纳米氧化铝诱导斑马鱼早期发育和神经行为毒性与 mTOR 有关

IF 4.1 2区 环境科学与生态学 Q1 MARINE & FRESHWATER BIOLOGY Aquatic Toxicology Pub Date : 2024-09-07 DOI:10.1016/j.aquatox.2024.107086
Ying Zhang , Kaihong He , Yanhong Wang , Xinyue Guo , Jin Chen , Nan Shang , Jianping Chen , Ping Zhang , Ling Zhang , Qiao Niu , Qinli Zhang
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引用次数: 0

摘要

本研究旨在探讨纳米氧化铝(AlNPs)对斑马鱼早期发育和神经行为的影响以及mTOR在这一过程中的作用。在胚胎和长大幼体暴露于 0 至 200 μg/mL 的 AlNPs 后,我们研究了斑马鱼的发育、神经行为、AlNPs 含量和 mTOR 通路基因。此外,我们还随机给胚胎注射对照组、阴性对照组、mTOR敲除组、AlNPs组和mTOR敲除+AlNPs组,然后检测胚胎的发育、神经行为、氧化应激、神经递质和发育基因。随着AlNPs剂量的增加,小白鼠的游泳速度和距离先增加后减少;高剂量AlNPs组小白鼠的趋向性和惊恐-回避反射大幅下降;100 μg/mL AlNPs组小白鼠体内铝和纳米颗粒大量积累;高剂量AlNPs降低了mTOR基因和蛋白水平,通过增加ULK1和ULK2刺激自噬。通过提高 ROS、SOD 和 ACH 水平,但降低 AchE 活性和发育基因,敲除 mTOR 会加剧 AlNPs 对正常发育率、眼睛和体长以及神经行为的损害。因此,AlNPs通过下调mTOR抑制神经行为,而敲除mTOR会进一步加剧其早期发育和神经行为的丧失,这表明mTOR可能是AlNPs毒性的一个潜在靶点。
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Nano-alumina induced developmental and neurobehavioral toxicity in the early life stage of zebrafish, associated with mTOR

The study aims to investigate the effects of nano-alumina (AlNPs) on the early development and neurobehavior of zebrafish and the role of mTOR in this process. After embryos and grown-up larvae exposed to AlNPs from 0 to 200 μg/mL, we examined the development, neurobehavior, AlNPs content, and mTOR pathway genes. Moreover, embryos were randomly administered with control, negative control, mTOR knockdown, AlNPs, and mTOR knockdown + AlNPs, then examined for development, neurobehavior, oxidative stress, neurotransmitters, and development genes. As AlNPs increased, swimming speed and distance initially increased and then decreased; thigmotaxis and panic-avoidance reflex substantially decreased in the high-dose AlNPs group; aluminum and nanoparticles considerably accumulated in the 100 μg/mL AlNPs group; AlNPs at high dose decreased mTOR gene and protein levels, stimulating autophagy via increasing ULK1 and ULK2. mTOR knockdown exacerbated the harm to normal development rate, eye and body length, and neurobehavior induced by AlNPs through raising ROS, SOD, and ACH levels but decreasing AchE activity and development genes. Therefore, AlNPs suppress neurobehavior through downregulating mTOR, and mTOR knockdown further aggravates their early development and neurobehavior loss, suggesting mTOR could be a potential target for the toxicity of AlNPs.

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来源期刊
Aquatic Toxicology
Aquatic Toxicology 环境科学-毒理学
CiteScore
7.10
自引率
4.40%
发文量
250
审稿时长
56 days
期刊介绍: Aquatic Toxicology publishes significant contributions that increase the understanding of the impact of harmful substances (including natural and synthetic chemicals) on aquatic organisms and ecosystems. Aquatic Toxicology considers both laboratory and field studies with a focus on marine/ freshwater environments. We strive to attract high quality original scientific papers, critical reviews and expert opinion papers in the following areas: Effects of harmful substances on molecular, cellular, sub-organismal, organismal, population, community, and ecosystem level; Toxic Mechanisms; Genetic disturbances, transgenerational effects, behavioral and adaptive responses; Impacts of harmful substances on structure, function of and services provided by aquatic ecosystems; Mixture toxicity assessment; Statistical approaches to predict exposure to and hazards of contaminants The journal also considers manuscripts in other areas, such as the development of innovative concepts, approaches, and methodologies, which promote the wider application of toxicological datasets to the protection of aquatic environments and inform ecological risk assessments and decision making by relevant authorities.
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