|
Bioprocess 2024
m6A修饰在砷诱导毒效应中发挥的作用研究进展
|
Abstract:
在环境领域中,砷是一种有毒的重金属,主要通过饮用水途径对人类健康造成各种影响。如今,全球约2亿人正受到含砷的饮用水影响,是一个亟待解决的全球性公共卫生问题。N6-甲基腺苷(m6A)修饰是哺乳动物mRNA中最丰富的化学修饰,在越来越多的研究中发现m6A修饰参与了砷诱导毒效应,因此研究异常RNA修饰在重金属毒性中的作用和机制是一个非常有前景的领域。本研究通过参考国内外文献,综述了m6A修饰在砷诱导毒效应中发挥的作用,并为今后探索其它重金属的毒效应机制提供研究方向。
In the environmental field, arsenic is a toxic heavy metal that causes various effects on human health mainly through the drinking water route. Today, about 200 million people are exposed to arsenic from drinking water, which is a global public health problem that needs to be addressed urgently. N6-methyladenosine (m6A) modification is the most abundant chemical modification in mammalian mRNA. More and more studies have found that m6A modification is involved in arsenic-induced toxicity, so studying the role and mechanism of abnormal RNA modification in heavy metal toxicity is a very promising field. This paper reviews the role of m6A modification in arsenic-induced toxicity by referring to domestic and foreign literature, and provides research directions for exploring the toxic mechanism of other heavy metals in the future.
[1] | Singh, R., Singh, S., Parihar, P., et al. (2015) Arsenic Contamination, Consequences and Remediation Techniques: A Review. Ecotoxicology and Environmental Safety, 112, 247-270. https://doi.org/10.1016/j.ecoenv.2014.10.009 |
[2] | Li, T.F., Xu, Z., Zhang, K., et al. (2024) Effects and Mechanisms of N6-Methyladenosine RNA Methylation in Environmental Pollutant-Induced Carcinogenesis. Ecotoxicology and Environmental Safety, 277, Article 116372. https://doi.org/10.1016/j.ecoenv.2024.116372 |
[3] | Qin, Y., Li, L., Luo, E., et al. (2020) Role of m6A RNA Methylation in Cardiovascular Disease (Review). International Journal of Molecular Medicine, 46, 1958-1972. https://doi.org/10.3892/ijmm.2020.4746 |
[4] | Jiang, X., Liu, B., Nie, Z., et al. (2021) The Role of m6A Modification in the Biological Functions and Diseases. Signal Transduction and Targeted Therapy, 6, 74. https://doi.org/10.1038/s41392-020-00450-x |
[5] | Thibaut, P., Renaud, S., Francis, R., et al. (2022) Effects of Chronic Exposure to Toxic Metals on Haematological Parameters in Free-Ranging Small Mammals. Environmental Pollution, 317, Article 120675. https://doi.org/10.1016/j.envpol.2022.120675 |
[6] | Kim, K.W., Chanpiwat, P., Hanh, H.T., et al. (2011) Arsenic Geochemistry of Groundwater in Southeast Asia. Frontiers in Medicine, 5, 420-433. https://doi.org/10.1007/s11684-011-0158-2 |
[7] | Martínez-Castillo, M., García-Montalvo, E.A., Arellano-Mendoza, M.G., et al. (2021) Arsenic Exposure and Non-Carcinogenic Health Effects. Human & Experimental Toxicology, 40, S826-S850. https://doi.org/10.1177/09603271211045955 |
[8] | Escudero-Lourdes, C. (2016) Toxicity Mechanisms of Arsenic That Are Shared with Neurodegenerative Diseases and Cognitive Impairment: Role of Oxidative Stress and Inflammatory Responses. Neurotoxicology, 53, 223-235. https://doi.org/10.1016/j.neuro.2016.02.002 |
[9] | Danes, J.M., Palma, F.R. and Bonini, M.G. (2021) Arsenic and Other Metals as Phenotype Driving Electrophiles in Carcinogenesis. Seminars in Cancer Biology, 76, 287-291. https://doi.org/10.1016/j.semcancer.2021.09.012 |
[10] | Zhao, B.S., Roundtree, I.A. and He, C. (2017) Post-Transcriptional Gene Regulation by mRNA Modifications. Nature Reviews Molecular Cell Biology, 18, 31-42. https://doi.org/10.1038/nrm.2016.132 |
