NH(3) exposure

  • 文章类型: Journal Article
    氨(NH3)是一种常见的空气污染物,这对农场动物构成了严重威胁。L-硒代蛋氨酸是有机硒(Se),可以抑制细胞内ROS的产生,阻断ROS依赖性自噬,促进线粒体能量代谢,增强身体的免疫力。肺,作为呼吸系统的重要器官,极易受到NH3的毒性作用。然而,关于NH3对肺组织的毒性作用机制的研究很少。本研究的目的是研究NH3对猪肺的影响以及L-硒代蛋氨酸的缓解作用。将24头大白*Duroc*Min猪随机分为4组:对照组,NH3组,Se组,和NH3+Se基团。结果表明,暴露于NH3会引起肺组织的损伤和炎症,并显着增加血液中的NH3浓度。NH3诱导的氧化应激指标(GSH,GSH-Px,SOD,MDA,Keap1,Nrf2和HO-1)和能量代谢相关基因(HK1,HK2,PFK,PK,LDHA,和HIF-1α)。超微结构显示线粒体损伤和自噬体明显增加,自噬相关基因(Beclin1、ATG5、ATG7、ATG10和p62)的表达水平发生变化。然而,L-硒代蛋氨酸的加入缓解了上述变化,但与对照组相比仍有显著性差异(P<0.05)。这一发现可以为减轻NH3毒性提供新的证据。
    Ammonia (NH3) is a common air pollutant, which poses a serious threat to farm animals. L-selenomethionine is organic selenium (Se), which can inhibit intracellular ROS generation, block ROS-dependent autophagy, promote mitochondrial energy metabolism, and enhance the body\'s immunity. Lung, as an important organ of the respiratory system, is highly susceptible to the toxic effects of NH3. However, there were few studies on the mechanism of toxic effects of NH3 on lung tissues. The aim of this study was to investigate the effect of NH3 on the lungs in pigs and the alleviating effect of L-selenomethionine. Twenty-four Large White*Duroc*Min pigs were randomly assigned to 4 groups: control group, NH3 group, Se group, and NH3 +Se group. The results showed that exposure to NH3 caused damage and inflammation in lung tissues and significantly increased blood NH3 concentration. NH3 induced changes of oxidative stress indexes (GSH, GSH-Px, SOD, MDA, Keap1, Nrf2, and HO-1) and expressions of energy metabolism related genes (HK1, HK2, PFK, PK, LDHA, and HIF-1α). Ultrastructure showed that mitochondrial damage and autophagosome increased significantly, and the expression levels of autophagy related genes (Beclin1, ATG5, ATG7, ATG10, and p62) changed. However, the addition of L-selenomethionine alleviated the above changes, but there was still a significant difference compared with the control group (P < 0.05). This finding can provide a new evidence for mitigation of NH3 toxicity.
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  • 文章类型: Journal Article
    叶圈和许多叶圈微生物群具有缓解空气污染的巨大潜力。尽管有研究调查了叶球中的微生物组成,氨气(NH3)胁迫下叶层微生物组的演替和相互作用仍然知之甚少。在这里,我们做了16SrDNA,内部转录间隔区(ITS)分析和定量微生物元素循环(QMEC)方法来揭示序列,共现,NH3暴露过程中叶球细菌和真菌的氮循环功能变化。NH3的输入主要提高了叶片表面的铵(NH4-N)和总氮(TN)水平。叶球中的暴露降低了真菌浓度,同质性增加,而细菌浓度增加,丰度明显下降。短期(2周)和长期(6周)暴露均引起微生物组成的显着变化。细菌属(诺卡诺德,假心菌)和真菌属(链格孢菌,Cremonum)在整个暴露过程中占主导地位。通过网络分析观察到与天然叶球相比的强烈微生物相互作用。我们的结果表明,氮循环功能基因在很大程度上受到暴露的刺激,进而通过微生物代谢促进NH3污染缓冲和缓解。这项研究扩展了有关叶球中微生物对NH3暴露的反应的知识,并通过微生物作用启发了对NH3的叶面修复。
    Phyllosphere and numerous phyllospheric microbiomes present a huge potential for air pollution mitigation. Despite research investigating the microbial compositions in the phyllosphere, the successions and interactions of the phyllospheric microbiome under ammonia gas (NH3) stress remain poorly understood. Herein, we performed 16S rDNA, the internal transcribed spacer (ITS) profiling and a quantitative microbial element cycling (QMEC) method to reveal successions, co-occurrence, and N-cycling functions changes of phyllospheric bacteria and fungi during NH3 exposure. The NH3 input mainly elevated ammonium (NH4+-N) and total nitrogen (TN) levels on the leaf surface. The exposure in the phyllosphere decreased fungal concentration with a homogeneity increase while enhanced bacterial concentration with a noticeable richness drop. Both short-term (2-week) and long-term (6-week) exposure induced significant changes in microbial compositions. Bacterial genera (Nocardioides, Pseudonocardia) and fungal genera (Alternaria, Acremonium) dominated throughout the exposure. Intensive microbial interactions compared to that in the natural phyllosphere were observed via network analysis. Our results showed that N-cycling functional genes were largely stimulated by the exposure and might, in turn contribute to NH3 pollution buffer and alleviation via microbial metabolism. This study extended the knowledge on microbial responses to NH3 exposure in the phyllosphere and enlightened phylloremediation on NH3 through the microbial role.
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