CYP3A triggers BDE47-induced ferritinophagy and ferroptosis in spermatogenic cells through ROS-mediated m6A regulation of ATG12

Shuyu Xu , Wenxia Fan , Jiangxue Qian , Yuewen He , Chunjin Li , Chao Chen , Li Wang , Yongquan Yu , Chao Wang , Shoulin Wang

Journal of Biomedical Research ›› 2026, Vol. 40 ›› Issue (4) : 364 -382.

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Journal of Biomedical Research ›› 2026, Vol. 40 ›› Issue (4) :364 -382. DOI: 10.7555/JBR.40.20260159
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CYP3A triggers BDE47-induced ferritinophagy and ferroptosis in spermatogenic cells through ROS-mediated m6A regulation of ATG12
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Abstract

Cytochrome P450 CYP3A (CYP3A) is among the most abundant hepatic cytochrome P450 subfamilies and also mediates the metabolism and toxicity of xenobiotics. Previous studies have reported that CYP3A is also expressed in the testis; however, its role and molecular mechanism in mediating male reproductive damage remain unclear. In this study, through in vitro and in vivo experiments, we demonstrated the role of CYP3A in 2,2',4,4'-tetrabromodiphenyl ether (BDE47)-induced reproductive toxicity. The results showed that BDE47 induced CYP3A expression in mouse testes, leading to oxidative stress and ferroptosis through excessive reactive oxygen species (ROS) and ferrous iron (Fe2+) overload, which was demonstrated by CYP3A overexpression or knockdown experiments in GC-2 cells. Mechanistically, in addition to direct ROS generation during metabolic processing, ferritinophagy contributed to intracellular Fe2+ accumulation. Specifically, BDE47-induced ROS was associated with reduced N6-methyladenosine (m6A) modification of Atg12 mRNA and increased autophagy-related (ATG12) expression, thereby promoting ferritin heavy chain 1 (FTH1) degradation and subsequent Fe2+ overload. These results were further validated by experiments using hydrogen peroxide or antioxidants in GC-2 cells, as well as by Atg12 haploinsufficiency in mice. Our findings demonstrate that CYP3A plays a critical role in male reproductive toxicity induced by BDE47.

Keywords

cytochrome P450 3A / 2,2',4,4'-tetrabromodiphenyl ether / reactive oxygen species / ferritinophagy / N6-methyladenosine / male reproductive damage

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Shuyu Xu, Wenxia Fan, Jiangxue Qian, Yuewen He, Chunjin Li, Chao Chen, Li Wang, Yongquan Yu, Chao Wang, Shoulin Wang. CYP3A triggers BDE47-induced ferritinophagy and ferroptosis in spermatogenic cells through ROS-mediated m6A regulation of ATG12. Journal of Biomedical Research, 2026, 40 (4) : 364-382 DOI:10.7555/JBR.40.20260159

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References

[1]

Eisenberg ML, Esteves SC, Lamb DJ, et al. Male infertility[J]. Nat Rev Dis Primers, 2023, 9(1): 49. doi: 10.1038/s41572-023-00459-w

[2]

Belladelli F, Muncey W, Eisenberg ML. Reproduction as a window for health in men[J]. Fertil Steril, 2023, 120(3): 429-437. doi: 10.1016/j.fertnstert.2023.01.014

[3]

Lan Y, Gao X, Xu H, et al. 20 years of polybrominated diphenyl ethers on toxicity assessments[J]. Water Res, 2024, 249: 121007. doi: 10.1016/j.watres.2023.121007

[4]

Abbasi G, Li L, Breivik K. Global historical stocks and emissions of PBDEs[J]. Environ Sci Technol, 2019, 53(11): 6330-6340. doi: 10.1021/acs.est.8b07032

[5]

Liu L, He K, Hites RA, et al. Hair and nails as noninvasive biomarkers of human exposure to brominated and organophosphate flame retardants[J]. Environ Sci Technol, 2016, 50(6): 3065-3073. doi: 10.1021/acs.est.5b05073

[6]

Zhang W, Xia S, Zhong X, et al. Characterization of 2,2',4,4'-tetrabromodiphenyl ether (BDE47)-induced testicular toxicity via single-cell RNA-sequencing[J]. Precis Clin Med, 2022, 5(3): pbac016. doi: 10.1093/pcmedi/pbac016

[7]

Xu L, Gao S, Zhao H, et al. Integrated proteomic and metabolomic analysis of the testes characterizes BDE-47-induced reproductive toxicity in mice[J]. Biomolecules, 2021, 11(6): 821. doi: 10.3390/biom11060821

