← 返回

BHT and Its Metabolites Disrupt β2-Adrenergic Signaling: A Biotransformation-Dependent Cardiotoxicity Mechanism in Zebrafish.

BHT and Its Metabolites Disrupt β2-Adrenergic Signaling: A Biotransformation-Dependent Cardiotoxicity Mechanism in Zebrafish.

期刊: Environmental science & technology 日期: 2026-08-11 PMID: 42579117 DOI: 10.1021/acs.est.6c04202 浏览: 18
作者: Liang X, Gao H, Zhang W, Liu J, Hao Q, Meng Q, Dong A, Martyniuk CJ
X, L., H, G., W, Z., J, L., Q, H., Q, M., A, D., & CJ, M. (2026). BHT and Its Metabolites Disrupt β2-Adrenergic Signaling: A Biotransformation-Dependent Cardiotoxicity Mechanism in Zebrafish.. Environmental science & technology. https://doi.org/10.1021/acs.est.6c04202
X L, H G, W Z, J L, Q H, Q M, et al. BHT and Its Metabolites Disrupt β2-Adrenergic Signaling: A Biotransformation-Dependent Cardiotoxicity Mechanism in Zebrafish.. Environmental science & technology. 2026; doi: 10.1021/acs.est.6c04202
X L, H G, W Z, et al. BHT and Its Metabolites Disrupt β2-Adrenergic Signaling: A Biotransformation-Dependent Cardiotoxicity Mechanism in Zebrafish.[J]. Environmental science & technology. 2026. DOI: 10.1021/acs.est.6c04202.
@article{x2026,
  author = {Liang X and Gao H and Zhang W and Liu J and Hao Q and Meng Q and Dong A and Martyniuk CJ},
  title = {BHT and Its Metabolites Disrupt β2-Adrenergic Signaling: A Biotransformation-Dependent Cardiotoxicity Mechanism in Zebrafish.},
  journal = {Environmental science & technology},
  year = {2026},
  doi = {10.1021/acs.est.6c04202},
  note = {PMID: 42579117},
}
TY  - JOUR
AU  - Liang X
AU  - Gao H
AU  - Zhang W
AU  - Liu J
AU  - Hao Q
AU  - Meng Q
AU  - Dong A
AU  - Martyniuk CJ
TI  - BHT and Its Metabolites Disrupt β2-Adrenergic Signaling: A Biotransformation-Dependent Cardiotoxicity Mechanism in Zebrafish.
T2  - Environmental science & technology
PY  - 2026
DO  - 10.1021/acs.est.6c04202
AN  - PMID:42579117
ER  - 

摘要

Butylated hydroxytoluene (BHT) is a widely used synthetic phenolic antioxidant, ubiquitously detected in aquatic environments. While traditionally considered safe based on in vitro data, BHT adversely affects aquatic organisms at environmentally relevant concentrations. Here, we demonstrate that BHT-induced cardiotoxicity is primarily mediated by its metabolites through disruption of β2-adrenergic receptor (β2AR) signaling. In zebrafish larvae exposed to 0.01-1 μM BHT for 6 days, metabolites BHT-CHO, BHT-COOH, and BHT-Q accumulated prominently, inducing cardiac morphological and histological alterations. Transcriptomic analysis highlighted pronounced neuro-cardiovascular network disruption, with significant suppression of adrenergic signaling in cardiomyocytes at 1 μM. Molecular docking and biolayer interferometry identified β2AR as a critical target for BHT metabolites, and functional rescue with a β-adrenoceptor agonist confirmed pathway dependency. However, paradoxical activation of β2AR-cAMP/PKA with concomitant suppression of downstream PKA-mediated phosphorylation resulting from competitive BHT-Q binding to the PKA catalytic subunit, indicates a functional uncoupling effect. This disrupts intracellular Ca2+ homeostasis in cardiomyocytes and drives cardiomyocyte dysfunction. Our findings reveal an unconventional toxicological paradigm, wherein environmental pollutants exploit kinase ATP pockets to corrupt signaling fidelity rather than simply inhibit or activate receptors, highlighting the necessity of metabolic activation assessment in environmental risk evaluation.

AI 智能解读

相关文献

返回分类: 心血管 查看原文 (DOI)
已选择 0 篇文献