose-derived stem cells can indeed trans-differentiate into neuronal cells when exposed to inducers, with pre-induced cells exhibiting higher rates of proliferation and trans-differentiation compared with the control group. Interestingly, green laser light stimulation led to notable morphological changes indicative of enhanced trans-differentiation, while near-infrared photobiomodulation notably increased the expression of neuronal markers. Through biochemical analysis and enzyme-linked immunosorbent assays, we observed marked improvements in viability, proliferation, membrane permeability, and mitochondrial membrane potential, as well as increased protein levels of neuron-specific enolase and ciliary neurotrophic factor. Overall, our results demonstrate the efficacy of photobiomodulation in enhancing the trans-differentiation ability of adipose-derived stem cells, offering promising prospects for their use in regenerative medicine for neurodegenerative disorders and brain injuries.

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光生物调节:促进脂肪干细胞向神经元样细胞转分化的新方法。
JOURNAL/nrgr/04.03/01300535-202502000-00035/figure1/v/2024-05-28T214302Z/r/image-tiff 光生物调控(Photobiomodulation),最初使用的是红光和近红外光激光,可以改变细胞的新陈代谢。有研究表明,451-540 纳米的可见光谱不一定会增加细胞增殖,近红外线可促进脂肪干细胞增殖并影响脂肪干细胞迁移,而细胞迁移是细胞归巢到损伤部位的必要条件。在这项体外研究中,我们探索了脂肪干细胞分化成神经元的潜力,以用于未来神经退行性疾病和脑损伤的转化再生治疗。我们研究了各种生物和化学诱导剂对转分化的影响,并评估了使用 825 纳米近红外和 525 纳米 5 J/cm2 绿色激光进行光生物调节的影响。由于脂肪源性干细胞可用于自体移植,而光生物调节已被证明具有生物刺激作用。我们的研究结果表明,当暴露于诱导剂时,脂肪源性干细胞确实可以向神经元细胞进行转分化,与对照组相比,预诱导细胞表现出更高的增殖率和转分化率。有趣的是,绿色激光刺激会导致明显的形态学变化,表明转分化得到了加强,而近红外光生物调节则显著增加了神经元标记物的表达。通过生化分析和酶联免疫吸附试验,我们观察到活力、增殖、膜通透性和线粒体膜电位明显改善,神经元特异性烯醇化酶和睫状神经营养因子的蛋白水平也有所提高。总之,我们的研究结果证明了光生物调节在提高脂肪来源干细胞转分化能力方面的功效,为其在神经退行性疾病和脑损伤再生医学中的应用提供了广阔的前景。
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来源期刊
Neural Regeneration Research
Neural Regeneration Research CELL BIOLOGY-NEUROSCIENCES
CiteScore
8.00
自引率
9.80%
发文量
515
审稿时长
1.0 months
期刊介绍: Neural Regeneration Research (NRR) is the Open Access journal specializing in neural regeneration and indexed by SCI-E and PubMed. The journal is committed to publishing articles on basic pathobiology of injury, repair and protection to the nervous system, while considering preclinical and clinical trials targeted at improving traumatically injuried patients and patients with neurodegenerative diseases.
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