[8]

Zhang Z, Zhang X, Sun Z, et al. Cytochrome P450 3A1 mediates 2,2',4,4'-tetrabromodiphenyl ether-induced reduction of spermatogenesis in adult rats[J]. PLoS One, 2013, 8(6): e66301. doi: 10.1371/journal.pone.0066301

[9]

Wang Y, Yu Y, Zhang H, et al. The phytotoxicity of exposure to two polybrominated diphenyl ethers (BDE47 and BDE209) on photosynthesis and the response of the hormone signaling and ROS scavenging system in tobacco leaves[J]. J Hazard Mater, 2022, 426: 128012. doi: 10.1016/j.jhazmat.2021.128012

[10]

Pang X, Tang C, Guo R, et al. Non-cytochrome P450 enzymes involved in the oxidative metabolism of xenobiotics: Focus on the regulation of gene expression and enzyme activity[J]. Pharmacol Ther, 2022, 233: 108020. doi: 10.1016/j.pharmthera.2021.108020

[11]

Ohtsuki S, Schaefer O, Kawakami H, et al. Simultaneous absolute protein quantification of transporters, cytochromes P450, and UDP-glucuronosyltransferases as a novel approach for the characterization of individual human liver: Comparison with mRNA levels and activities[J]. Drug Metab Dispos, 2012, 40(1): 83-92. doi: 10.1124/dmd.111.042259

[12]

Zanger UM, Schwab M. Cytochrome P450 enzymes in drug metabolism: Regulation of gene expression, enzyme activities, and impact of genetic variation[J]. Pharmacol Ther, 2013, 138(1): 103-141. doi: 10.1016/j.pharmthera.2012.12.007

[13]

Guengerich FP. Common and uncommon cytochrome P450 reactions related to metabolism and chemical toxicity[J]. Chem Res Toxicol, 2001, 14(6): 611-650. doi: 10.1021/tx0002583

[14]

Albertolle ME, Guengerich FP. The relationships between cytochromes P450 and H2O2: Production, reaction, and inhibition[J]. J Inorg Biochem, 2018, 186: 228-234. doi: 10.1016/j.jinorgbio.2018.05.014

[15]

Stockwell BR. Ferroptosis turns 10: Emerging mechanisms, physiological functions, and therapeutic applications[J]. Cell, 2022, 185(14): 2401-2421. doi: 10.1016/j.cell.2022.06.003

[16]

Zhao Y, Zhang H, Cui J, et al. Ferroptosis is critical for phthalates driving the blood-testis barrier dysfunction via targeting transferrin receptor[J]. Redox Biol, 2023, 59: 102584. doi: 10.1016/j.redox.2022.102584

[17]

Evans EPP, Scholten JTM, Mzyk A, et al. Male subfertility and oxidative stress[J]. Redox Biol, 2021, 46: 102071. doi: 10.1016/j.redox.2021.102071

[18]

Jiang X, Stockwell BR, Conrad M. Ferroptosis: Mechanisms, biology and role in disease[J]. Nat Rev Mol Cell Biol, 2021, 22(4): 266-282. doi: 10.1038/s41580-020-00324-8

[19]

Yan B, Ai Y, Sun Q, et al. Membrane damage during ferroptosis is caused by oxidation of phospholipids catalyzed by the oxidoreductases POR and CYB5R1[J]. Mol Cell, 2021, 81(2): 355-369. doi: 10.1016/j.molcel.2020.11.024

[20]

Tang D, Chen X, Kang R, et al. Ferroptosis: Molecular mechanisms and health implications[J]. Cell Res, 2021, 31(2): 107-125. doi: 10.1038/s41422-020-00441-1

[21]

Hou W, Xie Y, Song X, et al. Autophagy promotes ferroptosis by degradation of ferritin[J]. Autophagy, 2016, 12(8): 1425-1428. doi: 10.1080/15548627.2016.1187366

[22]

Gao M, Monian P, Pan Q, et al. Ferroptosis is an autophagic cell death process[J]. Cell Res, 2016, 26(9): 1021-1032. doi: 10.1038/cr.2016.95

[23]

Liu B, Tian X, Li L, et al. SFTSV induces liver ferroptosis through m6A-related ferritinophagy[J]. Autophagy, 2025, 21(11): 2353-2366. doi: 10.1080/15548627.2025.2503564

[24]

Nair AB, Jacob S. A simple practice guide for dose conversion between animals and human[J]. J Basic Clin Pharm, 2016, 7(2): 27-31. doi: 10.4103/0976-0105.177703

