» Articles » PMID: 18846543

Translocation of Iron from Lysosomes into Mitochondria is a Key Event During Oxidative Stress-induced Hepatocellular Injury

Overview
Journal Hepatology
Specialty Gastroenterology
Date 2008 Oct 11
PMID 18846543
Citations 71
Authors
Affiliations
Soon will be listed here.
Abstract

Unlabelled: Iron overload exacerbates various liver diseases. In hepatocytes, a portion of non-heme iron is sequestered in lysosomes and endosomes. The precise mechanisms by which lysosomal iron participates in hepatocellular injury remain uncertain. Here, our aim was to determine the role of intracellular movement of chelatable iron in oxidative stress-induced killing to cultured hepatocytes from C3Heb mice and Sprague-Dawley rats. Mitochondrial polarization and chelatable iron were visualized by confocal microscopy of tetramethylrhodamine methylester (TMRM) and quenching of calcein, respectively. Cell viability and hydroperoxide formation (a measure of lipid peroxidation) were measured fluorometrically using propidium iodide and chloromethyl dihydrodichlorofluorescein, respectively. After collapse of lysosomal/endosomal acidic pH gradients with bafilomycin (50 nM), an inhibitor of the vacuolar proton-pumping adenosine triphosphatase, cytosolic calcein fluorescence became quenched. Deferoxamine mesylate and starch-deferoxamine (1 mM) prevented bafilomycin-induced calcein quenching, indicating that bafilomycin induced release of chelatable iron from lysosomes/endosomes. Bafilomycin also quenched calcein fluorescence in mitochondria, which was blocked by 20 microM Ru360, an inhibitor of the mitochondrial calcium uniporter, consistent with mitochondrial iron uptake by the uniporter. Bafilomycin alone was not sufficient to induce mitochondrial depolarization and cell killing, but in the presence of low-dose tert-butylhydroperoxide (25 microM), bafilomycin enhanced hydroperoxide generation, leading to mitochondrial depolarization and subsequent cell death.

Conclusion: Taken together, the results are consistent with the conclusion that bafilomycin induces release of chelatable iron from lysosomes/endosomes, which is taken up by mitochondria. Oxidative stress and chelatable iron thus act as two "hits" synergistically promoting toxic radical formation, mitochondrial dysfunction, and cell death. This pathway of intracellular iron translocation is a potential therapeutic target against oxidative stress-mediated hepatotoxicity.

Citing Articles

Ferroptosis and Intrinsic Drug-induced Liver Injury by Acetaminophen and Other Drugs: A Critical Evaluation and Historical Perspective.

Jaeschke H, Ramachandran A J Clin Transl Hepatol. 2024; 12(12):1057-1066.

PMID: 39649034 PMC: 11622198. DOI: 10.14218/JCTH.2024.00324.


Role of Mitochondrial Iron Uptake in Acetaminophen Hepatotoxicity.

Hu J, Nieminen A, Zhong Z, Lemasters J Livers. 2024; 4(3):333-351.

PMID: 39554796 PMC: 11567147. DOI: 10.3390/livers4030024.


MitoTracker Red for isolation of zone-specific hepatocytes and characterization of hepatic sublobular metabolism.

Savoca M, Takemoto K, Hu J, Li L, Jacob Kendrick B, Zhong Z Biochem Biophys Res Commun. 2024; 735:150457.

PMID: 39146811 PMC: 11532002. DOI: 10.1016/j.bbrc.2024.150457.


Mechanism of Reactive Oxygen/Nitrogen Species in Liver Ischemia-Reperfusion Injury and Preventive Effect of Chinese Medicine.

Gao L, Li Y, Zhao J, Liao Y, Qin M, Li J Chin J Integr Med. 2024; .

PMID: 38941044 DOI: 10.1007/s11655-024-3810-9.


GAS1 Promotes Ferroptosis of Liver Cells in Acetaminophen-Induced Acute Liver Failure.

Tao J, Xue C, Wang X, Chen H, Liu Q, Jiang C Int J Med Sci. 2023; 20(12):1616-1630.

PMID: 37859699 PMC: 10583184. DOI: 10.7150/ijms.85114.


References
1.
Rauen U, Petrat F, Sustmann R, de Groot H . Iron-induced mitochondrial permeability transition in cultured hepatocytes. J Hepatol. 2004; 40(4):607-15. DOI: 10.1016/j.jhep.2003.12.021. View

2.
Castilho R, Meinicke A, Almeida A, Hermes-Lima M, Vercesi A . Oxidative damage of mitochondria induced by Fe(II)citrate is potentiated by Ca2+ and includes lipid peroxidation and alterations in membrane proteins. Arch Biochem Biophys. 1994; 308(1):158-63. DOI: 10.1006/abbi.1994.1022. View

3.
Rossi L, Lombardo M, Ciriolo M, Rotilio G . Mitochondrial dysfunction in neurodegenerative diseases associated with copper imbalance. Neurochem Res. 2004; 29(3):493-504. DOI: 10.1023/b:nere.0000014820.99232.8a. View

4.
Hentze M, Muckenthaler M, Andrews N . Balancing acts: molecular control of mammalian iron metabolism. Cell. 2004; 117(3):285-97. DOI: 10.1016/s0092-8674(04)00343-5. View

5.
Feldstein A, Werneburg N, Canbay A, Guicciardi M, Bronk S, Rydzewski R . Free fatty acids promote hepatic lipotoxicity by stimulating TNF-alpha expression via a lysosomal pathway. Hepatology. 2004; 40(1):185-94. DOI: 10.1002/hep.20283. View