Seyed Danial Alizadeh, Mahgol Sadat Hassan Zadeh Tabatabaei, Mohammad Rezaei Zadeh Rukerd, Reza Tabrizi, Rasoul Masoomi, Seyedeh Zahra Banihashemian, Seyed Sobhan Pourmasjedi, Zahra Ghodsi, Ahmad Pour-Rashidi, James Harrop, Vafa Rahimi-Movaghar
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引用次数: 0
摘要
糖尿病周围神经病变(DPN)是糖尿病神经病变最常见的形式,占75%的病例,构成了重大的公共卫生挑战。来自动物研究的新证据表明,干细胞疗法作为糖尿病神经病变的潜在治疗方法具有重要的前景。然而,在动物研究中对干细胞治疗DPN的安全性和有效性的综合评估仍然很突出。系统检索MEDLINE、Embase、Scopus、Web of Science和CENTRAL。时间截止到2024年1月31日。所有研究干细胞治疗DPN的动物研究都被纳入其中。在meta分析中,我们采用随机效应模型来结合效应大小。5431条记录中有29条符合资格标准。在这些研究中,干细胞治疗改善了运动和感觉神经传导速度、复合肌肉动作电位(CMAP)和坐骨神经血流量。治疗后,机械和热伤害阈值下降。大鼠轴突圆度、神经生长因子、转化生长因子β 1显著改善;小鼠体重、CMAP和血管生成素1显著增加。干细胞亚组分析显示,牙髓干细胞对所有参数的影响最大,而骨髓单核细胞具有较强的生化反应。干细胞治疗在改善DPN动物模型的神经病变症状方面显示出有希望的疗效。人类患者研究和针对特定神经性疾病的靶向治疗程序被提倡以改善治疗结果。
The safety and efficacy of stem cell therapy for diabetic peripheral neuropathy in animal studies: A systematic review and meta-analysis.
Diabetic peripheral neuropathy (DPN) is the most common form of diabetic neuropathy, representing 75% of cases and posing a substantial public health challenge. Emerging evidence from animal studies indicates that stem cell therapy holds significant promise as a potential treatment for diabetic neuropathy. Nevertheless, a comprehensive evaluation of the safety and efficacy of stem cell therapy for DPN in animal studies remains outstanding. A systematic search of MEDLINE, Embase, Scopus, the Web of Science, and the CENTRAL was performed. The time period was up to January 31, 2024. All animal studies investigating the stem cell therapy for treating DPN were included. A random-effects model to combine effect sizes in our meta-analysis was applied. 29 out of the 5431 records met the eligibility criteria. In these studies, stem cell therapy improved motor and sensory nerve conduction velocity, compound muscle action potential (CMAP), and sciatic nerve blood flow. Post-treatment, mechanical and thermal nociceptive thresholds decreased. Rats had significant improvement in axonal circularity, nerve growth factor, and transforming growth factor beta 1; mice had significant increase in weight, CMAP, and angiopoietin 1. The stem cell subgroup analysis showed that dental pulp stem cells had the greatest effects across all parameters, while bone marrow mononuclear cells had strong biochemical responses. Stem cell therapy demonstrates promising efficacy in ameliorating neuropathic symptoms in DPN animal models. Human patient studies and targeted treatment procedures for specific neuropathic disorders are advocated to improve therapeutic outcomes.
期刊介绍:
Neuroscience publishes papers describing the results of original research on any aspect of the scientific study of the nervous system. Any paper, however short, will be considered for publication provided that it reports significant, new and carefully confirmed findings with full experimental details.