[11] | Bokar, J.A., Rath-Shambaugh, M.E., Ludwiczak, R. et al. (1994) Characterization and Partial Purification of mRNA N6-Adenosine Methyltransferase from HeLa Cell Nuclei. Internal mRNA Methylation Requires a Multisubunit Complex. Journal of Biological Chemistry, 269, 17697-17704. https://doi.org/10.1016/S0021-9258(17)32497-3 |
[12] | Bokar, J.A., Shambaugh, M.E., Polayes, D., et al. (1997) Purification and cDNA Cloning of the AdoMet-Binding Subunit of the Human mRNA (N6-Adenosine)-Methyltransferase. RNA, 3, 1233-1247. |
[13] | Guifang, J., Ye, F., Xu, Z., et al. (2011) N6-Methyladenosine in Nuclear RNA Is a Major Substrate of the Obesity-Associated FTO. Nature Chemical Biology, 7, 885-887. https://doi.org/10.1038/nchembio.687 |
[14] | Guanqun, Z., John Arne, D., Yamei, N., et al. (2012) ALKBH5 Is a Mammalian RNA Demethylase That Impacts RNA Metabolism and Mouse Fertility. Molecular Cell, 49, 18-29. https://doi.org/10.1016/j.molcel.2012.10.015 |
[15] | Hailing, S., Jiangbo, W. and Chuan, H. (2019) Where, When, and How: Context-Dependent Functions of RNA Methylation Writers, Readers, and Erasers. Molecular Cell, 74, 640-650. https://doi.org/10.1016/j.molcel.2019.04.025 |
[16] | Hongyu, C., Tianhe, Z., Donglei, S., et al. (2019) Changes of RNA N6-Methyladenosine in the Hormesis Effect Induced by Arsenite on Human Keratinocyte Cells. Toxicology in Vitro, 56, 84-92. https://doi.org/10.1016/j.tiv.2019.01.010 |
[17] | Tianhe, Z., Xinyang, L., Donglei, S., et al. (2019) Oxidative Stress: One Potential Factor for Arsenite-Induced Increase of N6-Methyladenosine in Human Keratinocytes. Environmental Toxicology and Pharmacology, 69, 95-103. https://doi.org/10.1016/j.etap.2019.04.005 |
[18] | Sarah, S., Rong, C., Lyvianne, D., et al. (2020) Changes in Circulating miRNA19a-3p Precede Insulin Resistance Programmed by Intra-Uterine Growth Retardation in Mice. Molecular Metabolism, 42, Article 101083. https://doi.org/10.1016/j.molmet.2020.101083 |
[19] | Cnattingius, S., Kramer, M.S., Norman, M., et al. (2018) Investigating Fetal Growth Restriction and Perinatal Risks in Appropriate for Gestational Age Infants: Using Cohort and within-Sibling Analyses. BJOG: An International Journal of Obstetrics & Gynaecology, 126, 842-850. https://doi.org/10.1111/1471-0528.15563 |
[20] | Sacchi, C., O’muircheartaigh, J., Batalle, D., et al. (2021) Neurodevelopmental Outcomes Following Intrauterine Growth Restriction and Very Preterm Birth. The Journal of Pediatrics, 238, 135-144.e10. https://doi.org/10.1016/j.jpeds.2021.07.002 |
[21] | Caniggia, I., Winter, J., Lye, S.J., et al. (2000) Oxygen and Placental Development during the First Trimester: Implications for the Pathophysiology of Pre-Eclampsia. Placenta, 21, S25-S30. https://doi.org/10.1053/plac.1999.0522 |
[22] | James, J.L., Stone, P.R., Chamley, L.W. (2005) Cytotrophoblast Differentiation in the First Trimester of Pregnancy: Evidence for Separate Progenitors of Extravillous Trophoblasts and Syncytiotrophoblast. Reproduction, 130, 95-103. https://doi.org/10.1530/rep.1.00723 |
[23] | Li, Y., Yan, J., Chang, H.M., et al. (2021) Roles of TGF-β Superfamily Proteins in Extravillous Trophoblast Invasion. Trends in Endocrinology & Metabolism, 32, 170-189. https://doi.org/10.1016/j.tem.2020.12.005 |
