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Diallyl trisulfide activates Nrf2 by promoting S-sulfhydration of Keap1 to attenuate acute hypobaric hypoxia-induced lung injury

delete2026-05-01
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PRE
AI
R
Renjie Wang
Y
Yihao Wang
X
Xu, Liang
G
Gao, Tianyi
Z
Zhenhui Wu
K
Keke Liang
Y
Yin, Xiubing
L
Li, Shubei
T
Tu, Bodan
T
Ta, Yanling
C
Chengcai Lai
L
Li, Maoxing *
G
Gao, Yue *
DOI:10.1016/j.phymed.2026.158259delete
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Abstract

Abstract

En 中文
Background: Acute lung injury triggered by rapid ascent to high altitude represents a significant clinical challenge in high-altitude medicine. Its pathological progression is primarily driven by excessive oxidative stress and the subsequent induction of ferroptosis. Purpose: This study investigated the therapeutic potential of Diallyl Trisulfide (DATS), a natural sulfur-containing compound from garlic, in mitigating Acute lung injury induced by acute hypobaric hypoxia. Methods: In vivo, the anti-hypoxic efficacy of DATS was initially investigated using various acute hypoxia mouse models, and its protective effect against lung injury was further examined in an acute high-altitude hypoxia rat model. In vitro, the cytoprotective role of DATS in HPMECs was assessed under hypoxia induced by cobalt chloride (CoCl2), as well as upon treatment with the ferroptosis inducer Erastin or the mitochondrial inhibitor carbonyl cyanide m-chlorophenylhydrazone (CCCP). Moreover, the use of the apoptosis inhibitor Z-VAD-FMK and the necroptosis inhibitor Necrostatin-1 (Nec-1) as additional controls demonstrated that the anti-ferroptotic effect of DATS is specific and not mediated by other cell death pathways. Furthermore, both in vivo and in vitro, the Nrf2 inhibitor ML385 was employed to confirm that Nrf2 is a key mediator through which DATS regulates ferroptosis and attenuates lung injury. Finally, in vitro studies were conducted to elucidate the molecular mechanism by which DATS modifies critical cysteine residues on Keap1, leading to Nrf2 nuclear translocation and activation, thereby counteracting ferroptosis and protecting against lung injury. Results: In vivo experiments demonstrated that DATS significantly prolonged the survival time of mice under acute hypoxia, improved abnormal blood gas parameters in rats exposed to hypobaric hypoxia, alleviated histopathological lung damage. In vitro experiments demonstrated that DATS significantly enhanced cell viability. Furthermore, it effectively restored intracellular oxidative stress homeostasis and suppressed lipid peroxidation and iron accumulation. Mechanistically, DATS markedly increased the levels of HAS and total protein sulfhydration, and specifically induced sulfhydration of the Keap1 protein at cysteine 151 (Cys151). This modification disrupted the Keap1-Nrf2 interaction, thereby stabilizing Nrf2 protein and promoting its nuclear translocation. Subsequently, nuclear Nrf2 activated the expression of downstream antioxidant genes, including GPX4 and xCT, restored glutathione homeostasis, inhibited lipid peroxidation and iron accumulation, and ultimately counteracted the ferroptosis process. Conclusion: DATS protects against acute hypobaric hypoxia-induced lung injury by S-sulfhydrating Keap1, activating the Nrf2 pathway, enhancing cellular antioxidant defenses, and effectively inhibiting ferroptosis.
Keywords:
Diallyl trisulfide
Hypobaric Hypoxia
Lung injury
Ferroptosis
Sulfhydration
Nrf2

Journal

Phytomedicine cover
Phytomedicine
IF:
8.3
Papers:
9.0K
Citations:
3.1W

Organization

T
Tianjin University of Traditional Chinese Medicine
Scholars:
8.8K
Papers: 3.6K
Citations: 5.2K
A
academy of military medical sciences - china
Scholars:
8.8K
Papers: 4.2K
Citations: 7
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