Potential effects of Ag ion on the host by changing the structure of its gut microbiota

被引:1
作者
Wang, Xin-Lei [1 ]
Yu, Nanyang [1 ]
Ma, Ying-Xue [1 ]
Zhou, Hao-Ran [1 ]
Wang, Chuan [1 ]
Wei, Si [1 ]
Miao, Ai-Jun [1 ]
机构
[1] Nanjing Univ, Sch Environm, State Key Lab Pollut Control & Resource Reuse, Mail Box 24,Xianlin Rd 163, Nanjing 210023, Jiangsu, Peoples R China
基金
中国国家自然科学基金;
关键词
Accumulation; Gut microbiota; Metabolism; Mice; Silver; HIGH-FAT DIET; SILVER NANOPARTICLES; INTESTINAL MICROBIOTA; OXIDATIVE STRESS; ORAL-EXPOSURE; INFLAMMATION; METABOLISM; TOXICITY; POLYSACCHARIDE; MECHANISMS;
D O I
10.1016/j.jhazmat.2023.131879
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Silver (Ag) can change the structure of the gut microbiota (GM), but how such change may affect host health is unknown. In this study, mice were exposed to silver acetate daily for 120 days. During this period, Ag accu-mulation in the liver was measured, its effects on GM structure were analyzed, and potential metabolic changes in liver and serum were examined. Although Ag accumulation remained unchanged in most treatments, the ratio of Firmicutes to Bacteroidetes at the phylum level increased and changes in the relative abundance of 33 genera were detected, suggesting that Ag altered the energy metabolism of mice via changes in the gut GM. In serum and liver, 34 and 72 differentially expressed metabolites were identified, respectively. The KEGG pathways thus enriched mainly included those involving the metabolism of amino acids, organic acids, lipids, and purine. Strong correlations were found between 33 % of the microorganisms with altered relative abundances and 46 % of the differentially expressed metabolites. The resulting clusters yielded two communities responsible for host inflammation and energy metabolism. Overall, these results demonstrate potential effects of Ag on the host, by changing its GM structure, and the need to consider them when evaluating the health risk of Ag.
引用
收藏
页数:10
相关论文
共 69 条
[1]  
Alvarez NDS, 2001, J ELECTROANAL CHEM, V502, P109
[2]   Phosphatidic acid biosynthesis in the model organism yeast Saccharomyces cerevisiae - a survey [J].
Athenstaedt, Karin .
BIOCHIMICA ET BIOPHYSICA ACTA-MOLECULAR AND CELL BIOLOGY OF LIPIDS, 2021, 1866 (06)
[3]   Dissolved silver measurements in seawater [J].
Barriada, Jose L. ;
Tappin, Alan D. ;
Evans, E. Hywel ;
Achterberg, Eric P. .
TRAC-TRENDS IN ANALYTICAL CHEMISTRY, 2007, 26 (08) :809-817
[4]   The influence of Citrate or PEG coating on silver nanoparticle toxicity to a human keratinocyte cell line [J].
Bastos, V. ;
Ferreira de Oliveira, J. M. P. ;
Brown, D. ;
Jonhston, H. ;
Malheiro, E. ;
Daniel-da-Silva, A. L. ;
Duarte, I. F. ;
Santos, C. ;
Oliveira, H. .
TOXICOLOGY LETTERS, 2016, 249 :29-41
[5]   The CASTOR Proteins Are Arginine Sensors for the mTORC1 Pathway [J].
Chantranupong, Lynne ;
Scaria, Sonia M. ;
Saxton, Robert A. ;
Gygi, Melanie P. ;
Shen, Kuang ;
Wyant, Gregory A. ;
Wang, Tim ;
Harper, J. Wade ;
Gygi, Steven P. ;
Sabatini, David M. .
CELL, 2016, 165 (01) :153-164
[6]   L-Acetylcarnitine: A Mechanistically Distinctive and Potentially Rapid-Acting Antidepressant Drug [J].
Chiechio, Santina ;
Canonico, Pier Luigi ;
Grilli, Mariagrazia .
INTERNATIONAL JOURNAL OF MOLECULAR SCIENCES, 2018, 19 (01)
[7]   Increased Plasma Acetylcarnitine in Sepsis Is Associated With Multiple Organ Dysfunction and Mortality: A Multicenter Cohort Study [J].
Chung, Kuei-Pin ;
Chen, Guan-Yuan ;
Chuang, Tzu-Yi ;
Huang, Yen-Tsung ;
Chang, Hou-Tai ;
Chen, Yen-Fu ;
Liu, Wei-Lun ;
Chen, Yi-Jung ;
Hsu, Chia-Lin ;
Huang, Miao-Tzu ;
Kuo, Ching-Hua ;
Yu, Chong-Jen .
CRITICAL CARE MEDICINE, 2019, 47 (02) :210-218
[8]   The Role of Succinate in the Regulation of Intestinal Inflammation [J].
Connors, Jessica ;
Dawe, Nick ;
Van Limbergen, Johan .
NUTRIENTS, 2019, 11 (01)
[9]   Exploring the relationship between bacterial genera and lipid metabolism in bovine rumen [J].
Conte, G. ;
Dimauro, C. ;
Daghio, M. ;
Serra, A. ;
Mannelli, F. ;
McAmmond, B. M. ;
Van Hamme, J. D. ;
Buccioni, A. ;
Viti, C. ;
Mantino, A. ;
Mele, M. .
ANIMAL, 2022, 16 (05)
[10]   Microbiota-Produced Succinate Improves Glucose Homeostasis via Intestinal Gluconeogenesis [J].
De Vadder, Filipe ;
Kovatcheva-Datchary, Petia ;
Zitoun, Carine ;
Duchampt, Adeline ;
Backhed, Fredrik ;
Mithieux, Gilles .
CELL METABOLISM, 2016, 24 (01) :151-157