[24] | Ji, L., Brki?, J., Liu, M., et al. (2013) Placental Trophoblast Cell Differentiation: Physiological Regulation and Pathological Relevance to Preeclampsia. Molecular Aspects of Medicine, 34, 981-1023. https://doi.org/10.1016/j.mam.2012.12.008 |
[25] | Tang, L., He, G., Liu, X., et al. (2017) Progress in the Understanding of the Etiology and Predictability of Fetal Growth Restriction. Reproduction, 153, R227-R240. https://doi.org/10.1530/REP-16-0287 |
[26] | Vasconcelos, S., Ramalho, C., Marques, C.J., et al. (2019) Altered Expression of Epigenetic Regulators and Imprinted Genes in Human Placenta and Fetal Tissues from Second Trimester Spontaneous Pregnancy Losses. Epigenetics, 14, 1234-1244. https://doi.org/10.1080/15592294.2019.1634988 |
[27] | Rumbajan, J.M., Yamaguchi, Y., Nakabayashi, K., et al. (2016) The HUS1B Promoter Is Hypomethylated in the Placentas of Low-Birth-Weight Infants. Gene, 583, 141-146. https://doi.org/10.1016/j.gene.2016.02.025 |
[28] | Li, C.S. and Loch-Caruso, R. (2007) Sodium Arsenite Inhibits Migration of Extravillous Trophoblast Cells in vitro. Reproductive Toxicology, 24, 296-302. https://doi.org/10.1016/j.reprotox.2007.06.002 |
[29] | Bian, Y., Li, J., Shen, H., et al. (2022) WTAP Dysregulation-Mediated HMGN3-m6A Modification Inhibited Trophoblast Invasion in Early-Onset Preeclampsia. The FASEB Journal, 36, e22617. https://doi.org/10.1096/fj.202200700RR |
[30] | Zhang, Y., Yang, H., Long, Y., et al. (2021) circRNA N6-Methyladenosine Methylation in Preeclampsia and the Potential Role of N6-Methyladenosine-Modified circPAPPA2 in Trophoblast Invasion. Scientific Reports, 11, Article No. 24357. https://doi.org/10.1038/s41598-021-03662-5 |
[31] | 宋亚平. S-腺苷蛋氨酸耗竭介导CYR61 m6A下调所致滋养细胞侵袭受抑在孕期砷暴露诱发胎儿生长受限中的作用[D]: [博士学位论文]. 合肥: 安徽医科大学, 2023. |
[32] | Grau-Perez, M., Kuo, C.C., Gribble, M.O., et al. (2017) Association of Low-Moderate Arsenic Exposure and Arsenic Metabolism with Incident Diabetes and Insulin Resistance in the Strong Heart Family Study. Environmental Health Perspectives, 125, Article ID: 127004. https://doi.org/10.1289/EHP2566 |
[33] | Kosmas, C.E., Bousvarou, M.D., Kostara, C.E., et al. (2023) Insulin Resistance and Cardiovascular Disease. Journal of International Medical Research, 51. https://doi.org/10.1177/03000605231164548 |
[34] | Santoleri, D. and Titchenell, P.M. (2019) Resolving the Paradox of Hepatic Insulin Resistance. Cellular and Molecular Gastroenterology and Hepatology, 7, 447-456. https://doi.org/10.1016/j.jcmgh.2018.10.016 |
[35] | Bostr?m, P., Wu, J., Jedrychowski, M.P., et al. (2012) A PGC1-α-Dependent Myokine That Drives Brown-Fat-Like Development of White Fat and Thermogenesis. Nature, 481, 463-468. https://doi.org/10.1038/nature10777 |
[36] | Drue, B., Abdelmageed, Y., Fowler, J., et al. (2023) Adult Skeletal Muscle Peroxisome Proliferator-Activated Receptor γ-Related Coactivator 1 Is Involved in Maintaining Mitochondrial Content. American Journal of Physiology-Regulatory Integrative and Comparative Physiology, 324, R470-R479. https://doi.org/10.1152/ajpregu.00241.2022 |
[37] | Yang, Y., Qiu, W., Xiao, J., et al. (2024) Dihydromyricetin Ameliorates Hepatic Steatosis and Insulin Resistance via AMPK/PGC-1α and PPARα-Mediated Autophagy Pathway. Journal of Translational Medicine, 22, Article No. 309. https://doi.org/10.1186/s12967-024-05060-7 |
