Electrospun PAN/PANI/CNT scaffolds and electrical pulses: a pathway to stem cell-derived nerve regeneration.

IF 1.3 Q3 RADIOLOGY, NUCLEAR MEDICINE & MEDICAL IMAGING Biomedical Physics & Engineering Express Pub Date : 2024-07-15 DOI:10.1088/2057-1976/ad5e84
Zahra Fakhraei Khosravieh, Houra Nekounam, Fatemeh Asgari, Nooshin Haghighipour
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Abstract

Biocompatible polymer-based scaffolds hold great promise for neural repair, especially when they are coupled with electrostimulation to induce neural differentiation. In this study, a combination of polyacrylonitrile/polyaniline (PAN/PANI) and Carbon Nanotubes (CNTs) were used to fabricate three different biomimetic electrospun scaffolds (samples 1, 2 and 3 containing 0.26 wt%, 1 wt% and 2 wt% of CNTs, respectively). These scaffolds underwent thorough characterization for assessing electroconductivity, tensile strength, wettability, degradability, swelling, XRD, and FTIR data. Notably, scanning electron microscopy (SEM) images revealed a three-dimensional scaffold morphology with aligned fibers ranging from 60 nm to 292 nm in diameter. To comprehensively investigate the impact of electrical stimulation on the nervous differentiation of the stem cells seeded on these scaffolds, cell morphology and adhesion were assessed based on SEM images. Additionally, scaffold biocompatibility was studied through MTT assay. Importantly, Real-Time PCR results indicated the expression of neural markers-Nestin,β-tubulin III, and MAP2-by the cells cultured on these samples. In comparison with the control group, samples 1 and 2 exhibited significant increases in Nestin marker expression, indicating early stages of neuronal differentiation, whileβ-tubulin III expression was significantly reduced and MAP2 expression remained statistically unchanged. In contrast, sample 3 did not display a statistically significant upturn in Nestin maker expression, while showcasing remarkable increases in the expression of both MAP2 andβ-tubulin III, as markers of the end stages of differentiation, leading to postmitotic neurons. These results could be attributed to the higher electroconductivity of S3 compared to other samples. Our findings highlight the biomimetic potential of the prepared scaffolds for neural repair, illustrating their effectiveness in guiding stem cell differentiation toward a neural lineage.

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电纺 PAN/PANI/CNT 支架和电脉冲:干细胞神经再生之路
生物相容性聚合物基支架在神经修复方面大有可为,尤其是当它们与诱导神经分化的电刺激相结合时。本研究采用聚丙烯腈/聚苯胺(PAN/PANI)和碳纳米管(CNTs)的组合来制造三种不同的仿生物电纺支架(样品 1、2 和 3 分别含有 0.26 wt%、1 wt% 和 2 wt% 的 CNTs)。对这些支架进行了全面的表征,以评估其导电性、拉伸强度、润湿性、降解性、溶胀性、XRD 和傅立叶变换红外数据。值得注意的是,扫描电子显微镜(SEM)图像显示了三维支架形态,排列整齐的纤维直径从60纳米到292纳米不等。 为了全面研究电刺激对播种在这些支架上的干细胞神经分化的影响,根据SEM图像评估了细胞形态和粘附性。此外,还通过 MTT 试验研究了支架的生物相容性。重要的是,Real-Time PCR 结果表明,在这些样品上培养的细胞表达了神经标记物--Nestin、β-tubulin III 和 MAP2。与对照组相比,样本 1 和样本 2 的 Nestin 标记表达明显增加,表明神经元分化处于早期阶段,而 β-tubulin III 的表达明显减少,MAP2 的表达在统计上保持不变。相比之下,样本 3 的 Nestin 制造者表达没有出现统计学意义上的显著上升,而作为分化末期的标志物,MAP2 和 β-微管蛋白 III 的表达却显著增加,从而导致了有丝分裂后的神经元。这些结果可能归因于 S3 与其他样本相比具有更高的电导率。我们的研究结果凸显了所制备支架在神经修复方面的生物仿生潜力,说明了它们在引导干细胞向神经系分化方面的有效性。
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来源期刊
Biomedical Physics & Engineering Express
Biomedical Physics & Engineering Express RADIOLOGY, NUCLEAR MEDICINE & MEDICAL IMAGING-
CiteScore
2.80
自引率
0.00%
发文量
153
期刊介绍: BPEX is an inclusive, international, multidisciplinary journal devoted to publishing new research on any application of physics and/or engineering in medicine and/or biology. Characterized by a broad geographical coverage and a fast-track peer-review process, relevant topics include all aspects of biophysics, medical physics and biomedical engineering. Papers that are almost entirely clinical or biological in their focus are not suitable. The journal has an emphasis on publishing interdisciplinary work and bringing research fields together, encompassing experimental, theoretical and computational work.
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