Therapeutic effects of nanosilibinin in valproic acid-zebrafish model of autism spectrum disorder: Focusing on Wnt signaling pathway and autism spectrum disorder-related cytokines

IF 1.7 4区 医学 Q3 DEVELOPMENTAL BIOLOGY International Journal of Developmental Neuroscience Pub Date : 2024-07-03 DOI:10.1002/jdn.10348
Zahra Karimi, Asadollah Zarifkar, Esmaeil Mirzaei, Mehdi Dianatpour, Mahintaj Dara, Hadi Aligholi
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Abstract

In this study, we delved into the intricate world of autism spectrum disorder (ASD) and its connection to the disturbance in the Wnt signaling pathway and immunological abnormalities. Our aim was to evaluate the impact of silibinin, a remarkable modulator of both the Wnt signaling pathway and the immune system, on the neurobehavioral and molecular patterns observed in a zebrafish model of ASD induced by valproic acid (VPA). Because silibinin is a hydrophobic molecule and highly insoluble in water, it was used in the form of silibinin nanoparticles (nanosilibinin, NS). After assessing survival, hatching rate, and morphology of zebrafish larvae exposed to different concentrations of NS, the appropriate concentrations were chosen. Then, zebrafish embryos were exposed to VPA (1 μM) and NS (100 and 200 μM) at the same time for 120 h. Next, anxiety and inattentive behaviors and the expression of CHD8, CTNNB, GSK3beta, LRP6, TNFalpha, IL1beta, and BDNF genes were assessed 7 days post fertilization. The results indicated that higher concentrations of NS had adverse effects on survival, hatching, and morphological development. The concentrations of 100 and 200 μM of NS could ameliorate the anxiety-like behavior and learning deficit and decrease ASD-related cytokines (IL1beta and TNFalpha) in VPA-treated larvae. In addition, only 100 μM of NS prevented raising the gene expression of Wnt signaling-related factors (CHD8, CTNNB, GSK3beta, and LRP6). In conclusion, NS treatment for the first 120 h showed therapeutic effect on an autism-like phenotype probably via reducing the expression of pro-inflammatory cytokines genes and changing the expression of Wnt signaling components genes.

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纳米芪在丙戊酸-斑马鱼自闭症谱系障碍模型中的治疗效果:关注 Wnt 信号通路和自闭症谱系障碍相关细胞因子。
在这项研究中,我们深入研究了自闭症谱系障碍(ASD)的复杂世界及其与 Wnt 信号通路紊乱和免疫异常之间的联系。我们的目的是评估丝利宾(一种对 Wnt 信号通路和免疫系统均有显著调节作用的药物)对丙戊酸(VPA)诱导的 ASD 斑马鱼模型中观察到的神经行为和分子模式的影响。由于丝利比宁是一种疏水分子且极不溶于水,因此采用了丝利比宁纳米颗粒(纳米丝利比宁,NS)的形式。在对暴露于不同浓度 NS 的斑马鱼幼体的存活率、孵化率和形态进行评估后,选择了合适的浓度。然后,评估斑马鱼胚胎受精后 7 天的焦虑和注意力不集中行为以及 CHD8、CTNNB、GSK3beta、LRP6、TNFalpha、IL1beta 和 BDNF 基因的表达。结果表明,较高浓度的NS会对小鼠的存活率、孵化率和形态发育产生不利影响。100 μM和200 μM浓度的NS可改善VPA处理幼虫的焦虑样行为和学习缺陷,并降低ASD相关细胞因子(IL1beta和TNFalpha)。此外,仅 100 μM 的 NS 就能阻止 Wnt 信号相关因子(CHD8、CTNNB、GSK3beta 和 LRP6)基因表达的升高。总之,NS治疗的前120小时可能通过减少促炎细胞因子基因的表达和改变Wnt信号成分基因的表达,对自闭症样表型显示出治疗效果。
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来源期刊
CiteScore
3.30
自引率
5.60%
发文量
78
审稿时长
6-12 weeks
期刊介绍: International Journal of Developmental Neuroscience publishes original research articles and critical review papers on all fundamental and clinical aspects of nervous system development, renewal and regeneration, as well as on the effects of genetic and environmental perturbations of brain development and homeostasis leading to neurodevelopmental disorders and neurological conditions. Studies describing the involvement of stem cells in nervous system maintenance and disease (including brain tumours), stem cell-based approaches for the investigation of neurodegenerative diseases, roles of neuroinflammation in development and disease, and neuroevolution are also encouraged. Investigations using molecular, cellular, physiological, genetic and epigenetic approaches in model systems ranging from simple invertebrates to human iPSC-based 2D and 3D models are encouraged, as are studies using experimental models that provide behavioural or evolutionary insights. The journal also publishes Special Issues dealing with topics at the cutting edge of research edited by Guest Editors appointed by the Editor in Chief. A major aim of the journal is to facilitate the transfer of fundamental studies of nervous system development, maintenance, and disease to clinical applications. The journal thus intends to disseminate valuable information for both biologists and physicians. International Journal of Developmental Neuroscience is owned and supported by The International Society for Developmental Neuroscience (ISDN), an organization of scientists interested in advancing developmental neuroscience research in the broadest sense.
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