[38] | Zhang, J., Song, J., Liu, S., et al. (2023) m6A Methylation-Mediated PGC-1α Contributes to Ferroptosis via Regulating GSTK1 in Arsenic-Induced Hepatic Insulin Resistance. Science of the Total Environment, 905, Article 167202. https://doi.org/10.1016/j.scitotenv.2023.167202 |
[39] | 邱天明. 砷甲基转移酶介导的m6A甲基化调控NLRP3炎症小体激活在砷致肝脏胰岛素抵抗中的作用研究[D]: [博士学位论文]. 大连: 大连医科大学, 2023. |
[40] | Spagnolo, P., Kropski, J.A., Jones, M.G., et al. (2021) Idiopathic Pulmonary Fibrosis: Disease Mechanisms and Drug Development. Pharmacology & Therapeutics, 222, Article 107798. https://doi.org/10.1016/j.pharmthera.2020.107798 |
[41] | Chanda, D., Otoupalova, E., Smith, S.R., et al. (2019) Developmental Pathways in the Pathogenesis of Lung Fibrosis. Molecular Aspects of Medicine, 65, 56-69. https://doi.org/10.1016/j.mam.2018.08.004 |
[42] | Moss, B.J., Ryter, S.W. and Rosas, I.O. (2022) Pathogenic Mechanisms Underlying Idiopathic Pulmonary Fibrosis. Annual Review of Pathology, 17, 515-546. https://doi.org/10.1146/annurev-pathol-042320-030240 |
[43] | Pauchet, A., Chaussavoine, A., Pairon, J., et al. (2022) Idiopathic Pulmonary Fibrosis: What Do We Know About the Role of Occupational and Environmental Determinants? A Systematic Literature Review and Meta-Analysis. Journal of Toxicology and Environmental Health Part B, Critical Reviews, 25, 372-392. https://doi.org/10.1080/10937404.2022.2131663 |
[44] | Xiao, T., Zou, Z., Xue, J., et al. (2021) LncRNA H19-Mediated M2 Polarization of Macrophages Promotes Myofibroblast Differentiation in Pulmonary Fibrosis Induced by Arsenic Exposure. Environmental Pollution, 268, Article 115810. https://doi.org/10.1016/j.envpol.2020.115810 |
[45] | Wang, P., Xiao, T., Li, J., et al. (2021) miR-21 in EVs from Pulmonary Epithelial Cells Promotes Myofibroblast Differentiation via Glycolysis in Arsenic-Induced Pulmonary Fibrosis. Environmental Pollution, 286, Article 117259. https://doi.org/10.1016/j.envpol.2021.117259 |
[46] | Kundu, S., Majumdar, D., Sen, S., et al. (2004) Pulmonary Involvement in Chronic Arsenic Poisoning from Drinking Contaminated Ground-Water. The Journal of the Association of Physicians of India, 52, 395-400. |
[47] | Wang, P., Xie, D., Xiao, T., et al. (2024) H3K18 Lactylation Promotes the Progression of Arsenite-Related Idiopathic Pulmonary Fibrosis via YTHDF1/m6A/NREP. Journal of Hazardous Materials, 461, Article 132582. https://doi.org/10.1016/j.jhazmat.2023.132582 |
[48] | Gu, S., Sun, D., Dai, H., et al. (2018) N6-Methyladenosine Mediates the Cellular Proliferation and Apoptosis via microRNAs in Arsenite-Transformed Cells. Toxicology Letters, 292, 1-11. https://doi.org/10.1016/j.toxlet.2018.04.018 |
[49] | Zhao, T., Sun, D., Zhao, M., et al. (2020) N6-Methyladenosine Mediates Arsenite-Induced Human Keratinocyte Transformation by Suppressing p53 Activation. Environmental Pollution, 259, Article 113908. https://doi.org/10.1016/j.envpol.2019.113908 |
[50] | Cui, Y.-H., Yang, S., Wei, J., et al. (2021) Autophagy of the m6A mRNA Demethylase FTO Is Impaired by Low-Level Arsenic Exposure to Promote Tumorigenesis. Nature Communications, 12, Article No. 2183. https://doi.org/10.1038/s41467-021-22469-6 |
[51] | Gao, M., Qi, Z., Feng, W., et al. (2022) m6A Demethylation of Cytidine Deaminase APOBEC3B mRNA Orchestrates Arsenic-Induced Mutagenesis. The Journal of Biological Chemistry, 298, Article 101563. https://doi.org/10.1016/j.jbc.2022.101563 |