[25]

Sun R, Yuan L, Jiang Y, et al. ALKBH5 activates FAK signaling through m6A demethylation in ITGB1 mRNA and enhances tumor-associated lymphangiogenesis and lymph node metastasis in ovarian cancer[J]. Theranostics, 2023, 13(2): 833-848. doi: 10.7150/thno.77441

[26]

Zhu L, You Y, Zhu M, et al. Ferritin-hijacking nanoparticles spatiotemporally directing endogenous ferroptosis for synergistic anticancer therapy[J]. Adv Mater, 2022, 34(51): 2207174. doi: 10.1002/adma.202207174

[27]

Qin X, Wang Y, Ye Q, et al. CYP3A mediates an unusual C(sp2)-C(sp3) bond cleavage via Ipso-addition of oxygen in drug metabolism[J]. Angew Chem Int Ed Engl, 2024, 63(23): e202405197. doi: 10.1002/anie.202405197

[28]

Yang C, Zhu L, Kang Q, et al. Chronic exposure to tetrabromodiphenyl ether (BDE-47) aggravates hepatic steatosis and liver fibrosis in diet-induced obese mice[J]. J Hazard Mater, 2019, 378: 120766. doi: 10.1016/j.jhazmat.2019.120766

[29]

Armani S, Geier A, Forst T, et al. Effect of changes in metabolic enzymes and transporters on drug metabolism in the context of liver disease: Impact on pharmacokinetics and drug-drug interactions[J]. Br J Clin Pharmacol, 2024, 90(4): 942-958. doi: 10.1111/bcp.15990

[30]

Puntarulo S, Cederbaum AI. Production of reactive oxygen species by microsomes enriched in specific human cytochrome P450 enzymes[J]. Free Radic Biol Med, 1998, 24(7-8): 1324-1330. doi: 10.1016/S0891-5849(97)00463-2

[31]

Guengerich FP, Waterman MR, Egli M. Recent structural insights into cytochrome P450 function[J]. Trends Pharmacol Sci, 2016, 37(8): 625-640. doi: 10.1016/j.tips.2016.05.006

[32]

Hata M, Hirano Y, Hoshino T, et al. Monooxygenation mechanism by cytochrome P-450[J]. J Am Chem Soc, 2001, 123(26): 6410-6416. doi: 10.1021/ja000908p

[33]

Islam S, Jayaram DT, Biswas P, et al. Functional maturation of cytochromes P450 3A4 and 2D6 relies on GAPDH- and Hsp90-dependent heme allocation[J]. J Biol Chem, 2024, 300(2): 105633. doi: 10.1016/j.jbc.2024.105633

[34]

Zangar RC, Bollinger N, Weber TJ, et al. Reactive oxygen species alter autocrine and paracrine signaling[J]. Free Radic Biol Med, 2011, 51(11): 2041-2047. doi: 10.1016/j.freeradbiomed.2011.09.001

[35]

Dikic I, Elazar Z. Mechanism and medical implications of mammalian autophagy[J]. Nat Rev Mol Cell Biol, 2018, 19(6): 349-364. doi: 10.1038/s41580-018-0003-4

[36]

Ohsumi Y. Historical landmarks of autophagy research[J]. Cell Res, 2014, 24(1): 9-23. doi: 10.1038/cr.2013.169

[37]

Fuhrmann DC, Brüne B. Mitochondrial composition and function under the control of hypoxia[J]. Redox Biol, 2017, 12: 208-215. doi: 10.1016/j.redox.2017.02.012

[38]

Willson JA, Arienti S, Sadiku P, et al. Neutrophil HIF-1α stabilization is augmented by mitochondrial ROS produced via the glycerol 3-phosphate shuttle[J]. Blood, 2022, 139(2): 281-286. doi: 10.1182/blood.2021011010

[39]

Boulias K, Greer EL. Biological roles of adenine methylation in RNA[J]. Nat Rev Genet, 2023, 24(3): 143-160. doi: 10.1038/s41576-022-00534-0

[40]

Oerum S, Meynier V, Catala M, et al. A comprehensive review of m6A/m6Am RNA methyltransferase structures[J]. Nucleic Acids Res, 2021, 49(13): 7239-7255. doi: 10.1093/nar/gkab378

[41]

Wang X, Wu R, Liu Y, et al. m6A mRNA methylation controls autophagy and adipogenesis by targeting Atg5 and Atg7[J]. Autophagy, 2020, 16(7): 1221-1235. doi: 10.1080/15548627.2019.1659617

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